20. Advanced-control timer (TIM1)

In this section, “TIMx” should be understood as “TIM1” since there is only one instance of this type of timer for the products to which this reference manual applies.

20.1 TIM1 introduction

The advanced-control timer (TIM1) consists of a 16-bit auto-reload counter driven by a programmable prescaler.

It may be used for a variety of purposes, including measuring the pulse lengths of input signals (input capture) or generating output waveforms (output compare, PWM, complementary PWM with dead-time insertion).

Pulse lengths and waveform periods can be modulated from a few microseconds to several milliseconds using the timer prescaler and the RCC clock controller prescalers.

The advanced-control (TIM1) and general-purpose (TIMy) timers are completely independent, and do not share any resources. They can be synchronized together as described in Section 20.3.25: Timer synchronization .

20.2 TIM1 main features

TIM1 timer features include:

Figure 132. Advanced-control timer block diagram

Advanced-control timer (TIM1) block diagram showing internal architecture, inputs, and outputs.

The block diagram illustrates the internal architecture of the Advanced-control timer (TIM1). At the top, the Internal clock (CK_INT) from CK_TIM18 from RCC is connected to the Trigger controller , Slave controller mode , and Encoder Interface . The ETR input from TIMx_ETR passes through a Polarity selection & edge detector & prescaler (with ETRP input) and an Input filter to the Trigger controller , producing ETRF . The Trigger controller also receives TRC from an ITR multiplexer (inputs: ITR0 , ITR1 , ITR2 , ITR3 , TI1F_ED ) and generates TRGO to other timers/DAC/ADC. The Slave controller mode receives TRGI and provides Reset, enable, up/down, count signals. The Encoder Interface receives TI1FP1 and TI2FP2 . Below, the REP register and Auto-reload register (with U input) are connected to a Repetition counter (with U output) and the CNT counter . The CNT counter (with +/- input) receives CK_CNT from a PSC prescaler (with CK_PSC input) and provides U output to the Auto-reload register . The CNT counter is connected to Capture/Compare 1 register through Capture/Compare 6 register . Each register has CC and U inputs and is connected to an Output control block via DTG registers and OCREF signals. The Output control blocks generate OC1 through OC6 outputs, with OC1N , OC2N , OC3N also connected to TIMx_CH1N , TIMx_CH2N , TIMx_CH3N . The TI1 input from TIMx_CH1 passes through an XOR gate and an Input filter & edge detector (with TI1FP1 , TI1FP2 , TRC inputs) to the IC1 input of the Capture/Compare 1 register . Similar paths exist for TI2 ( TIMx_CH2 ), TI3 ( TIMx_CH3 ), and TI4 ( TIMx_CH4 ). The BRK input from TIMx_BKIN passes through a Polarity selection filter (with BRK_ACTH input) and an OR gate with Internal break event sources to produce BI . The BRK2 input from TIMx_BKIN2 passes through another Polarity selection filter . The ETR input from TIMx_ETR also connects to the ETR input of the Capture/Compare 5 register and Capture/Compare 6 register .

Notes:

MSv31414V5

Advanced-control timer (TIM1) block diagram showing internal architecture, inputs, and outputs.
  1. 1. The internal break event source can be:
    • - A clock failure event generated by CSS. For further information on the CSS, refer to Section 9.2.7 :
      Clock security system (CSS)
    • - A PVD output
    • - SRAM parity error signal
    • - Cortex-M4 ® F LOCKUP (Hardfault) output.
    • - COMPx output, x = 1,2 and 6.

20.3 TIM1 functional description

20.3.1 Time-base unit

The main block of the programmable advanced-control timer is a 16-bit counter with its related auto-reload register. The counter can count up, down or both up and down. The counter clock can be divided by a prescaler.

The counter, the auto-reload register and the prescaler register can be written or read by software. This is true even when the counter is running.

The time-base unit includes:

The auto-reload register is preloaded. Writing to or reading from the auto-reload register accesses the preload register. The content of the preload register are transferred into the shadow register permanently or at each update event (UEV), depending on the auto-reload preload enable bit (ARPE) in TIMx_CR1 register. The update event is sent when the counter reaches the overflow (or underflow when downcounting) and if the UDIS bit equals 0 in the TIMx_CR1 register. It can also be generated by software. The generation of the update event is described in detailed for each configuration.

The counter is clocked by the prescaler output CK_CNT, which is enabled only when the counter enable bit (CEN) in TIMx_CR1 register is set (refer also to the slave mode controller description to get more details on counter enabling).

Note that the counter starts counting 1 clock cycle after setting the CEN bit in the TIMx_CR1 register.

Prescaler description

The prescaler can divide the counter clock frequency by any factor between 1 and 65536. It is based on a 16-bit counter controlled through a 16-bit register (in the TIMx_PSC register). It can be changed on the fly as this control register is buffered. The new prescaler ratio is taken into account at the next update event.

Figure 133 and Figure 134 give some examples of the counter behavior when the prescaler ratio is changed on the fly:

Figure 133. Counter timing diagram with prescaler division change from 1 to 2

Timing diagram for Figure 133 showing the relationship between CK_PSC, CEN, Timerclock, Counter register, Update event, Prescaler control register, Prescaler buffer, and Prescaler counter when the division changes from 1 to 2.

This timing diagram illustrates the operation of the timer when the prescaler division is changed from 1 to 2. The signals shown are:

MS31076V2

Timing diagram for Figure 133 showing the relationship between CK_PSC, CEN, Timerclock, Counter register, Update event, Prescaler control register, Prescaler buffer, and Prescaler counter when the division changes from 1 to 2.

Figure 134. Counter timing diagram with prescaler division change from 1 to 4

Timing diagram for Figure 134 showing the relationship between CK_PSC, CEN, Timerclock, Counter register, Update event, Prescaler control register, Prescaler buffer, and Prescaler counter when the division changes from 1 to 4.

This timing diagram illustrates the operation of the timer when the prescaler division is changed from 1 to 4. The signals shown are:

MS31077V2

Timing diagram for Figure 134 showing the relationship between CK_PSC, CEN, Timerclock, Counter register, Update event, Prescaler control register, Prescaler buffer, and Prescaler counter when the division changes from 1 to 4.

20.3.2 Counter modes

Upcounting mode

In upcounting mode, the counter counts from 0 to the auto-reload value (content of the TIMx_ARR register), then restarts from 0 and generates a counter overflow event.

If the repetition counter is used, the update event (UEV) is generated after upcounting is repeated for the number of times programmed in the repetition counter register (TIMx_RCR) + 1. Else the update event is generated at each counter overflow.

Setting the UG bit in the TIMx_EGR register (by software or by using the slave mode controller) also generates an update event.

The UEV event can be disabled by software by setting the UDIS bit in the TIMx_CR1 register. This is to avoid updating the shadow registers while writing new values in the preload registers. Then no update event occurs until the UDIS bit has been written to 0. However, the counter restarts from 0, as well as the counter of the prescaler (but the prescale rate does not change). In addition, if the URS bit (update request selection) in TIMx_CR1 register is set, setting the UG bit generates an update event UEV but without setting the UIF flag (thus no interrupt or DMA request is sent). This is to avoid generating both update and capture interrupts when clearing the counter on the capture event.

When an update event occurs, all the registers are updated and the update flag (UIF bit in TIMx_SR register) is set (depending on the URS bit):

The following figures show some examples of the counter behavior for different clock frequencies when TIMx_ARR=0x36.

Figure 135. Counter timing diagram, internal clock divided by 1

Timing diagram for internal clock divided by 1. It shows the relationship between CK_PSC, CNT_EN, Timerclock (CK_CNT), Counter register values (31 to 07), Counter overflow, Update event (UEV), and Update interrupt flag (UIF).

This timing diagram illustrates the operation of the counter when the internal clock is divided by 1. The signals shown are:

Vertical dashed lines indicate the timing relationships between the clock edges and the counter value changes. The diagram is labeled MS31078V2 in the bottom right corner.

Timing diagram for internal clock divided by 1. It shows the relationship between CK_PSC, CNT_EN, Timerclock (CK_CNT), Counter register values (31 to 07), Counter overflow, Update event (UEV), and Update interrupt flag (UIF).

Figure 136. Counter timing diagram, internal clock divided by 2

Timing diagram for internal clock divided by 2. It shows the relationship between CK_PSC, CNT_EN, Timerclock (CK_CNT), Counter register values (0034 to 0003), Counter overflow, Update event (UEV), and Update interrupt flag (UIF).

This timing diagram illustrates the operation of the counter when the internal clock is divided by 2. The signals shown are:

Vertical dashed lines indicate the timing relationships between the clock edges and the counter value changes. The diagram is labeled MS31079V2 in the bottom right corner.

Timing diagram for internal clock divided by 2. It shows the relationship between CK_PSC, CNT_EN, Timerclock (CK_CNT), Counter register values (0034 to 0003), Counter overflow, Update event (UEV), and Update interrupt flag (UIF).

Figure 137. Counter timing diagram, internal clock divided by 4

Timing diagram for internal clock divided by 4. It shows CK_PSC, CNT_EN, Timerclock = CK_CNT, Counter register (values 0035, 0036, 0000, 0001), Counter overflow, Update event (UEV), and Update interrupt flag (UIF) over time. Vertical dashed lines indicate key timing points.

This timing diagram illustrates the operation of the counter when the internal clock is divided by 4. The top signal, CK_PSC, is a periodic square wave. Below it, CNT_EN is shown as a high-level signal. The Timerclock = CK_CNT is derived from CK_PSC and is shown as a lower-frequency square wave. The Counter register values are shown in a sequence: 0035, 0036, 0000, and 0001. Vertical dashed lines indicate the rising edges of the timer clock. At the first dashed line, the counter increments from 0035 to 0036. At the second dashed line, the counter overflows from 0036 to 0000, triggering a pulse on the Counter overflow signal. Simultaneously, an Update event (UEV) occurs, and the Update interrupt flag (UIF) is set. At the third dashed line, the counter increments from 0000 to 0001.

Timing diagram for internal clock divided by 4. It shows CK_PSC, CNT_EN, Timerclock = CK_CNT, Counter register (values 0035, 0036, 0000, 0001), Counter overflow, Update event (UEV), and Update interrupt flag (UIF) over time. Vertical dashed lines indicate key timing points.

MS31080V2

Figure 138. Counter timing diagram, internal clock divided by N

Timing diagram for internal clock divided by N. It shows CK_PSC, Timerclock = CK_CNT, Counter register (values 1F, 20, 00), Counter overflow, Update event (UEV), and Update interrupt flag (UIF) over time. Vertical dashed lines indicate key timing points.

This timing diagram illustrates the operation of the counter when the internal clock is divided by N. The top signal, CK_PSC, is a periodic square wave. Below it, the Timerclock = CK_CNT is shown as a lower-frequency square wave, with a break in the signal indicated by a slash. The Counter register values are shown in a sequence: 1F, 20, and 00. Vertical dashed lines indicate the rising edges of the timer clock. At the first dashed line, the counter increments from 1F to 20. At the second dashed line, the counter overflows from 20 to 00, triggering a pulse on the Counter overflow signal. Simultaneously, an Update event (UEV) occurs, and the Update interrupt flag (UIF) is set. At the third dashed line, the counter increments from 00 to the next value.

Timing diagram for internal clock divided by N. It shows CK_PSC, Timerclock = CK_CNT, Counter register (values 1F, 20, 00), Counter overflow, Update event (UEV), and Update interrupt flag (UIF) over time. Vertical dashed lines indicate key timing points.

MS31081V2

Figure 139. Counter timing diagram, update event when ARPE=0 (TIMx_ARR not preloaded)

Timing diagram for Figure 139 showing counter behavior when ARPE=0.

This timing diagram illustrates the operation of an advanced-control timer (TIM1) when the ARPE bit is 0. The diagram shows the relationship between the prescaler clock (CK_PSC), counter enable (CEN), timer clock (CK_CNT), counter register values, counter overflow, update event (UEV), update interrupt flag (UIF), and the auto-reload preload register (TIMx_ARR).
- CK_PSC : A periodic square wave clock signal.
- CEN : Counter Enable signal, shown as a high-level signal.
- Timerclock = CK_CNT : The clock signal for the counter, derived from CK_PSC.
- Counter register : Shows a sequence of values: 31, 32, 33, 34, 35, 36, 00, 01, 02, 03, 04, 05, 06, 07. The counter increments by 1 at each rising edge of the timer clock.
- Counter overflow : A signal that goes high when the counter reaches its maximum value (36) and then resets to low when it overflows to 00.
- Update event (UEV) : A pulse that occurs at the moment of counter overflow.
- Update interrupt flag (UIF) : A signal that goes high in response to the update event.
- Auto-reload preload register : Initially contains the value FF. An arrow indicates a write of a new value, 36, to the TIMx_ARR register. This value is then loaded into the counter at the next update event.

Timing diagram for Figure 139 showing counter behavior when ARPE=0.

Figure 140. Counter timing diagram, update event when ARPE=1 (TIMx_ARR preloaded)

Timing diagram for Figure 140 showing counter behavior when ARPE=1.

This timing diagram illustrates the operation of an advanced-control timer (TIM1) when the ARPE bit is 1. The diagram shows the relationship between the prescaler clock (CK_PSC), counter enable (CEN), timer clock (CK_CNT), counter register values, counter overflow, update event (UEV), update interrupt flag (UIF), auto-reload preload register (TIMx_ARR), and auto-reload shadow register.
- CK_PSC : A periodic square wave clock signal.
- CEN : Counter Enable signal, shown as a high-level signal.
- Timerclock = CK_CNT : The clock signal for the counter, derived from CK_PSC.
- Counter register : Shows a sequence of values: F0, F1, F2, F3, F4, F5, 00, 01, 02, 03, 04, 05, 06, 07. The counter increments by 1 at each rising edge of the timer clock.
- Counter overflow : A signal that goes high when the counter reaches its maximum value (F5) and then resets to low when it overflows to 00.
- Update event (UEV) : A pulse that occurs at the moment of counter overflow.
- Update interrupt flag (UIF) : A signal that goes high in response to the update event.
- Auto-reload preload register : Initially contains the value F5. An arrow indicates a write of a new value, 36, to the TIMx_ARR register.
- Auto-reload shadow register : Initially contains the value F5. At the next update event (when the counter overflows from F5 to 00), the value 36 is loaded into this shadow register.
- The counter then continues to increment from 00, but the auto-reload value will be 36 at the next overflow.

Timing diagram for Figure 140 showing counter behavior when ARPE=1.

Downcounting mode

In downcounting mode, the counter counts from the auto-reload value (content of the TIMx_ARR register) down to 0, then restarts from the auto-reload value and generates a counter underflow event.

If the repetition counter is used, the update event (UEV) is generated after downcounting is repeated for the number of times programmed in the repetition counter register (TIMx_RCR) + 1. Else the update event is generated at each counter underflow.

Setting the UG bit in the TIMx_EGR register (by software or by using the slave mode controller) also generates an update event.

The UEV update event can be disabled by software by setting the UDIS bit in TIMx_CR1 register. This is to avoid updating the shadow registers while writing new values in the preload registers. Then no update event occurs until UDIS bit has been written to 0. However, the counter restarts from the current auto-reload value, whereas the counter of the prescaler restarts from 0 (but the prescale rate doesn't change).

In addition, if the URS bit (update request selection) in TIMx_CR1 register is set, setting the UG bit generates an update event UEV but without setting the UIF flag (thus no interrupt or DMA request is sent). This is to avoid generating both update and capture interrupts when clearing the counter on the capture event.

When an update event occurs, all the registers are updated and the update flag (UIF bit in TIMx_SR register) is set (depending on the URS bit):

The following figures show some examples of the counter behavior for different clock frequencies when TIMx_ARR=0x36.

Figure 141. Counter timing diagram, internal clock divided by 1

Timing diagram for Figure 141 showing signals CK_PSC, CNT_EN, Timerclock = CK_CNT, Counter register, Counter underflow (cnt_udf), Update event (UEV), and Update interrupt flag (UIF) over time. The counter register values are 05, 04, 03, 02, 01, 00, 36, 35, 34, 33, 32, 31, 30, 2F.

This timing diagram illustrates the operation of the counter when the internal clock is divided by 1. The signals shown are:

Vertical dashed lines indicate the timing relationships between the clock edges and the counter value changes. The identifier MS31184V1 is located in the bottom right corner.

Timing diagram for Figure 141 showing signals CK_PSC, CNT_EN, Timerclock = CK_CNT, Counter register, Counter underflow (cnt_udf), Update event (UEV), and Update interrupt flag (UIF) over time. The counter register values are 05, 04, 03, 02, 01, 00, 36, 35, 34, 33, 32, 31, 30, 2F.

Figure 142. Counter timing diagram, internal clock divided by 2

Timing diagram for Figure 142 showing signals CK_PSC, CNT_EN, Timerclock = CK_CNT, Counter register, Counter underflow, Update event (UEV), and Update interrupt flag (UIF) over time. The counter register values are 0002, 0001, 0000, 0036, 0035, 0034, 0033.

This timing diagram illustrates the operation of the counter when the internal clock is divided by 2. The signals shown are:

Vertical dashed lines indicate the timing relationships between the clock edges and the counter value changes. The identifier MS31185V1 is located in the bottom right corner.

Timing diagram for Figure 142 showing signals CK_PSC, CNT_EN, Timerclock = CK_CNT, Counter register, Counter underflow, Update event (UEV), and Update interrupt flag (UIF) over time. The counter register values are 0002, 0001, 0000, 0036, 0035, 0034, 0033.

Figure 143. Counter timing diagram, internal clock divided by 4

Timing diagram for internal clock divided by 4. It shows CK_PSC (square wave), CNT_EN (high), Timerclock = CK_CNT (pulses), Counter register (values 0001, 0000, 0000, 0001), Counter underflow (pulses), Update event (UEV) (pulses), and Update interrupt flag (UIF) (high).

This timing diagram illustrates the operation of a counter when the internal clock is divided by 4. The top signal, CK_PSC, is a periodic square wave. Below it, CNT_EN is shown as a high-level signal. The Timerclock = CK_CNT signal is a pulse train that is active only when CNT_EN is high. The Counter register is shown with four states: 0001, 0000, 0000, and 0001. The Counter underflow signal is a pulse that occurs when the counter reaches 0000. The Update event (UEV) is a pulse that occurs when the counter reaches 0000. The Update interrupt flag (UIF) is a signal that goes high when the counter reaches 0000. Vertical dashed lines indicate the timing relationships between the signals.

MS31186V1

Timing diagram for internal clock divided by 4. It shows CK_PSC (square wave), CNT_EN (high), Timerclock = CK_CNT (pulses), Counter register (values 0001, 0000, 0000, 0001), Counter underflow (pulses), Update event (UEV) (pulses), and Update interrupt flag (UIF) (high).

Figure 144. Counter timing diagram, internal clock divided by N

Timing diagram for internal clock divided by N. It shows CK_PSC (square wave), Timerclock = CK_CNT (pulses), Counter register (values 20, 1F, 00, 36), Counter underflow (pulses), Update event (UEV) (pulses), and Update interrupt flag (UIF) (high).

This timing diagram illustrates the operation of a counter when the internal clock is divided by N. The top signal, CK_PSC, is a periodic square wave. Below it, the Timerclock = CK_CNT signal is a pulse train that is active only when CNT_EN is high. The Counter register is shown with four states: 20, 1F, 00, and 36. The Counter underflow signal is a pulse that occurs when the counter reaches 00. The Update event (UEV) is a pulse that occurs when the counter reaches 00. The Update interrupt flag (UIF) is a signal that goes high when the counter reaches 00. Vertical dashed lines indicate the timing relationships between the signals.

MS31187V1

Timing diagram for internal clock divided by N. It shows CK_PSC (square wave), Timerclock = CK_CNT (pulses), Counter register (values 20, 1F, 00, 36), Counter underflow (pulses), Update event (UEV) (pulses), and Update interrupt flag (UIF) (high).
Figure 145. Counter timing diagram, update event when repetition counter is not used Figure 145. Counter timing diagram, update event when repetition counter is not used. The diagram shows the relationship between CK_PSC, CEN, Timerclock (CK_CNT), Counter register, Counter underflow, Update event (UEV), Update interrupt flag (UIF), and Auto-reload preload register over time. The counter counts down from 05 to 00, then overflows to 36 and counts down to 2F. An update event occurs at the underflow point (00 to 36 transition). The auto-reload preload register is shown being updated from FF to 36.

The timing diagram illustrates the operation of the counter. The CK_PSC signal is a periodic clock. The CEN signal is active-low, enabling the counter when it is low. The Timerclock (CK_CNT) is derived from CK_PSC. The Counter register shows a sequence of values: 05, 04, 03, 02, 01, 00, 36, 35, 34, 33, 32, 31, 30, 2F. The Counter underflow signal is high when the counter reaches 00. The Update event (UEV) is a pulse that occurs at the transition from 00 to 36. The Update interrupt flag (UIF) is set when the UEV occurs. The Auto-reload preload register is shown with values FF and 36. An arrow indicates that a new value (36) is written to the TIMx_ARR register, which is then loaded into the preload register.

Figure 145. Counter timing diagram, update event when repetition counter is not used. The diagram shows the relationship between CK_PSC, CEN, Timerclock (CK_CNT), Counter register, Counter underflow, Update event (UEV), Update interrupt flag (UIF), and Auto-reload preload register over time. The counter counts down from 05 to 00, then overflows to 36 and counts down to 2F. An update event occurs at the underflow point (00 to 36 transition). The auto-reload preload register is shown being updated from FF to 36.

Center-aligned mode (up/down counting)

In center-aligned mode, the counter counts from 0 to the auto-reload value (content of the TIMx_ARR register) – 1, generates a counter overflow event, then counts from the auto-reload value down to 1 and generates a counter underflow event. Then it restarts counting from 0.

Center-aligned mode is active when the CMS bits in TIMx_CR1 register are not equal to '00'. The Output compare interrupt flag of channels configured in output is set when: the counter counts down (Center aligned mode 1, CMS = "01"), the counter counts up (Center aligned mode 2, CMS = "10") the counter counts up and down (Center aligned mode 3, CMS = "11").

In this mode, the DIR direction bit in the TIMx_CR1 register cannot be written. It is updated by hardware and gives the current direction of the counter.

The update event can be generated at each counter overflow and at each counter underflow or by setting the UG bit in the TIMx_EGR register (by software or by using the slave mode controller) also generates an update event. In this case, the counter restarts counting from 0, as well as the counter of the prescaler.

The UEV update event can be disabled by software by setting the UDIS bit in the TIMx_CR1 register. This is to avoid updating the shadow registers while writing new values in the preload registers. Then no update event occurs until UDIS bit has been written to 0. However, the counter continues counting up and down, based on the current auto-reload value.

In addition, if the URS bit (update request selection) in TIMx_CR1 register is set, setting the UG bit generates an UEV update event but without setting the UIF flag (thus no interrupt or

DMA request is sent). This is to avoid generating both update and capture interrupts when clearing the counter on the capture event.

When an update event occurs, all the registers are updated and the update flag (UIF bit in TIMx_SR register) is set (depending on the URS bit):

The following figures show some examples of the counter behavior for different clock frequencies.

Figure 146. Counter timing diagram, internal clock divided by 1, TIMx_ARR = 0x6

Timing diagram for TIM1 counter in center-aligned mode 1. The diagram shows the relationship between the prescaler clock (CK_PSC), counter enable (CEN), timer clock (CK_CNT), counter register values, underflow/overflow events, update events (UEV), and the update interrupt flag (UIF).

The timing diagram illustrates the operation of the TIM1 counter in center-aligned mode 1. The signals shown are:

The diagram shows two full periods of the counter. The first period starts at 00, increments to 06, and then decrements back to 00. The second period starts at 00, increments to 06, and then decrements back towards 00. The underflow and overflow signals are shown as short pulses at the 00 and 06 marks respectively. The update event (UEV) is shown as a pulse that coincides with the underflow and overflow events. The UIF signal is shown as a pulse that goes high when the UEV occurs and returns low when the interrupt is serviced.

MS31189V3

Timing diagram for TIM1 counter in center-aligned mode 1. The diagram shows the relationship between the prescaler clock (CK_PSC), counter enable (CEN), timer clock (CK_CNT), counter register values, underflow/overflow events, update events (UEV), and the update interrupt flag (UIF).
  1. 1. Here, center-aligned mode 1 is used (for more details refer to Section 20.4: TIM1 registers ).

Figure 147. Counter timing diagram, internal clock divided by 2

Timing diagram for Figure 147 showing CK_PSC, CNT_EN, Timerclock = CK_CNT, Counter register values (0003 to 0000 and back to 0003), Counter underflow, Update event (UEV), and Update interrupt flag (UIF).

This timing diagram illustrates the operation of an advanced-control timer (TIM1) with the internal clock divided by 2. The diagram shows the following signals and register values over time:

MS31190V1

Timing diagram for Figure 147 showing CK_PSC, CNT_EN, Timerclock = CK_CNT, Counter register values (0003 to 0000 and back to 0003), Counter underflow, Update event (UEV), and Update interrupt flag (UIF).

Figure 148. Counter timing diagram, internal clock divided by 4, TIMx_ARR=0x36

Timing diagram for Figure 148 showing CK_PSC, CNT_EN, Timerclock = CK_CNT, Counter register values (0034 to 0036 and back to 0035), Counter overflow, Update event (UEV), and Update interrupt flag (UIF).

This timing diagram illustrates the operation of an advanced-control timer (TIM1) with the internal clock divided by 4 and the auto-reload register (TIMx_ARR) set to 0x36. The diagram shows the following signals and register values over time:

Note: Here, center_aligned mode 2 or 3 is updated with an UIF on overflow

MS31190V1

Timing diagram for Figure 148 showing CK_PSC, CNT_EN, Timerclock = CK_CNT, Counter register values (0034 to 0036 and back to 0035), Counter overflow, Update event (UEV), and Update interrupt flag (UIF).

Figure 149. Counter timing diagram, internal clock divided by N

Timing diagram for Figure 149 showing CK_PSC, Timerclock = CK_CNT, Counter register (values 20, 1F, 01, 00), Counter underflow, Update event (UEV), and Update interrupt flag (UIF) signals over time. The counter register shows a sequence of values: 20, 1F, 01, 00. The underflow and UEV signals pulse when the counter reaches 00. The UIF signal goes high at the underflow event and returns low when the UEV occurs.

Timing diagram showing the relationship between the prescaler clock (CK_PSC), the counter clock (Timerclock = CK_CNT), the counter register values, the counter underflow signal, the update event (UEV), and the update interrupt flag (UIF). The counter register values shown are 20, 1F, 01, and 00. The underflow and UEV signals pulse when the counter reaches 00. The UIF signal goes high at the underflow event and returns low when the UEV occurs.

MS31192V1

Timing diagram for Figure 149 showing CK_PSC, Timerclock = CK_CNT, Counter register (values 20, 1F, 01, 00), Counter underflow, Update event (UEV), and Update interrupt flag (UIF) signals over time. The counter register shows a sequence of values: 20, 1F, 01, 00. The underflow and UEV signals pulse when the counter reaches 00. The UIF signal goes high at the underflow event and returns low when the UEV occurs.

Figure 150. Counter timing diagram, update event with ARPE=1 (counter underflow)

Timing diagram for Figure 150 showing CK_PSC, CEN, Timerclock = CK_CNT, Counter register (values 06 down to 00, then 01 up to 07), Counter underflow, Update event (UEV), Update interrupt flag (UIF), Auto-reload preload register (values FD, 36), Write a new value in TIMx_ARR, and Auto-reload active register (values FD, 36). The counter register shows a sequence of values: 06, 05, 04, 03, 02, 01, 00, 01, 02, 03, 04, 05, 06, 07. The underflow and UEV signals pulse when the counter reaches 00. The UIF signal goes high at the underflow event and returns low when the UEV occurs. The auto-reload preload register and auto-reload active register show values FD and 36. An arrow indicates writing a new value in TIMx_ARR.

Timing diagram showing the relationship between the prescaler clock (CK_PSC), the counter enable (CEN), the counter clock (Timerclock = CK_CNT), the counter register values, the counter underflow signal, the update event (UEV), the update interrupt flag (UIF), the auto-reload preload register, the write to the TIMx_ARR register, and the auto-reload active register. The counter register values shown are 06, 05, 04, 03, 02, 01, 00, 01, 02, 03, 04, 05, 06, 07. The underflow and UEV signals pulse when the counter reaches 00. The UIF signal goes high at the underflow event and returns low when the UEV occurs. The auto-reload preload register and auto-reload active register show values FD and 36. An arrow indicates writing a new value in TIMx_ARR.

MS31193V1

Timing diagram for Figure 150 showing CK_PSC, CEN, Timerclock = CK_CNT, Counter register (values 06 down to 00, then 01 up to 07), Counter underflow, Update event (UEV), Update interrupt flag (UIF), Auto-reload preload register (values FD, 36), Write a new value in TIMx_ARR, and Auto-reload active register (values FD, 36). The counter register shows a sequence of values: 06, 05, 04, 03, 02, 01, 00, 01, 02, 03, 04, 05, 06, 07. The underflow and UEV signals pulse when the counter reaches 00. The UIF signal goes high at the underflow event and returns low when the UEV occurs. The auto-reload preload register and auto-reload active register show values FD and 36. An arrow indicates writing a new value in TIMx_ARR.

Figure 151. Counter timing diagram, Update event with ARPE=1 (counter overflow)

Figure 151. Counter timing diagram, Update event with ARPE=1 (counter overflow). The diagram shows the relationship between the prescaler clock (CK_PSC), counter enable (CEN), timer clock (CK_CNT), counter register values, counter overflow, update event (UEV), update interrupt flag (UIF), auto-reload preload register, and auto-reload active register. The counter register values are shown in hexadecimal (F7, F8, F9, FA, FB, FC) and decimal (36, 35, 34, 33, 32, 31, 30, 2F). The auto-reload preload register is shown with the value FD, and the auto-reload active register is shown with the value 36. The update event (UEV) is generated when the counter overflows from FC to 36. The update interrupt flag (UIF) is set when the update event occurs. The auto-reload preload register is updated when a new value is written in TIMx_ARR. The auto-reload active register is updated when the update event occurs.

The timing diagram illustrates the operation of an advanced-control timer (TIM1) in upcounting mode with the ARPE (Auto-reload preload enable) bit set to 1. The diagram shows the following signals and registers over time:

MS31194V1

Figure 151. Counter timing diagram, Update event with ARPE=1 (counter overflow). The diagram shows the relationship between the prescaler clock (CK_PSC), counter enable (CEN), timer clock (CK_CNT), counter register values, counter overflow, update event (UEV), update interrupt flag (UIF), auto-reload preload register, and auto-reload active register. The counter register values are shown in hexadecimal (F7, F8, F9, FA, FB, FC) and decimal (36, 35, 34, 33, 32, 31, 30, 2F). The auto-reload preload register is shown with the value FD, and the auto-reload active register is shown with the value 36. The update event (UEV) is generated when the counter overflows from FC to 36. The update interrupt flag (UIF) is set when the update event occurs. The auto-reload preload register is updated when a new value is written in TIMx_ARR. The auto-reload active register is updated when the update event occurs.

20.3.3 Repetition counter

Section 20.3.1: Time-base unit describes how the update event (UEV) is generated with respect to the counter overflows/underflows. It is actually generated only when the repetition counter has reached zero. This can be useful when generating PWM signals.

This means that data are transferred from the preload registers to the shadow registers (TIMx_ARR auto-reload register, TIMx_PSC prescaler register, but also TIMx_CCRx capture/compare registers in compare mode) every N+1 counter overflows or underflows, where N is the value in the TIMx_RCR repetition counter register.

The repetition counter is decremented:

    • • At each counter overflow in upcounting mode,
    • • At each counter underflow in downcounting mode,
    • • At each counter overflow and at each counter underflow in center-aligned mode.
  1. Although this limits the maximum number of repetition to 32768 PWM cycles, it makes it possible to update the duty cycle twice per PWM period. When refreshing compare registers only once per PWM period in center-aligned mode, maximum resolution is \( 2 \times T_{ck} \) , due to the symmetry of the pattern.

The repetition counter is an auto-reload type; the repetition rate is maintained as defined by the TIMx_RCR register value (refer to Figure 152 ). When the update event is generated by software (by setting the UG bit in TIMx_EGR register) or by hardware through the slave mode controller, it occurs immediately whatever the value of the repetition counter is and the repetition counter is reloaded with the content of the TIMx_RCR register.

In Center aligned mode, for odd values of RCR, the update event occurs either on the overflow or on the underflow depending on when the RCR register was written and when the counter was launched: if the RCR was written before launching the counter, the UEV occurs on the underflow. If the RCR was written after launching the counter, the UEV occurs on the overflow.

For example, for RCR = 3, the UEV is generated each 4th overflow or underflow event depending on when the RCR was written.

Figure 152. Update rate examples depending on mode and TIMx_RCR register settings

Sawtooth waveform for Counter-aligned mode, TIMx_RCR = 0. The counter (TIMx_CNT) increases linearly and resets at the reload value. Update events (UEV) occur at every reset point, indicated by upward arrows. Sawtooth waveform for Edge-aligned mode, Upcounting, TIMx_RCR = 0. The counter increases linearly and resets at the reload value. Update events (UEV) occur at every reset point. Sawtooth waveform for Edge-aligned mode, Downcounting, TIMx_RCR = 0. The counter decreases linearly and resets at the reload value. Update events (UEV) occur at every reset point. Sawtooth waveform for Counter-aligned mode, TIMx_RCR = 1. Update events (UEV) occur every 2nd reset point. Sawtooth waveform for Edge-aligned mode, Upcounting, TIMx_RCR = 1. Update events (UEV) occur every 2nd reset point. Sawtooth waveform for Edge-aligned mode, Downcounting, TIMx_RCR = 1. Update events (UEV) occur every 2nd reset point. Sawtooth waveform for Counter-aligned mode, TIMx_RCR = 2. Update events (UEV) occur every 3rd reset point. Sawtooth waveform for Edge-aligned mode, Upcounting, TIMx_RCR = 2. Update events (UEV) occur every 3rd reset point. Sawtooth waveform for Edge-aligned mode, Downcounting, TIMx_RCR = 2. Update events (UEV) occur every 3rd reset point. Sawtooth waveform for Counter-aligned mode, TIMx_RCR = 3. Update events (UEV) occur every 4th reset point. Sawtooth waveform for Edge-aligned mode, Upcounting, TIMx_RCR = 3. Update events (UEV) occur every 4th reset point. Sawtooth waveform for Edge-aligned mode, Downcounting, TIMx_RCR = 3. Update events (UEV) occur every 4th reset point. Sawtooth waveform for Counter-aligned mode, TIMx_RCR = 3 and re-synchronization. A dashed vertical line indicates a software (SW) re-synchronization point. Update events (UEV) continue to occur every 4th reset point after the re-synchronization. Sawtooth waveform for Edge-aligned mode, Upcounting, TIMx_RCR = 3 and re-synchronization. A dashed vertical line indicates a software (SW) re-synchronization point. Update events (UEV) continue to occur every 4th reset point after the re-synchronization. Sawtooth waveform for Edge-aligned mode, Downcounting, TIMx_RCR = 3 and re-synchronization. A dashed vertical line indicates a software (SW) re-synchronization point. Update events (UEV) continue to occur every 4th reset point after the re-synchronization.
Counter-aligned modeEdge-aligned mode
UpcountingDowncounting
TIMx_RCR = 0
TIMx_RCR = 1
TIMx_RCR = 2
TIMx_RCR = 3
TIMx_RCR = 3 and re-synchronization

UEV → Update event: Preload registers transferred to active registers and update interrupt generated
Update Event if the repetition counter underflow occurs when the counter is equal to the auto-reload value.

MSv31195V1

Sawtooth waveform for Counter-aligned mode, TIMx_RCR = 0. The counter (TIMx_CNT) increases linearly and resets at the reload value. Update events (UEV) occur at every reset point, indicated by upward arrows. Sawtooth waveform for Edge-aligned mode, Upcounting, TIMx_RCR = 0. The counter increases linearly and resets at the reload value. Update events (UEV) occur at every reset point. Sawtooth waveform for Edge-aligned mode, Downcounting, TIMx_RCR = 0. The counter decreases linearly and resets at the reload value. Update events (UEV) occur at every reset point. Sawtooth waveform for Counter-aligned mode, TIMx_RCR = 1. Update events (UEV) occur every 2nd reset point. Sawtooth waveform for Edge-aligned mode, Upcounting, TIMx_RCR = 1. Update events (UEV) occur every 2nd reset point. Sawtooth waveform for Edge-aligned mode, Downcounting, TIMx_RCR = 1. Update events (UEV) occur every 2nd reset point. Sawtooth waveform for Counter-aligned mode, TIMx_RCR = 2. Update events (UEV) occur every 3rd reset point. Sawtooth waveform for Edge-aligned mode, Upcounting, TIMx_RCR = 2. Update events (UEV) occur every 3rd reset point. Sawtooth waveform for Edge-aligned mode, Downcounting, TIMx_RCR = 2. Update events (UEV) occur every 3rd reset point. Sawtooth waveform for Counter-aligned mode, TIMx_RCR = 3. Update events (UEV) occur every 4th reset point. Sawtooth waveform for Edge-aligned mode, Upcounting, TIMx_RCR = 3. Update events (UEV) occur every 4th reset point. Sawtooth waveform for Edge-aligned mode, Downcounting, TIMx_RCR = 3. Update events (UEV) occur every 4th reset point. Sawtooth waveform for Counter-aligned mode, TIMx_RCR = 3 and re-synchronization. A dashed vertical line indicates a software (SW) re-synchronization point. Update events (UEV) continue to occur every 4th reset point after the re-synchronization. Sawtooth waveform for Edge-aligned mode, Upcounting, TIMx_RCR = 3 and re-synchronization. A dashed vertical line indicates a software (SW) re-synchronization point. Update events (UEV) continue to occur every 4th reset point after the re-synchronization. Sawtooth waveform for Edge-aligned mode, Downcounting, TIMx_RCR = 3 and re-synchronization. A dashed vertical line indicates a software (SW) re-synchronization point. Update events (UEV) continue to occur every 4th reset point after the re-synchronization.

20.3.4 External trigger input

The timer features an external trigger input ETR. It can be used as:

Figure 153 below describes the ETR input conditioning. The input polarity is defined with the ETP bit in TIMxSMCR register. The trigger can be prescaled with the divider programmed by the ETPS[1:0] bitfield and digitally filtered with the ETF[3:0] bitfield.

Figure 153. External trigger input block

Block diagram of the External trigger input block showing the signal flow from ETR input through a polarity switch, divider, and filter downcounter to various controller components.

The diagram illustrates the signal path for the External Trigger (ETR) input. It begins with the 'ETR input' entering a polarity switch. This switch is controlled by the 'ETP' bit in the 'TIMx_SMCR' register and has two outputs: '0' (non-inverted) and '1' (inverted). The signal then passes through a 'Divider' block with options '/1, /2, /4, /8', which is configured by the 'ETPS[1:0]' bitfield in the 'TIMx_SMCR' register. The output of the divider is labeled 'ETRP'. This signal then enters a 'Filter downcounter' block, which is controlled by the 'ETF[3:0]' bitfield in the 'TIMx_SMCR' register and also receives an 'f_DTS' input. The final output of the filter downcounter is directed to three destinations: 'To the Output mode controller', 'To the CK_PSC circuitry', and 'To the Slave mode controller'. A reference code 'MS34403V2' is located in the bottom right corner of the diagram.

Block diagram of the External trigger input block showing the signal flow from ETR input through a polarity switch, divider, and filter downcounter to various controller components.

20.3.5 Clock selection

The counter clock can be provided by the following clock sources:

Internal clock source (CK_INT)

If the slave mode controller is disabled (SMS=000), then the CEN, DIR (in the TIMx_CR1 register) and UG bits (in the TIMx_EGR register) are actual control bits and can be changed only by software (except UG which remains cleared automatically). As soon as the CEN bit is written to 1, the prescaler is clocked by the internal clock CK_INT.

Figure 154 shows the behavior of the control circuit and the upcounter in normal mode, without prescaler.

Figure 154. Control circuit in normal mode, internal clock divided by 1

Timing diagram showing the control circuit and counter register behavior in normal mode with internal clock divided by 1.

The timing diagram illustrates the relationship between several signals and the counter register over time. The signals are: Internal clock (a continuous square wave), CEN=CNT_EN (a signal that goes high to enable the counter), UG (Update Generation, a pulse that triggers the counter register update), CNT_INIT (a signal that goes high to initialize the counter), Counter clock = CK_CNT = CK_PSC (which is active only when CEN is high), and Counter register (showing a sequence of values: 31, 32, 33, 34, 35, 36, 00, 01, 02, 03, 04, 05, 06, 07). Vertical dashed lines indicate key timing points: the first line is at the rising edge of the internal clock where CEN goes high; the second line is at the next rising edge of the internal clock where the counter increments from 31 to 32; the third line is at a rising edge where UG goes high; the fourth line is at the subsequent rising edge where the counter register updates to 00 and CNT_INIT goes high; the fifth line is at the next rising edge where the counter increments to 01 and CNT_INIT goes low. The counter register values are shown in boxes, with 31, 32, 33, 34, 35, 36, 00, 01, 02, 03, 04, 05, 06, 07 in sequence. The diagram is labeled MS31085V2 in the bottom right corner.

Timing diagram showing the control circuit and counter register behavior in normal mode with internal clock divided by 1.

External clock source mode 1

This mode is selected when SMS=111 in the TIMx_SMCR register. The counter can count at each rising or falling edge on a selected input.

Figure 155. TI2 external clock connection example

Block diagram showing the TI2 external clock connection path. The TI2 input passes through a Filter (controlled by ICF[3:0] in TIMx_CCMR1) and an Edge detector (controlled by CC2P in TIMx_CCER). The edge detector outputs TI2F_Rising and TI2F_Falling signals. These are multiplexed based on CC2P (0 for rising, 1 for falling) and then connected to a trigger input multiplexer. The multiplexer selects between ITRx (0xx), TI1_ED (100), TI1FP1 (101), TI2FP2 (110), and ETRF (111). The selected signal is then processed by an encoder mode block or an external clock mode block (TRGI, ETRF, CK_INT). The output is CK_PSC. Control registers shown include TIMx_SMCR (TS[2:0], ECE, SMS[2:0]) and TIMx_CCMR1 (ICF[3:0]).
Block diagram showing the TI2 external clock connection path. The TI2 input passes through a Filter (controlled by ICF[3:0] in TIMx_CCMR1) and an Edge detector (controlled by CC2P in TIMx_CCER). The edge detector outputs TI2F_Rising and TI2F_Falling signals. These are multiplexed based on CC2P (0 for rising, 1 for falling) and then connected to a trigger input multiplexer. The multiplexer selects between ITRx (0xx), TI1_ED (100), TI1FP1 (101), TI2FP2 (110), and ETRF (111). The selected signal is then processed by an encoder mode block or an external clock mode block (TRGI, ETRF, CK_INT). The output is CK_PSC. Control registers shown include TIMx_SMCR (TS[2:0], ECE, SMS[2:0]) and TIMx_CCMR1 (ICF[3:0]).

MS31196V1

For example, to configure the upcounter to count in response to a rising edge on the TI2 input, use the following procedure:

  1. 1. Configure channel 2 to detect rising edges on the TI2 input by writing CC2S = '01' in the TIMx_CCMR1 register.
  2. 2. Configure the input filter duration by writing the IC2F[3:0] bits in the TIMx_CCMR1 register (if no filter is needed, keep IC2F=0000).
  3. 3. Select rising edge polarity by writing CC2P=0 and CC2NP=0 in the TIMx_CCER register.
  4. 4. Configure the timer in external clock mode 1 by writing SMS=111 in the TIMx_SMCR register.
  5. 5. Select TI2 as the trigger input source by writing TS=110 in the TIMx_SMCR register.
  6. 6. Enable the counter by writing CEN=1 in the TIMx_CR1 register.

Note: The capture prescaler is not used for triggering, so the user does not need to configure it.

When a rising edge occurs on TI2, the counter counts once and the TIF flag is set.

The delay between the rising edge on TI2 and the actual clock of the counter is due to the resynchronization circuit on TI2 input.

Figure 156. Control circuit in external clock mode 1

Timing diagram for external clock mode 1. It shows five waveforms: TI2 (a periodic square wave), CNT_EN (a signal that goes high when TI2 is high), Counter clock = CK_CNT = CK_PSC (a pulse train that toggles on the rising edges of TI2), Counter register (showing values 34, 35, 36), and TIF (a signal that pulses high when the counter overflows from 36 back to 34). Arrows labeled 'Write TIF=0' point to the falling edges of the TIF signal. The diagram is labeled MS31087V2.
Timing diagram for external clock mode 1. It shows five waveforms: TI2 (a periodic square wave), CNT_EN (a signal that goes high when TI2 is high), Counter clock = CK_CNT = CK_PSC (a pulse train that toggles on the rising edges of TI2), Counter register (showing values 34, 35, 36), and TIF (a signal that pulses high when the counter overflows from 36 back to 34). Arrows labeled 'Write TIF=0' point to the falling edges of the TIF signal. The diagram is labeled MS31087V2.

External clock source mode 2

This mode is selected by writing ECE=1 in the TIMx_SMCR register.

The counter can count at each rising or falling edge on the external trigger input ETR.

The Figure 157 gives an overview of the external trigger input block.

Figure 157. External trigger input block

Block diagram of the external trigger input block. The ETR pin is connected to a multiplexer (ETR) with inputs 0 and 1. The multiplexer output goes to a 'Divider /1, /2, /4, /8' block. This block is controlled by ETPS[1:0] from the TIMx_SMCR register. The divider output is ETRP, which goes to a 'Filter downcounter' block. This block is controlled by ETF[3:0] from the TIMx_SMCR register. The downcounter output is ETRF, which goes to a 'CK_PSC' multiplexer. The CK_PSC multiplexer also has inputs from TI2F, TI1F, TRGI, and CK_INT (internal clock). It is controlled by ECE and SMS[2:0] from the TIMx_SMCR register. The final output is CK_PSC. The diagram is labeled MS33116V1.
Block diagram of the external trigger input block. The ETR pin is connected to a multiplexer (ETR) with inputs 0 and 1. The multiplexer output goes to a 'Divider /1, /2, /4, /8' block. This block is controlled by ETPS[1:0] from the TIMx_SMCR register. The divider output is ETRP, which goes to a 'Filter downcounter' block. This block is controlled by ETF[3:0] from the TIMx_SMCR register. The downcounter output is ETRF, which goes to a 'CK_PSC' multiplexer. The CK_PSC multiplexer also has inputs from TI2F, TI1F, TRGI, and CK_INT (internal clock). It is controlled by ECE and SMS[2:0] from the TIMx_SMCR register. The final output is CK_PSC. The diagram is labeled MS33116V1.

For example, to configure the upcounter to count each 2 rising edges on ETR, use the following procedure:

  1. 1. As no filter is needed in this example, write ETF[3:0]=0000 in the TIMx_SMCR register.
  2. 2. Set the prescaler by writing ETPS[1:0]=01 in the TIMx_SMCR register
  3. 3. Select rising edge detection on the ETR pin by writing ETP=0 in the TIMx_SMCR register
  4. 4. Enable external clock mode 2 by writing ECE=1 in the TIMx_SMCR register.
  5. 5. Enable the counter by writing CEN=1 in the TIMx_CR1 register.

The counter counts once each 2 ETR rising edges.

The delay between the rising edge on ETR and the actual clock of the counter is due to the resynchronization circuit on the ETRP signal. As a consequence, the maximum frequency which can be correctly captured by the counter is at most \( \frac{1}{4} \) of TIMxCLK frequency. When the ETRP signal is faster, the user should apply a division of the external signal by proper ETPS prescaler setting.

Figure 158. Control circuit in external clock mode 2

Timing diagram for Figure 158. Control circuit in external clock mode 2. The diagram shows the relationship between internal clock (fCK_INT), counter enable (CNT_EN), external trigger (ETR), resynchronized trigger (ETRP), trigger flag (ETRF), counter clock (CK_CNT), and counter register values. The counter increments by 1 for every two rising edges of the ETR signal. The counter register values shown are 34, 35, and 36.

The timing diagram illustrates the control circuit in external clock mode 2. It shows the following signals and their relationship over time:

The diagram shows that the counter register increments by 1 for every two rising edges of the ETR signal. The counter register values shown are 34, 35, and 36. The counter clock is derived from the ETR signal and is synchronized with the internal clock (f CK_INT ).

MSV3311V3

Timing diagram for Figure 158. Control circuit in external clock mode 2. The diagram shows the relationship between internal clock (fCK_INT), counter enable (CNT_EN), external trigger (ETR), resynchronized trigger (ETRP), trigger flag (ETRF), counter clock (CK_CNT), and counter register values. The counter increments by 1 for every two rising edges of the ETR signal. The counter register values shown are 34, 35, and 36.

20.3.6 Capture/compare channels

Each Capture/Compare channel is built around a capture/compare register (including a shadow register), an input stage for capture (with digital filter, multiplexing, and prescaler, except for channels 5 and 6) and an output stage (with comparator and output control).

Figure 159 to Figure 162 give an overview of one Capture/Compare channel.

The input stage samples the corresponding TIx input to generate a filtered signal TIxF. Then, an edge detector with polarity selection generates a signal (TIxFPx) which can be used as trigger input by the slave mode controller or as the capture command. It is prescaled before the capture register (ICxPS).

Figure 159. Capture/compare channel (example: channel 1 input stage)

Block diagram of the input stage of a capture/compare channel (example: channel 1).

The diagram illustrates the input stage of a capture/compare channel. The input signal TI1 is processed through a 'Filter downcounter' block, which is controlled by ICF[3:0] from the TIMx_CCMR1 register. The output of the filter is TI1F. This signal is then processed by an 'Edge detector' block, which generates two signals: TI1F_Rising and TI1F_Falling. These signals are multiplexed by a 2-to-1 multiplexer (labeled 0 and 1) controlled by CC1P/CC1NP from the TIMx_CCER register. The output of this multiplexer is TI1FP1. TI1FP1 is then processed by an OR gate along with TI1F_ED to produce the final output signal. TI1FP1 is also multiplexed by a 4-to-1 multiplexer (labeled 01, 10, 11) controlled by CC1S[1:0] from the TIMx_CCMR1 register. The output of this multiplexer is IC1. IC1 is then processed by a 'Divider' block (labeled /1, /2, /4, /8) controlled by ICPS[1:0] from the TIMx_CCMR1 register. The output of the divider is IC1PS. The diagram also shows various control signals and registers: ICF[3:0] from TIMx_CCMR1, CC1P/CC1NP from TIMx_CCER, CC1S[1:0] from TIMx_CCMR1, ICPS[1:0] from TIMx_CCMR1, and CC1E from TIMx_CCER. Other signals shown include TRC (from slave mode controller), TI2FP1, and TI2F_Rising/Falling (from channel 2).

Block diagram of the input stage of a capture/compare channel (example: channel 1).

The output stage generates an intermediate waveform which is then used for reference: OCxRef (active high). The polarity acts at the end of the chain.

Figure 160. Capture/compare channel 1 main circuit

Figure 160. Capture/compare channel 1 main circuit diagram showing internal logic for input and output modes, registers, and the counter.

This diagram illustrates the internal architecture of capture/compare channel 1. At the top, an APB Bus connects to an MCU-peripheral interface. This interface is linked to a 16/32-bit Capture/compare preload register and a compare shadow register. A Counter block is connected to both registers. In 'Input mode', signals CC1S[1], CC1S[0], IC1PS, CC1E, CC1G, and TIMx_EGR are processed through a series of OR and AND gates to control the 'Capture' function into the preload register. In 'Output mode', the compare shadow register feeds into a Comparator. The Comparator outputs CNT>CCR1 and CNT=CCR1 signals. These, along with CC1S[1], CC1S[0], OC1PE, and a UEV signal from the time base unit, are processed through logic gates to drive the OC1PE output and TIMx_CCMR1 register. The preload register also receives 'Compare transfer' data from the comparator. The diagram is labeled MSv63030V1.

Figure 160. Capture/compare channel 1 main circuit diagram showing internal logic for input and output modes, registers, and the counter.

Figure 161. Output stage of capture/compare channel (channel 1, idem ch. 2 and 3)

Figure 161. Output stage of capture/compare channel diagram showing the logic for generating OC1 and OC1N outputs from various control signals and the dead-time generator.

This diagram shows the output stage logic for capture/compare channel 1. It starts with TIMx_SMCR (OCCS, OCREF_CLR, ETRF) and OCREF_CLR signals. ETRF is divided by 2 to produce ocref_clr_int. OCREF_CLR and ocref_clr_int are inputs to a multiplexer that selects between 0 and 1 to produce OC1REF. OC1REF is fed into an Output mode controller and an Output selector. The Output mode controller also receives CNT>CCR1, CNT=CCR1, OCxREF (where x is the rank of the complementary channel), and OC5REF. The Output selector takes OC1REF and signals from OC1CE and OC1M[3:0] (from TIM1_CCMR1) to produce OC1REFC. OC1REFC is sent to the master mode controller and also to a Dead-time generator. The Dead-time generator also receives DTG[7:0] (from TIM1_BDTR) and produces OC1_DT and OC1N_DT signals. These signals pass through multiplexers (selecting between '0' and the dead-time signal) and then through inverters to produce CC1P and CC1N signals. CC1P and CC1N are inputs to Output enable circuits. The Output enable circuits also receive CC1NE, CC1E (from TIM1_CCER), MOE, OSSI, OSSR (from TIM1_BDTR), and OIS1, OIS1N (from TIM1_CR2) to generate the final OC1 and OC1N outputs. The diagram is labeled MS31199V2.

Figure 161. Output stage of capture/compare channel diagram showing the logic for generating OC1 and OC1N outputs from various control signals and the dead-time generator.

1. OCxREF, where x is the rank of the complementary channel

Figure 162. Output stage of capture/compare channel (channel 4)

Schematic diagram of the output stage of capture/compare channel 4. It shows the signal flow from the Output mode controller (driven by CNT > CCR4 and CNT = CCR4) through an Output selector to an Output enable circuit, resulting in the OC4 output. Control signals include TIMx_SMCR (OCCS), OCREF_CLR, ETRF, OC4REFC, TIM1_CCMR2 (OC4CE, OC4M[3:0]), TIM1_CCER (CC4E, CC4P), TIM1_BDTR (MOE, OSSI), and TIM1_CR2 (OIS4).
Schematic diagram of the output stage of capture/compare channel 4. It shows the signal flow from the Output mode controller (driven by CNT > CCR4 and CNT = CCR4) through an Output selector to an Output enable circuit, resulting in the OC4 output. Control signals include TIMx_SMCR (OCCS), OCREF_CLR, ETRF, OC4REFC, TIM1_CCMR2 (OC4CE, OC4M[3:0]), TIM1_CCER (CC4E, CC4P), TIM1_BDTR (MOE, OSSI), and TIM1_CR2 (OIS4).

Figure 163. Output stage of capture/compare channel (channel 5, idem ch. 6)

Schematic diagram of the output stage of capture/compare channel 5. It is identical in structure to Figure 162 but uses channel 5 specific signals: CNT > CCR5, CNT = CCR5, OC5REFC, TIM1_CCMR2 (OC5CE, OC5M[3:0]), CC5E, CC5P, and OC5(1) output. Control registers are the same as for channel 4.
Schematic diagram of the output stage of capture/compare channel 5. It is identical in structure to Figure 162 but uses channel 5 specific signals: CNT > CCR5, CNT = CCR5, OC5REFC, TIM1_CCMR2 (OC5CE, OC5M[3:0]), CC5E, CC5P, and OC5(1) output. Control registers are the same as for channel 4.

1. Not available externally.

The capture/compare block is made of one preload register and one shadow register. Write and read always access the preload register.

In capture mode, captures are actually done in the shadow register, which is copied into the preload register.

In compare mode, the content of the preload register is copied into the shadow register which is compared to the counter.

20.3.7 Input capture mode

In Input capture mode, the Capture/Compare Registers (TIMx_CCRx) are used to latch the value of the counter after a transition detected by the corresponding ICx signal. When a capture occurs, the corresponding CCxIF flag (TIMx_SR register) is set and an interrupt or a DMA request can be sent if they are enabled. If a capture occurs while the CCxIF flag was already high, then the over-capture flag CCxOF (TIMx_SR register) is set. CCxIF can be cleared by software by writing it to '0' or by reading the captured data stored in the TIMx_CCRx register. CCxOF is cleared when written with '0'.

The following example shows how to capture the counter value in TIMx_CCR1 when TI1 input rises. To do this, use the following procedure:

  1. 1. Select the active input: TIMx_CCR1 must be linked to the TI1 input, so write the CC1S bits to 01 in the TIMx_CCMR1 register. As soon as CC1S becomes different from 00, the channel is configured in input and the TIMx_CCR1 register becomes read-only.
  2. 2. Program the appropriate input filter duration in relation with the signal connected to the timer (when the input is one of the TIx (ICxF bits in the TIMx_CCMRx register). Let's imagine that, when toggling, the input signal is not stable during at most 5 internal clock cycles. We must program a filter duration longer than these 5 clock cycles. We can validate a transition on TI1 when 8 consecutive samples with the new level have been detected (sampled at \( f_{DTS} \) frequency). Then write IC1F bits to 0011 in the TIMx_CCMR1 register.
  3. 3. Select the edge of the active transition on the TI1 channel by writing CC1P and CC1NP bits to 0 in the TIMx_CCER register (rising edge in this case).
  4. 4. Program the input prescaler. In our example, we wish the capture to be performed at each valid transition, so the prescaler is disabled (write IC1PS bits to '00' in the TIMx_CCMR1 register).
  5. 5. Enable capture from the counter into the capture register by setting the CC1E bit in the TIMx_CCER register.
  6. 6. If needed, enable the related interrupt request by setting the CC1IE bit in the TIMx_DIER register, and/or the DMA request by setting the CC1DE bit in the TIMx_DIER register.

When an input capture occurs:

In order to handle the overcapture, it is recommended to read the data before the overcapture flag. This is to avoid missing an overcapture which could happen after reading the flag and before reading the data.

Note: IC interrupt and/or DMA requests can be generated by software by setting the corresponding CCxG bit in the TIMx_EGR register.

20.3.8 PWM input mode

This mode is a particular case of input capture mode. The procedure is the same except:

For example, the user can measure the period (in TIMx_CCR1 register) and the duty cycle (in TIMx_CCR2 register) of the PWM applied on TI1 using the following procedure (depending on CK_INT frequency and prescaler value):

  1. 1. Select the active input for TIMx_CCR1: write the CC1S bits to 01 in the TIMx_CCMR1 register (TI1 selected).
  2. 2. Select the active polarity for TI1FP1 (used both for capture in TIMx_CCR1 and counter clear): write the CC1P and CC1NP bits to '0' (active on rising edge).
  3. 3. Select the active input for TIMx_CCR2: write the CC2S bits to 10 in the TIMx_CCMR1 register (TI1 selected).
  4. 4. Select the active polarity for TI1FP2 (used for capture in TIMx_CCR2): write the CC2P and CC2NP bits to CC2P/CC2NP='10' (active on falling edge).
  5. 5. Select the valid trigger input: write the TS bits to 101 in the TIMx_SMCR register (TI1FP1 selected).
  6. 6. Configure the slave mode controller in reset mode: write the SMS bits to 0100 in the TIMx_SMCR register.
  7. 7. Enable the captures: write the CC1E and CC2E bits to '1' in the TIMx_CCER register.

Figure 164. PWM input mode timing

Timing diagram for PWM input mode. The diagram shows four waveforms over time: TI1 (PWM input), TIMx_CNT (counter), TIMx_CCR1 (capture register 1), and TIMx_CCR2 (capture register 2). TI1 is a PWM signal with a rising edge followed by a falling edge. TIMx_CNT is a counter that increments from 0000 to 0004, then resets to 0000 on the rising edge of TI1, and continues to increment. TIMx_CCR1 captures the counter value at the rising edge (0004). TIMx_CCR2 captures the counter value at the falling edge (0002). Annotations indicate: 'IC1 capture, IC2 capture, reset counter' at the rising edge, 'IC2 capture pulse width measurement' at the falling edge, and 'IC1 capture period measurement' at the next rising edge. The diagram is labeled ai15413.
Timing diagram for PWM input mode. The diagram shows four waveforms over time: TI1 (PWM input), TIMx_CNT (counter), TIMx_CCR1 (capture register 1), and TIMx_CCR2 (capture register 2). TI1 is a PWM signal with a rising edge followed by a falling edge. TIMx_CNT is a counter that increments from 0000 to 0004, then resets to 0000 on the rising edge of TI1, and continues to increment. TIMx_CCR1 captures the counter value at the rising edge (0004). TIMx_CCR2 captures the counter value at the falling edge (0002). Annotations indicate: 'IC1 capture, IC2 capture, reset counter' at the rising edge, 'IC2 capture pulse width measurement' at the falling edge, and 'IC1 capture period measurement' at the next rising edge. The diagram is labeled ai15413.

20.3.9 Forced output mode

In output mode (CCxS bits = 00 in the TIMx_CCMRx register), each output compare signal (OCxREF and then OCx/OCxN) can be forced to active or inactive level directly by software, independently of any comparison between the output compare register and the counter.

To force an output compare signal (OCxREF/OCx) to its active level, user just needs to write 0101 in the OCxM bits in the corresponding TIMx_CCMRx register. Thus OCxREF is

forced high (OCxREF is always active high) and OCx get opposite value to CCxP polarity bit.

For example: CCxP=0 (OCx active high) => OCx is forced to high level.

The OCxREF signal can be forced low by writing the OCxM bits to 0100 in the TIMx_CCMRx register.

Anyway, the comparison between the TIMx_CCRx shadow register and the counter is still performed and allows the flag to be set. Interrupt and DMA requests can be sent accordingly. This is described in the output compare mode section below.

20.3.10 Output compare mode

This function is used to control an output waveform or indicate when a period of time has elapsed. Channels 1 to 4 can be output, while Channel 5 and 6 are only available inside the device (for instance, for compound waveform generation or for ADC triggering).

When a match is found between the capture/compare register and the counter, the output compare function:

The TIMx_CCRx registers can be programmed with or without preload registers using the OCxPE bit in the TIMx_CCMRx register.

In output compare mode, the update event UEV has no effect on OCxREF and OCx output. The timing resolution is one count of the counter. Output compare mode can also be used to output a single pulse (in One Pulse mode).

Procedure

  1. 1. Select the counter clock (internal, external, prescaler).
  2. 2. Write the desired data in the TIMx_ARR and TIMx_CCRx registers.
  3. 3. Set the CCxIE bit if an interrupt request is to be generated.
  4. 4. Select the output mode. For example:
    • – Write OCxM = 0011 to toggle OCx output pin when CNT matches CCRx
    • – Write OCxPE = 0 to disable preload register
    • – Write CCxP = 0 to select active high polarity
    • – Write CCxE = 1 to enable the output
  5. 5. Enable the counter by setting the CEN bit in the TIMx_CR1 register.

The TIMx_CCRx register can be updated at any time by software to control the output waveform, provided that the preload register is not enabled (OCxPE='0', else TIMx_CCRx

shadow register is updated only at the next update event UEV). An example is given in Figure 165 .

Figure 165. Output compare mode, toggle on OC1

Timing diagram for Output compare mode, toggle on OC1. The diagram shows three horizontal timelines: TIM1_CNT, TIM1_CCR1, and OC1REF= OC1. TIM1_CNT starts at 0039, increments through 003A, 003B, ..., B200, to B201. TIM1_CCR1 is initially 003A and is updated to B201. An arrow points from the text 'Write B201h in the CC1R register' to the update point in TIM1_CCR1. OC1REF= OC1 is a signal that toggles state at each match point (003A and B201). Arrows from these match points point to the text 'Match detected on CCR1 Interrupt generated if enabled'. The diagram is labeled MS31092V1 in the bottom right corner.
Timing diagram for Output compare mode, toggle on OC1. The diagram shows three horizontal timelines: TIM1_CNT, TIM1_CCR1, and OC1REF= OC1. TIM1_CNT starts at 0039, increments through 003A, 003B, ..., B200, to B201. TIM1_CCR1 is initially 003A and is updated to B201. An arrow points from the text 'Write B201h in the CC1R register' to the update point in TIM1_CCR1. OC1REF= OC1 is a signal that toggles state at each match point (003A and B201). Arrows from these match points point to the text 'Match detected on CCR1 Interrupt generated if enabled'. The diagram is labeled MS31092V1 in the bottom right corner.

20.3.11 PWM mode

Pulse Width Modulation mode allows a signal to be generated with a frequency determined by the value of the TIMx_ARR register and a duty cycle determined by the value of the TIMx_CCRx register.

The PWM mode can be selected independently on each channel (one PWM per OCx output) by writing '0110' (PWM mode 1) or '0111' (PWM mode 2) in the OCxM bits in the TIMx_CCMRx register. The corresponding preload register must be enabled by setting the OCxPE bit in the TIMx_CCMRx register, and eventually the auto-reload preload register (in upcounting or center-aligned modes) by setting the ARPE bit in the TIMx_CR1 register.

As the preload registers are transferred to the shadow registers only when an update event occurs, before starting the counter, all registers must be initialized by setting the UG bit in the TIMx_EGR register.

OCx polarity is software programmable using the CCxP bit in the TIMx_CCER register. It can be programmed as active high or active low. OCx output is enabled by a combination of the CCxE, CCxNE, MOE, OSSI and OSSR bits (TIMx_CCER and TIMx_BDTR registers). Refer to the TIMx_CCER register description for more details.

In PWM mode (1 or 2), TIMx_CNT and TIMx_CCRx are always compared to determine whether \( TIMx\_CCRx \leq TIMx\_CNT \) or \( TIMx\_CNT \leq TIMx\_CCRx \) (depending on the direction of the counter).

The timer is able to generate PWM in edge-aligned mode or center-aligned mode depending on the CMS bits in the TIMx_CR1 register.

PWM edge-aligned mode

Upcounting is active when the DIR bit in the TIMx_CR1 register is low. Refer to the Upcounting mode on page 465 .

In the following example, we consider PWM mode 1. The reference PWM signal OCxREF is high as long as TIMx_CNT < TIMx_CCRx else it becomes low. If the compare value in TIMx_CCRx is greater than the auto-reload value (in TIMx_ARR) then OCxREF is held at '1'. If the compare value is 0 then OCxRef is held at '0'.

Figure 166 shows some edge-aligned PWM waveforms in an example where TIMx_ARR=8.

Figure 166. Edge-aligned PWM waveforms (ARR=8)

Timing diagram showing Counter register values (0-8, 0-1), OCxREF and CCxIF signals for CCRx=4, CCRx=8, CCRx>8, and CCRx=0. The diagram illustrates how the PWM signal levels change based on the counter value relative to the compare register values. For CCRx=4, OCxREF is high from counter 0 to 3 and low from 4 to 8. For CCRx=8, OCxREF is high from 0 to 7 and low at 8. For CCRx>8, OCxREF remains high throughout the cycle. For CCRx=0, OCxREF remains low throughout the cycle. CCxIF flags are shown pulsing at the appropriate counter values.
Timing diagram showing Counter register values (0-8, 0-1), OCxREF and CCxIF signals for CCRx=4, CCRx=8, CCRx>8, and CCRx=0. The diagram illustrates how the PWM signal levels change based on the counter value relative to the compare register values. For CCRx=4, OCxREF is high from counter 0 to 3 and low from 4 to 8. For CCRx=8, OCxREF is high from 0 to 7 and low at 8. For CCRx>8, OCxREF remains high throughout the cycle. For CCRx=0, OCxREF remains low throughout the cycle. CCxIF flags are shown pulsing at the appropriate counter values.

Downcounting is active when DIR bit in TIMx_CR1 register is high. Refer to the Downcounting mode on page 469

In PWM mode 1, the reference signal OCxRef is low as long as TIMx_CNT > TIMx_CCRx else it becomes high. If the compare value in TIMx_CCRx is greater than the auto-reload value in TIMx_ARR, then OCxREF is held at '1'. 0% PWM is not possible in this mode.

PWM center-aligned mode

Center-aligned mode is active when the CMS bits in TIMx_CR1 register are different from '00' (all the remaining configurations having the same effect on the OCxRef/OCx signals). The compare flag is set when the counter counts up, when it counts down or both when it counts up and down depending on the CMS bits configuration. The direction bit (DIR) in the

TIMx_CR1 register is updated by hardware and must not be changed by software. Refer to the Center-aligned mode (up/down counting) on page 472 .

Figure 167 shows some center-aligned PWM waveforms in an example where:

Figure 167. Center-aligned PWM waveforms (ARR=8)

Timing diagram showing center-aligned PWM waveforms for various CCRx values (4, 7, 8, >8, 0) with ARR=8. The diagram includes counter register values, OCxREF signals, and CCxIF flag status for different CMS settings (01, 10, 11).

The figure illustrates the relationship between the counter register values and the resulting PWM waveforms for different capture/compare register (CCRx) values in center-aligned mode. The counter register values are shown at the top, ranging from 0 to 8 and then back down to 0, with an additional '1' at the end. Vertical dashed lines indicate the points where the counter reaches the CCRx values. The OCxREF signal is shown for each CCRx value, with its state (high or low) determined by the CMS (Capture/Compare Mode Selection) settings. The CCxIF flag is shown for each CCRx value, indicating when the counter counts down to the CCRx value. The CMS settings are CMS=01, CMS=10, and CMS=11. The OCxREF signal is high for CMS=01 and low for CMS=10 and CMS=11. The CCxIF flag is set when the counter counts down to the CCRx value. The diagram is labeled AI14681b in the bottom right corner.

Timing diagram showing center-aligned PWM waveforms for various CCRx values (4, 7, 8, >8, 0) with ARR=8. The diagram includes counter register values, OCxREF signals, and CCxIF flag status for different CMS settings (01, 10, 11).

Hints on using center-aligned mode

in the TIMx_CR1 register. Moreover, the DIR and CMS bits must not be changed at the same time by the software.

20.3.12 Asymmetric PWM mode

Asymmetric mode allows two center-aligned PWM signals to be generated with a programmable phase shift. While the frequency is determined by the value of the TIMx_ARR register, the duty cycle and the phase-shift are determined by a pair of TIMx_CCRx register. One register controls the PWM during up-counting, the second during down counting, so that PWM is adjusted every half PWM cycle:

Asymmetric PWM mode can be selected independently on two channel (one OCx output per pair of CCR registers) by writing '1110' (Asymmetric PWM mode 1) or '1111' (Asymmetric PWM mode 2) in the OCxM bits in the TIMx_CCMRx register.

Note: The OCxM[3:0] bit field is split into two parts for compatibility reasons, the most significant bit is not contiguous with the 3 least significant ones.

When a given channel is used as asymmetric PWM channel, its complementary channel can also be used. For instance, if an OC1REFC signal is generated on channel 1 (Asymmetric PWM mode 1), it is possible to output either the OC2REF signal on channel 2, or an OC2REFC signal resulting from asymmetric PWM mode 1.

Figure 168 represents an example of signals that can be generated using Asymmetric PWM mode (channels 1 to 4 are configured in Asymmetric PWM mode 1). Together with the deadtime generator, this allows a full-bridge phase-shifted DC to DC converter to be controlled.

Figure 168. Generation of 2 phase-shifted PWM signals with 50% duty cycle

Timing diagram showing the generation of two phase-shifted PWM signals with 50% duty cycle. The top row shows the Counter register values from 0 to 8, then 7 down to 0, then 1. Below are two PWM signals: OC1REFC and OC3REFC. OC1REFC is high from counter value 0 to 8 and low from 8 to 0. OC3REFC is high from counter value 3 to 5 and low otherwise. CCR1=0, CCR2=8, CCR3=3, CCR4=5 are indicated on the left. The diagram is labeled MS33117V1 in the bottom right corner.
Timing diagram showing the generation of two phase-shifted PWM signals with 50% duty cycle. The top row shows the Counter register values from 0 to 8, then 7 down to 0, then 1. Below are two PWM signals: OC1REFC and OC3REFC. OC1REFC is high from counter value 0 to 8 and low from 8 to 0. OC3REFC is high from counter value 3 to 5 and low otherwise. CCR1=0, CCR2=8, CCR3=3, CCR4=5 are indicated on the left. The diagram is labeled MS33117V1 in the bottom right corner.

20.3.13 Combined PWM mode

Combined PWM mode allows two edge or center-aligned PWM signals to be generated with programmable delay and phase shift between respective pulses. While the frequency is determined by the value of the TIMx_ARR register, the duty cycle and delay are determined by the two TIMx_CCRx registers. The resulting signals, OCxREFC, are made of an OR or AND logical combination of two reference PWMs:

Combined PWM mode can be selected independently on two channels (one OCx output per pair of CCR registers) by writing '1100' (Combined PWM mode 1) or '1101' (Combined PWM mode 2) in the OCxM bits in the TIMx_CCMRx register.

When a given channel is used as combined PWM channel, its complementary channel must be configured in the opposite PWM mode (for instance, one in Combined PWM mode 1 and the other in Combined PWM mode 2).

Note: The OCxM[3:0] bit field is split into two parts for compatibility reasons, the most significant bit is not contiguous with the 3 least significant ones.

Figure 169 represents an example of signals that can be generated using Asymmetric PWM mode, obtained with the following configuration:

Figure 169. Combined PWM mode on channel 1 and 3

Timing diagram showing combined PWM mode on channel 1 and 3. The diagram displays several signal traces over time: OC2', OC1', OC2, OC1 (all showing sawtooth-like PWM signals); OC1REF, OC2REF, OC1REF', OC2REF' (showing rectangular reference signals); and OC1REFC, OC1REFC' (showing combined reference signals). Vertical dashed lines indicate synchronization points. Below the diagram, text defines OC1REFC = OC1REF AND OC2REF and OC1REFC' = OC1REF' OR OC2REF'. The identifier MS31094V1 is in the bottom right corner.

OC1REFC = OC1REF AND OC2REF
OC1REFC' = OC1REF' OR OC2REF'

MS31094V1

Timing diagram showing combined PWM mode on channel 1 and 3. The diagram displays several signal traces over time: OC2', OC1', OC2, OC1 (all showing sawtooth-like PWM signals); OC1REF, OC2REF, OC1REF', OC2REF' (showing rectangular reference signals); and OC1REFC, OC1REFC' (showing combined reference signals). Vertical dashed lines indicate synchronization points. Below the diagram, text defines OC1REFC = OC1REF AND OC2REF and OC1REFC' = OC1REF' OR OC2REF'. The identifier MS31094V1 is in the bottom right corner.

20.3.14 Combined 3-phase PWM mode

Combined 3-phase PWM mode allows one to three center-aligned PWM signals to be generated with a single programmable signal ANDed in the middle of the pulses. The OC5REF signal is used to define the resulting combined signal. The 3-bits GC5C[3:1] in the TIMx_CCR5 allow selection on which reference signal the OC5REF is combined. The resulting signals, OCxREFC, are made of an AND logical combination of two reference PWMs:

Combined 3-phase PWM mode can be selected independently on channels 1 to 3 by setting at least one of the 3-bits GC5C[3:1].

Figure 170. 3-phase combined PWM signals with multiple trigger pulses per period

Timing diagram showing 3-phase combined PWM signals with multiple trigger pulses per period. The diagram includes waveforms for ARR, OC5, OC6, OC1, OC4, OC2, OC3, Counter, OC5ref, OC1refC, OC2refC, OC3refC, Preload, Active, OC4ref, OC6ref, and TRGO2. The Counter waveform is a sawtooth wave. The Preload and Active waveforms show the values 100, xxx, 001, and 100. The TRGO2 waveform shows multiple trigger pulses per period.

The figure is a timing diagram illustrating the relationship between various timer signals over two periods. The signals listed on the left are: ARR, OC5, OC6, OC1, OC4, OC2, OC3, Counter, OC5ref, OC1refC, OC2refC, OC3refC, Preload, Active, OC4ref, OC6ref, and TRGO2. The Counter signal is a sawtooth wave that ramps up and then down. The Preload signal shows a value of 100, followed by a transition to 'xxx', and then back to 100. The Active signal shows a value of 001, followed by a transition to 100, and then back to 001. The TRGO2 signal shows multiple trigger pulses per period, corresponding to the rising and falling edges of the Counter signal. The diagram is labeled MS33102V1 in the bottom right corner.

Timing diagram showing 3-phase combined PWM signals with multiple trigger pulses per period. The diagram includes waveforms for ARR, OC5, OC6, OC1, OC4, OC2, OC3, Counter, OC5ref, OC1refC, OC2refC, OC3refC, Preload, Active, OC4ref, OC6ref, and TRGO2. The Counter waveform is a sawtooth wave. The Preload and Active waveforms show the values 100, xxx, 001, and 100. The TRGO2 waveform shows multiple trigger pulses per period.

The TRGO2 waveform shows how the ADC can be synchronized on given 3-phase PWM signals. Refer to Section 20.3.26: ADC synchronization for more details.

20.3.15 Complementary outputs and dead-time insertion

The advanced-control timers (TIM1) can output two complementary signals and manage the switching-off and the switching-on instants of the outputs.

This time is generally known as dead-time and it has to be adjusted depending on the devices that are connected to the outputs and their characteristics (intrinsic delays of level-shifters, delays due to power switches...)

The polarity of the outputs (main output OCx or complementary OCxN) can be selected independently for each output. This is done by writing to the CCxP and CCxNP bits in the TIMx_CCER register.

The complementary signals OCx and OCxN are activated by a combination of several control bits: the CCxE and CCxNE bits in the TIMx_CCER register and the MOE, OISx, OISxN, OSSI and OSSR bits in the TIMx_BDTR and TIMx_CR2 registers. Refer to Table 116: Output control bits for complementary OCx and OCxN channels with break feature on page 539 for more details. In particular, the dead-time is activated when switching to the idle state (MOE falling down to 0).

Dead-time insertion is enabled by setting both CCxE and CCxNE bits, and the MOE bit if the break circuit is present. There is one 10-bit dead-time generator for each channel. From a reference waveform OCxREF, it generates 2 outputs OCx and OCxN. If OCx and OCxN are active high:

If the delay is greater than the width of the active output (OCx or OCxN) then the corresponding pulse is not generated.

The following figures show the relationships between the output signals of the dead-time generator and the reference signal OCxREF. (we suppose CCxP=0, CCxNP=0, MOE=1, CCxE=1 and CCxNE=1 in these examples)

Figure 171. Complementary output with dead-time insertion

Timing diagram for Figure 171 showing OCxREF, OCx, and OCxN waveforms with dead-time insertion.

This timing diagram illustrates the relationship between a reference signal (OCxREF) and two complementary output signals (OCx and OCxN) with dead-time insertion. The OCxREF signal is a periodic square wave. The OCx signal follows the OCxREF signal but has a delayed rising edge. The OCxN signal is the inverse of the OCx signal but also has a delayed rising edge. The 'delay' is indicated by double-headed arrows between the rising edges of the reference signal and the output signals. The diagram is labeled MS31095V1 in the bottom right corner.

Timing diagram for Figure 171 showing OCxREF, OCx, and OCxN waveforms with dead-time insertion.

Figure 172. Dead-time waveforms with delay greater than the negative pulse

Timing diagram for Figure 172 showing OCxREF, OCx, and OCxN waveforms where the delay is greater than the negative pulse width.

This timing diagram shows the output signals when the dead-time delay is greater than the width of the negative pulse of the reference signal. The OCxREF signal is a periodic square wave. The OCx signal follows the OCxREF signal but has a delayed rising edge. The OCxN signal is the inverse of the OCx signal but also has a delayed rising edge. The 'delay' is indicated by a double-headed arrow between the rising edges of the reference signal and the output signals. The diagram is labeled MS31096V1 in the bottom right corner.

Timing diagram for Figure 172 showing OCxREF, OCx, and OCxN waveforms where the delay is greater than the negative pulse width.

Figure 173. Dead-time waveforms with delay greater than the positive pulse

Timing diagram showing three waveforms: OCxREF, OCx, and OCxN. OCxREF is a pulse that goes high and then low. OCx is initially high and goes low when OCxREF goes high, returning to high when OCxREF goes low. OCxN is initially low and goes high when OCxREF goes high, returning to low when OCxREF goes low. A 'delay' is indicated between the falling edge of OCxREF and the rising edge of OCxN.

The diagram shows three digital signals over time. The top signal, OCxREF, is a rectangular pulse. The middle signal, OCx, is initially high and transitions to low at the rising edge of OCxREF, returning to high at the falling edge. The bottom signal, OCxN, is initially low and transitions to high at the rising edge of OCxREF, returning to low at the falling edge. A horizontal double-headed arrow labeled 'delay' indicates the time interval between the falling edge of OCxREF and the rising edge of OCxN. The text 'MS31097V1' is in the bottom right corner.

Timing diagram showing three waveforms: OCxREF, OCx, and OCxN. OCxREF is a pulse that goes high and then low. OCx is initially high and goes low when OCxREF goes high, returning to high when OCxREF goes low. OCxN is initially low and goes high when OCxREF goes high, returning to low when OCxREF goes low. A 'delay' is indicated between the falling edge of OCxREF and the rising edge of OCxN.

The dead-time delay is the same for each of the channels and is programmable with the DTG bits in the TIMx_BDTR register. Refer to Section 20.4.20: TIM1 break and dead-time register (TIM1_BDTR) for delay calculation.

Re-directing OCxREF to OCx or OCxN

In output mode (forced, output compare or PWM), OCxREF can be re-directed to the OCx output or to OCxN output by configuring the CCxE and CCxNE bits in the TIMx_CCER register.

This allows a specific waveform to be sent (such as PWM or static active level) on one output while the complementary remains at its inactive level. Other alternative possibilities are to have both outputs at inactive level or both outputs active and complementary with dead-time.

Note: When only OCxN is enabled (CCxE=0, CCxNE=1), it is not complemented and becomes active as soon as OCxREF is high. For example, if CCxNP=0 then OCxN=OCxRef. On the other hand, when both OCx and OCxN are enabled (CCxE=CCxNE=1) OCx becomes active when OCxREF is high whereas OCxN is complemented and becomes active when OCxREF is low.

20.3.16 Using the break function

The purpose of the break function is to protect power switches driven by PWM signals generated with the TIM1 timer. The two break inputs are usually connected to fault outputs of power stages and 3-phase inverters. When activated, the break circuitry shuts down the PWM outputs and forces them to a predefined safe state.

When using the break functions, the output enable signals and inactive levels are modified according to additional control bits (MOE, OSSI and OSSR bits in the TIMx_BDTR register, OISx and OISxN bits in the TIMx_CR2 register). In any case, the OCx and OCxN outputs cannot be set both to active level at a given time. Refer to Table 116: Output control bits for complementary OCx and OCxN channels with break feature on page 539 for more details.

The source for BRK can be:

The source for BRK_ACTH can be internal only:

Caution: The internal sources protection is not available when the timer is in automatic output enable mode (AOE bit set in the TIMx_BDTR). The MOE bit is set again on the next update event, regardless of any pending error on the BRK_ACTH input.

The source for BRK2 can be:

If there are several break sources, the resulting break signal will be an OR between all the input signals.

When exiting from reset, the break circuit is disabled and the MOE bit is low. The break functions can be enabled by setting the BKE and BK2E bits in the TIMx_BDTR register. The break input polarities can be selected by configuring the BKP and BK2P bits in the same register. BKE/BK2E and BKP/BK2P can be modified at the same time. When the BKE/BK2E and BKP/BK2P bits are written, a delay of 1 APB clock cycle is applied before the writing is effective. Consequently, it is necessary to wait 1 APB clock period to correctly read back the bit after the write operation.

Because MOE falling edge can be asynchronous, a resynchronization circuit has been inserted between the actual signal (acting on the outputs) and the synchronous control bit (accessed in the TIMx_BDTR register). It results in some delays between the asynchronous and the synchronous signals. In particular, if MOE is set to 1 whereas it was low, a delay must be inserted (dummy instruction) before reading it correctly. This is because the write acts on the asynchronous signal whereas the read reflects the synchronous signal.

The break can be generated by any of the break inputs (BRK, BRK2, BRK_ACTH), BRK and BRK2 have:

The digital filter feature is available on BRK and BRK2. It is not available on BRK_ACTH.

That means that the digital filter is:

Break events can also be generated by software using BG and B2G bits in the TIMx_EGR register. The software break generation using BG and B2G is active whatever the BKE and BK2E enable bits values.

Note: An asynchronous (clockless) operation is only guaranteed when the programmable filter is disabled. If it is enabled, a fail safe clock mode (for example by using the internal PLL and/or the CSS) must be used to guarantee that break events are handled.

When one of the breaks occurs (selected level on one of the break inputs):

Note: The break inputs are active on level. Thus, the MOE cannot be set while the break input is active (neither automatically nor by software). In the meantime, the status flag BIF and B2IF cannot be cleared.

In addition to the break input and the output management, a write protection has been implemented inside the break circuit to safeguard the application. It allows the configuration of several parameters to be freeze (dead-time duration, OCx/OCxN polarities and state when disabled, OCxM configurations, break enable and polarity). The application can choose from 3 levels of protection selected by the LOCK bits in the TIMx_BDTR register. Refer to Section 20.4.20: TIM1 break and dead-time register (TIM1_BDTR) . The LOCK bits can be written only once after an MCU reset.

Figure 174 shows an example of behavior of the outputs in response to a break.

Figure 174. Various output behavior in response to a break event on BKIN (OSSI = 1)

Timing diagram showing various output behaviors (OCxREF, OCx, OCxN) in response to a break event on BKIN (MOE falling edge). The diagram illustrates different states and delays for OCx and OCxN outputs based on configuration parameters like CCxE, CCxP, OISx, CCxNE, and CCxNP.

The diagram illustrates the output behavior of an advanced-control timer (TIM1) in response to a break event on the BKIN pin (MOE falling edge). The diagram shows the state of the OCxREF, OCx, and OCxN outputs before and after the break event, with various delays and states indicated.

Output Labels and Conditions:

Timing diagram showing various output behaviors (OCxREF, OCx, OCxN) in response to a break event on BKIN (MOE falling edge). The diagram illustrates different states and delays for OCx and OCxN outputs based on configuration parameters like CCxE, CCxP, OISx, CCxNE, and CCxNP.

MS31098V1

The two break inputs have different behaviors on timer outputs:

The BRK has a higher priority than BRK2 input, as described in Table 113 .

Note: BRK2 must only be used with OSSR = OSSI = 1.

Table 113. Behavior of timer outputs versus BRK/BRK2 inputs

BRKBRK2Timer outputs stateTypical use case
OCxN output (low side switches)OCx output (high side switches)
ActiveX
  • – Inactive then forced output state (after a deadtime)
  • – Outputs disabled if OSSI = 0 (control taken over by GPIO logic)
ON after deadtime insertionOFF
InactiveActiveInactiveOFFOFF

Figure 175 gives an example of OCx and OCxN output behavior in case of active signals on BKIN and BKIN2 inputs. In this case, both outputs have active high polarities (CCxP = CCxNP = 0 in TIMx_CCER register).

Figure 175. PWM output state following BKIN and BKIN2 pins assertion (OSSI=1)

Timing diagram showing the PWM output state following BKIN and BKIN2 pins assertion (OSSI=1). The diagram illustrates the relationship between BKIN2, BKIN, OCx, and I/O state signals over time. BKIN2 and BKIN are shown as active-low signals. OCx is a PWM signal. The I/O state is shown as a sequence of Active, Inactive, and Idle states. Deadtime is indicated between the assertion of BKIN and BKIN2 and the resulting change in the I/O state.

The timing diagram shows four signal traces over time. From top to bottom: BKIN2, BKIN, OCx, and I/O state.
1. BKIN2 : Starts high, then goes low (asserted), then returns high.
2. BKIN : Starts high, then goes low (asserted) after BKIN2, then returns high.
3. OCx : A PWM signal that is initially active. When BKIN or BKIN2 is asserted, the output enters an 'Inactive' state after a 'Deadtime' interval. When both signals return high, the output returns to an 'Active' state after another 'Deadtime' interval.
4. I/O state : Shows three phases: 'Active' (initial state), 'Inactive' (following assertion of BKIN/BKIN2), and 'Idle' (following de-assertion). Vertical dashed lines mark the transitions between these states, with 'Deadtime' intervals indicated between the signal changes and the state transitions.
The diagram is labeled with 'MS33103V1' in the bottom right corner.

Timing diagram showing the PWM output state following BKIN and BKIN2 pins assertion (OSSI=1). The diagram illustrates the relationship between BKIN2, BKIN, OCx, and I/O state signals over time. BKIN2 and BKIN are shown as active-low signals. OCx is a PWM signal. The I/O state is shown as a sequence of Active, Inactive, and Idle states. Deadtime is indicated between the assertion of BKIN and BKIN2 and the resulting change in the I/O state.

Figure 176. PWM output state following BKIN assertion (OSSI=0)

Timing diagram showing the PWM output state following BKIN assertion (OSSI=0). The diagram illustrates three signal levels over time: BKIN, OCx, and I/O state. BKIN is shown as a high-level signal. OCx is a PWM signal that transitions from an 'Active' state to an 'Inactive' state, then to a 'Disabled' state. The 'Inactive' state is characterized by a 'Deadtime' period. The I/O state is shown as a signal that transitions from an 'Active' state to an 'Inactive' state, then to a 'Disabled' state. The 'Disabled' state is labeled as 'I/O state defined by the GPIO controller (HI-Z)'. The diagram is labeled with 'Active', 'Inactive', and 'Disabled' regions at the bottom. A reference code 'MS33104V1' is present in the bottom right corner.
Timing diagram showing the PWM output state following BKIN assertion (OSSI=0). The diagram illustrates three signal levels over time: BKIN, OCx, and I/O state. BKIN is shown as a high-level signal. OCx is a PWM signal that transitions from an 'Active' state to an 'Inactive' state, then to a 'Disabled' state. The 'Inactive' state is characterized by a 'Deadtime' period. The I/O state is shown as a signal that transitions from an 'Active' state to an 'Inactive' state, then to a 'Disabled' state. The 'Disabled' state is labeled as 'I/O state defined by the GPIO controller (HI-Z)'. The diagram is labeled with 'Active', 'Inactive', and 'Disabled' regions at the bottom. A reference code 'MS33104V1' is present in the bottom right corner.

20.3.17 Clearing the OCxREF signal on an external event

The OCxREF signal of a given channel can be cleared when a high level is applied on the ocref_clr_int input (OCxCE enable bit in the corresponding TIMx_CCMRx register set to 1). OCxREF remains low until the next update event (UEV) occurs. This function can only be used in Output compare and PWM modes. It does not work in Forced mode. ocref_clr_int input can be selected between the OCREF_CLR input and ETRF (ETR after the filter) by configuring the OCCS bit in the TIMx_SMCR register.

When ETRF is chosen, ETR must be configured as follows:

  1. 1. The External Trigger Prescaler should be kept off: bits ETPS[1:0] of the TIMx_SMCR register set to '00'.
  2. 2. The external clock mode 2 must be disabled: bit ECE of the TIMx_SMCR register set to '0'.
  3. 3. The External Trigger Polarity (ETP) and the External Trigger Filter (ETF) can be configured according to the user needs.

Figure 177 shows the behavior of the OCxREF signal when the ETRF Input becomes High, for both values of the enable bit OCxCE. In this example, the timer TIMx is programmed in PWM mode.

Figure 177. Clearing TIMx OCxREF

Timing diagram showing the clearing of TIMx OCxREF signals. The diagram includes four waveforms: Counter (CNT) (CCRx) showing periodic sawtooth waveforms; ETRF showing a pulse; OCxREF (OCxCE = '0') showing a signal that goes low when ETRF is high; and OCxREF (OCxCE = '1') showing a signal that goes low when ETRF is high and returns high at the next counter overflow. Arrows point to the rising edges of the OCxREF signals with labels 'ocref_clr_int becomes high' and 'ocref_clr_int still high'. The diagram is labeled MS33105V2 in the bottom right corner.

Figure 177 is a timing diagram illustrating the clearing of TIMx OCxREF signals. The diagram shows four waveforms over time:

Two arrows point to the rising edges of the OCxREF signals:

The diagram is labeled MS33105V2 in the bottom right corner.

Timing diagram showing the clearing of TIMx OCxREF signals. The diagram includes four waveforms: Counter (CNT) (CCRx) showing periodic sawtooth waveforms; ETRF showing a pulse; OCxREF (OCxCE = '0') showing a signal that goes low when ETRF is high; and OCxREF (OCxCE = '1') showing a signal that goes low when ETRF is high and returns high at the next counter overflow. Arrows point to the rising edges of the OCxREF signals with labels 'ocref_clr_int becomes high' and 'ocref_clr_int still high'. The diagram is labeled MS33105V2 in the bottom right corner.

Note: In case of a PWM with a 100% duty cycle (if \( CCRx > ARR \) ), then OCxREF is enabled again at the next counter overflow.

20.3.18 6-step PWM generation

When complementary outputs are used on a channel, preload bits are available on the OCxM, CCxE and CCxNE bits. The preload bits are transferred to the shadow bits at the COM commutation event. Thus one can program in advance the configuration for the next step and change the configuration of all the channels at the same time. COM can be generated by software by setting the COM bit in the TIMx_EGR register or by hardware (on TRGI rising edge).

A flag is set when the COM event occurs (COMIF bit in the TIMx_SR register), which can generate an interrupt (if the COMIE bit is set in the TIMx_DIER register) or a DMA request (if the COMDE bit is set in the TIMx_DIER register).

The Figure 178 describes the behavior of the OCx and OCxN outputs when a COM event occurs, in 3 different examples of programmed configurations.

Figure 178. 6-step generation, COM example (OSSR=1)

Timing diagram showing counter (CNT), OCxREF, COM event, and three examples of OCx and OCxN output behaviors with configuration changes.

The figure is a timing diagram illustrating the behavior of OCx and OCxN outputs during 6-step PWM generation. The top section shows the counter (CNT) with a sawtooth waveform and a compare level (CCRx). Below it is the OCxREF signal, which is a square wave. A 'COM event' is indicated by a pulse triggered by a 'Write COM to 1' software action. The diagram is divided into three examples showing different output states and configuration changes:

The identifier 'ai14910' is present in the bottom right corner of the diagram area.

Timing diagram showing counter (CNT), OCxREF, COM event, and three examples of OCx and OCxN output behaviors with configuration changes.

20.3.19 One-pulse mode

One-pulse mode (OPM) is a particular case of the previous modes. It allows the counter to be started in response to a stimulus and to generate a pulse with a programmable length after a programmable delay.

Starting the counter can be controlled through the slave mode controller. Generating the waveform can be done in output compare mode or PWM mode. One-pulse mode is selected by setting the OPM bit in the TIMx_CR1 register. This makes the counter stop automatically at the next update event UEV.

A pulse can be correctly generated only if the compare value is different from the counter initial value. Before starting (when the timer is waiting for the trigger), the configuration must be:

Figure 179. Example of one pulse mode.

Timing diagram for one-pulse mode showing TI2, OC1REF, OC1, and Counter waveforms over time.

The diagram illustrates the timing for one-pulse mode. The top waveform is TI2, showing a single positive pulse. Below it are OC1REF and OC1, which show a pulse that starts after a delay and ends at the next update event. The bottom graph shows the Counter value over time, starting at 0 and increasing in steps until it reaches TIM1_CCR1, at which point it stops. The time interval from the rising edge of TI2 to the start of the counter is labeled t_DELAY, and the duration of the counter's active period is labeled t_PULSE. The maximum counter value is TIM1_ARR. The diagram is labeled MS31099V1 in the bottom right corner.

Timing diagram for one-pulse mode showing TI2, OC1REF, OC1, and Counter waveforms over time.

For example one may want to generate a positive pulse on OC1 with a length of \( t_{PULSE} \) and after a delay of \( t_{DELAY} \) as soon as a positive edge is detected on the TI2 input pin.

Let's use TI2FP2 as trigger 1:

  1. 1. Map TI2FP2 to TI2 by writing CC2S='01' in the TIMx_CCMR1 register.
  2. 2. TI2FP2 must detect a rising edge, write CC2P='0' and CC2NP='0' in the TIMx_CCER register.
  3. 3. Configure TI2FP2 as trigger for the slave mode controller (TRGI) by writing TS=110 in the TIMx_SMCR register.
  4. 4. TI2FP2 is used to start the counter by writing SMS to '110' in the TIMx_SMCR register (trigger mode).

The OPM waveform is defined by writing the compare registers (taking into account the clock frequency and the counter prescaler).

In our example, the DIR and CMS bits in the TIMx_CR1 register should be low.

Since only 1 pulse (Single mode) is needed, a 1 must be written in the OPM bit in the TIMx_CR1 register to stop the counter at the next update event (when the counter rolls over from the auto-reload value back to 0). When OPM bit in the TIMx_CR1 register is set to '0', so the Repetitive Mode is selected.

Particular case: OCx fast enable:

In One-pulse mode, the edge detection on TIx input set the CEN bit which enables the counter. Then the comparison between the counter and the compare value makes the output toggle. But several clock cycles are needed for these operations and it limits the minimum delay \( t_{\text{DELAY min}} \) we can get.

If one wants to output a waveform with the minimum delay, the OCxFE bit can be set in the TIMx_CCMRx register. Then OCxRef (and OCx) are forced in response to the stimulus, without taking in account the comparison. Its new level is the same as if a compare match had occurred. OCxFE acts only if the channel is configured in PWM1 or PWM2 mode.

20.3.20 Retriggerable one pulse mode

This mode allows the counter to be started in response to a stimulus and to generate a pulse with a programmable length, but with the following differences with Non-retriggerable one pulse mode described in Section 20.3.19 :

The timer must be in Slave mode, with the bits SMS[3:0] = '1000' (Combined Reset + trigger mode) in the TIMx_SMCR register, and the OCxM[3:0] bits set to '1000' or '1001' for Retriggerable OPM mode 1 or 2.

If the timer is configured in Up-counting mode, the corresponding CCRx must be set to 0 (the ARR register sets the pulse length). If the timer is configured in Down-counting mode, CCRx must be above or equal to ARR.

Note: The OCxM[3:0] and SMS[3:0] bit fields are split into two parts for compatibility reasons, the most significant bit are not contiguous with the 3 least significant ones.

This mode must not be used with center-aligned PWM modes. It is mandatory to have CMS[1:0] = 00 in TIMx_CR1.

Figure 180. Retriggerable one pulse mode

Timing diagram for Retriggerable one pulse mode. The diagram shows three signals over time: TRGI (Trigger), Counter, and Output. TRGI shows two positive pulses. The Counter shows a sawtooth-like waveform that increases linearly from a baseline upon the first TRGI pulse and is retriggered (resets and starts increasing again) by the second TRGI pulse. The Output signal is high when the Counter is increasing and low otherwise.

MS33106V1

Timing diagram for Retriggerable one pulse mode. The diagram shows three signals over time: TRGI (Trigger), Counter, and Output. TRGI shows two positive pulses. The Counter shows a sawtooth-like waveform that increases linearly from a baseline upon the first TRGI pulse and is retriggered (resets and starts increasing again) by the second TRGI pulse. The Output signal is high when the Counter is increasing and low otherwise.

20.3.21 Encoder interface mode

To select Encoder Interface mode write SMS='001' in the TIMx_SMCR register if the counter is counting on TI2 edges only, SMS='010' if it is counting on TI1 edges only and SMS='011' if it is counting on both TI1 and TI2 edges.

Select the TI1 and TI2 polarity by programming the CC1P and CC2P bits in the TIMx_CCER register. When needed, the input filter can be programmed as well. CC1NP and CC2NP must be kept low.

The two inputs TI1 and TI2 are used to interface to a quadrature encoder. Refer to Table 114 . The counter is clocked by each valid transition on TI1FP1 or TI2FP2 (TI1 and TI2 after input filter and polarity selection, TI1FP1=TI1 if not filtered and not inverted, TI2FP2=TI2 if not filtered and not inverted) assuming that it is enabled (CEN bit in TIMx_CR1 register written to '1'). The sequence of transitions of the two inputs is evaluated and generates count pulses as well as the direction signal. Depending on the sequence the counter counts up or down, the DIR bit in the TIMx_CR1 register is modified by hardware accordingly. The DIR bit is calculated at each transition on any input (TI1 or TI2), whatever the counter is counting on TI1 only, TI2 only or both TI1 and TI2.

Encoder interface mode acts simply as an external clock with direction selection. This means that the counter just counts continuously between 0 and the auto-reload value in the TIMx_ARR register (0 to ARR or ARR down to 0 depending on the direction). So the TIMx_ARR must be configured before starting. In the same way, the capture, compare, repetition counter, trigger output features continue to work as normal. Encoder mode and External clock mode 2 are not compatible and must not be selected together.

Note: The prescaler must be set to zero when encoder mode is enabled

In this mode, the counter is modified automatically following the speed and the direction of the quadrature encoder and its content, therefore, always represents the encoder's position. The count direction correspond to the rotation direction of the connected sensor. The table summarizes the possible combinations, assuming TI1 and TI2 do not switch at the same time.

Table 114. Counting direction versus encoder signals

Active edgeLevel on opposite signal (TI1FP1 for TI2, TI2FP2 for TI1)TI1FP1 signalTI2FP2 signal
RisingFallingRisingFalling
Counting on TI1 onlyHighDownUpNo CountNo Count
LowUpDownNo CountNo Count
Counting on TI2 onlyHighNo CountNo CountUpDown
LowNo CountNo CountDownUp
Counting on TI1 and TI2HighDownUpUpDown
LowUpDownDownUp

A quadrature encoder can be connected directly to the MCU without external interface logic. However, comparators are normally used to convert the encoder's differential outputs to digital signals. This greatly increases noise immunity. The third encoder output which indicate the mechanical zero position, may be connected to an external interrupt input and trigger a counter reset.

The Figure 181 gives an example of counter operation, showing count signal generation and direction control. It also shows how input jitter is compensated where both edges are selected. This might occur if the sensor is positioned near to one of the switching points. For this example we assume that the configuration is the following:

Figure 181. Example of counter operation in encoder interface mode.

Timing diagram showing TI1, TI2, and Counter signals over time. The diagram is divided into five segments: 'forward', 'jitter', 'backward', 'jitter', and 'forward'. In the 'forward' segments, the counter counts up. In the 'backward' segment, the counter counts down. The 'jitter' segments show signal noise that does not affect the counter's direction. The counter signal is a staircase-like waveform. MS33107V1 is noted in the bottom right.
Timing diagram showing TI1, TI2, and Counter signals over time. The diagram is divided into five segments: 'forward', 'jitter', 'backward', 'jitter', and 'forward'. In the 'forward' segments, the counter counts up. In the 'backward' segment, the counter counts down. The 'jitter' segments show signal noise that does not affect the counter's direction. The counter signal is a staircase-like waveform. MS33107V1 is noted in the bottom right.

Figure 182 gives an example of counter behavior when TI1FP1 polarity is inverted (same configuration as above except CC1P='1').

Figure 182. Example of encoder interface mode with TI1FP1 polarity inverted.

Timing diagram showing encoder interface mode with TI1FP1 polarity inverted. The diagram displays three waveforms over time: TI1 (top), TI2 (middle), and Counter (bottom). The TI1 and TI2 signals are square waves. The Counter signal is a staircase-like waveform that increases (up) or decreases (down) based on the phase relationship between TI1 and TI2. The diagram is divided into five regions labeled 'forward', 'jitter', 'backward', 'jitter', and 'forward' from left to right. The counter direction is indicated by 'down', 'up', and 'down' labels below the counter waveform. The diagram is labeled MS33108V1 in the bottom right corner.
Timing diagram showing encoder interface mode with TI1FP1 polarity inverted. The diagram displays three waveforms over time: TI1 (top), TI2 (middle), and Counter (bottom). The TI1 and TI2 signals are square waves. The Counter signal is a staircase-like waveform that increases (up) or decreases (down) based on the phase relationship between TI1 and TI2. The diagram is divided into five regions labeled 'forward', 'jitter', 'backward', 'jitter', and 'forward' from left to right. The counter direction is indicated by 'down', 'up', and 'down' labels below the counter waveform. The diagram is labeled MS33108V1 in the bottom right corner.

The timer, when configured in Encoder Interface mode provides information on the sensor's current position. Dynamic information can be obtained (speed, acceleration, deceleration) by measuring the period between two encoder events using a second timer configured in capture mode. The output of the encoder which indicates the mechanical zero can be used for this purpose. Depending on the time between two events, the counter can also be read at regular times. This can be done by latching the counter value into a third input capture register if available (then the capture signal must be periodic and can be generated by another timer). When available, it is also possible to read its value through a DMA request.

The IUFREMAP bit in the TIMx_CR1 register forces a continuous copy of the update interrupt flag (UIF) into the timer counter register's bit 31 (TIMxCNT[31]). This allows both the counter value and a potential roll-over condition signaled by the UIFCPY flag to be read in an atomic way. It eases the calculation of angular speed by avoiding race conditions caused, for instance, by a processing shared between a background task (counter reading) and an interrupt (update interrupt).

There is no latency between the UIF and UIFCPY flag assertions.

In 32-bit timer implementations, when the IUFREMAP bit is set, bit 31 of the counter is overwritten by the UIFCPY flag upon read access (the counter's most significant bit is only accessible in write mode).

20.3.22 UIF bit remapping

The IUFREMAP bit in the TIMx_CR1 register forces a continuous copy of the Update Interrupt Flag UIF into the timer counter register's bit 31 (TIMxCNT[31]). This allows both the counter value and a potential roll-over condition signaled by the UIFCPY flag to be read in an atomic way. In particular cases, it can ease the calculations by avoiding race conditions, caused for instance by a processing shared between a background task (counter reading) and an interrupt (Update Interrupt).

There is no latency between the UIF and UIFCPY flags assertion.

20.3.23 Timer input XOR function

The TI1S bit in the TIMx_CR2 register, allows the input filter of channel 1 to be connected to the output of an XOR gate, combining the three input pins TIMx_CH1, TIMx_CH2 and TIMx_CH3.

The XOR output can be used with all the timer input functions such as trigger or input capture. It is convenient to measure the interval between edges on two input signals, as per Figure 183 below.

Figure 183. Measuring time interval between edges on 3 signals

Timing diagram showing three input signals (TI1, TI2, TI3) and their XOR output. The XOR output is connected to the TIMx Counter. The diagram illustrates the measurement of time intervals between edges on the XOR output signal. The signals are shown as digital waveforms over time. The XOR output is high when an odd number of inputs are high. The TIMx Counter is shown as a sawtooth waveform, indicating it is counting up and then resetting to zero when the XOR output toggles.

The figure is a timing diagram with five horizontal axes. From top to bottom, they are labeled: TI1, TI2, TI3, XOR, and TIMx Counter. - TI1, TI2, and TI3 are digital signals with various pulse widths and spacings. - The XOR signal is the logical XOR of TI1, TI2, and TI3. It changes state whenever any of the three input signals changes state. - The TIMx Counter is a sawtooth waveform that increases linearly over time and resets to zero whenever the XOR signal has a falling edge. - Vertical dashed lines connect the edges of the input signals to the XOR signal and the corresponding reset points of the counter. - The bottom right corner of the diagram contains the text 'MS33109V1'.

Timing diagram showing three input signals (TI1, TI2, TI3) and their XOR output. The XOR output is connected to the TIMx Counter. The diagram illustrates the measurement of time intervals between edges on the XOR output signal. The signals are shown as digital waveforms over time. The XOR output is high when an odd number of inputs are high. The TIMx Counter is shown as a sawtooth waveform, indicating it is counting up and then resetting to zero when the XOR output toggles.

20.3.24 Interfacing with Hall sensors

This is done using the advanced-control timer (TIM1) to generate PWM signals to drive the motor and another timer TIMx (TIM2, TIM3, TIM4) referred to as “interfacing timer” in Figure 184 . The “interfacing timer” captures the 3 timer input pins (CC1, CC2, CC3) connected through a XOR to the TI1 input channel (selected by setting the TI1S bit in the TIMx_CR2 register).

The slave mode controller is configured in reset mode; the slave input is TI1F_ED. Thus, each time one of the 3 inputs toggles, the counter restarts counting from 0. This creates a time base triggered by any change on the Hall inputs.

On the “interfacing timer”, capture/compare channel 1 is configured in capture mode, capture signal is TRC (See Figure 159: Capture/compare channel (example: channel 1 input stage) on page 483 ). The captured value, which corresponds to the time elapsed between 2 changes on the inputs, gives information about motor speed.

The “interfacing timer” can be used in output mode to generate a pulse which changes the configuration of the channels of the advanced-control timer (TIM1) (by triggering a COM event). The TIM1 timer is used to generate PWM signals to drive the motor. To do this, the interfacing timer channel must be programmed so that a positive pulse is generated after a programmed delay (in output compare or PWM mode). This pulse is sent to the advanced-control timer (TIM1) through the TRGO output.

Example: one wants to change the PWM configuration of the advanced-control timer TIM1 after a programmed delay each time a change occurs on the Hall inputs connected to one of the TIMx timers.

In the advanced-control timer TIM1, the right ITR input must be selected as trigger input, the timer is programmed to generate PWM signals, the capture/compare control signals are preloaded (CCPC=1 in the TIMx_CR2 register) and the COM event is controlled by the trigger input (CCUS=1 in the TIMx_CR2 register). The PWM control bits (CCxE, OCxM) are written after a COM event for the next step (this can be done in an interrupt subroutine generated by the rising edge of OC2REF).

The Figure 184 describes this example.

Figure 184. Example of Hall sensor interface

Timing diagram for Hall sensor interface showing signals for Interfacing timer (TIH1, TIH2, TIH3, Counter (CNT), CCR1, TRGO=OC2REF) and Advanced-control timers (TIM1) (COM, OC1, OC1N, OC2, OC2N, OC3, OC3N).

The timing diagram illustrates the operation of a Hall sensor interface using an advanced-control timer (TIM1) and an interfacing timer. The diagram is divided into two main sections: 'Interfacing timer' and 'Advanced-control timers (TIM1)'.

Interfacing timer signals:

Advanced-control timers (TIM1) signals:

Arrows at the bottom point to the rising edges of the COM signal, labeled 'Write CCxE, CCxNE and OCxM for next step', indicating the points where the timer configuration should be updated.

Timing diagram for Hall sensor interface showing signals for Interfacing timer (TIH1, TIH2, TIH3, Counter (CNT), CCR1, TRGO=OC2REF) and Advanced-control timers (TIM1) (COM, OC1, OC1N, OC2, OC2N, OC3, OC3N).

MS32672V1

20.3.25 Timer synchronization

The TIMx timers are linked together internally for timer synchronization or chaining. Refer to Section 21.3.19: Timer synchronization for details. They can be synchronized in several modes: Reset mode, Gated mode, and Trigger mode.

Slave mode: Reset mode

The counter and its prescaler can be reinitialized in response to an event on a trigger input. Moreover, if the URS bit from the TIMx_CR1 register is low, an update event UEV is generated. Then all the preloaded registers (TIMx_ARR, TIMx_CCRx) are updated.

In the following example, the upcounter is cleared in response to a rising edge on TI1 input:

The counter starts counting on the internal clock, then behaves normally until TI1 rising edge. When TI1 rises, the counter is cleared and restarts from 0. In the meantime, the trigger flag is set (TIF bit in the TIMx_SR register) and an interrupt request, or a DMA request can be sent if enabled (depending on the TIE and TDE bits in TIMx_DIER register).

The following figure shows this behavior when the auto-reload register TIMx_ARR=0x36. The delay between the rising edge on TI1 and the actual reset of the counter is due to the resynchronization circuit on TI1 input.

Figure 185. Control circuit in reset mode

Timing diagram for Figure 185. Control circuit in reset mode. The diagram shows five waveforms over time. 1. TI1: A signal that is initially high, then goes low, and then has a rising edge. 2. UG: A signal that is initially low, then goes high at the rising edge of TI1, and then goes low again. 3. Counter clock = ck_cnt = ck_psc: A periodic square wave. 4. Counter register: A sequence of values starting at 30, increasing by 1 up to 36, then jumping to 00, 01, 02, 03, and repeating. The jump from 36 to 00 occurs at the rising edge of TI1. 5. TIF: A signal that is initially low, then goes high at the rising edge of TI1, and then goes low again. Vertical dashed lines indicate the timing of the rising edge on TI1 and the corresponding changes in the other signals.
Timing diagram for Figure 185. Control circuit in reset mode. The diagram shows five waveforms over time. 1. TI1: A signal that is initially high, then goes low, and then has a rising edge. 2. UG: A signal that is initially low, then goes high at the rising edge of TI1, and then goes low again. 3. Counter clock = ck_cnt = ck_psc: A periodic square wave. 4. Counter register: A sequence of values starting at 30, increasing by 1 up to 36, then jumping to 00, 01, 02, 03, and repeating. The jump from 36 to 00 occurs at the rising edge of TI1. 5. TIF: A signal that is initially low, then goes high at the rising edge of TI1, and then goes low again. Vertical dashed lines indicate the timing of the rising edge on TI1 and the corresponding changes in the other signals.

MS31401V1

Slave mode: Gated mode

The counter can be enabled depending on the level of a selected input.

In the following example, the upcounter counts only when TI1 input is low:

The counter starts counting on the internal clock as long as TI1 is low and stops as soon as TI1 becomes high. The TIF flag in the TIMx_SR register is set both when the counter starts or stops.

The delay between the rising edge on TI1 and the actual stop of the counter is due to the resynchronization circuit on TI1 input.

Figure 186. Control circuit in Gated mode

Timing diagram for Figure 186. Control circuit in Gated mode. The diagram shows five horizontal lines representing signals over time. 1. TI1: Input signal, initially high, then goes low, then high again. 2. cnt_en: Counter enable signal, which is low when TI1 is high and goes high when TI1 goes low. 3. Counter clock = ck_cnt = ck_psc: A periodic square wave clock. It is active (pulsing) when cnt_en is high and stops (becomes flat) when cnt_en is low. 4. Counter register: Shows the count values. It starts at 30, increments to 31, 32, 33 while cnt_en is high. When TI1 goes high (stopping the counter), the count is 34. When TI1 goes low again (starting the counter), the count resumes at 35, 36, 37, 38. 5. TIF: Interrupt flag. It is initially low. It goes high when the counter starts (when TI1 goes low). It goes low when the counter stops (when TI1 goes high). It goes high again when the counter starts (when TI1 goes low). Arrows from the text 'Write TIF=0' point to the falling edges of the TIF signal.
Timing diagram for Figure 186. Control circuit in Gated mode. The diagram shows five horizontal lines representing signals over time. 1. TI1: Input signal, initially high, then goes low, then high again. 2. cnt_en: Counter enable signal, which is low when TI1 is high and goes high when TI1 goes low. 3. Counter clock = ck_cnt = ck_psc: A periodic square wave clock. It is active (pulsing) when cnt_en is high and stops (becomes flat) when cnt_en is low. 4. Counter register: Shows the count values. It starts at 30, increments to 31, 32, 33 while cnt_en is high. When TI1 goes high (stopping the counter), the count is 34. When TI1 goes low again (starting the counter), the count resumes at 35, 36, 37, 38. 5. TIF: Interrupt flag. It is initially low. It goes high when the counter starts (when TI1 goes low). It goes low when the counter stops (when TI1 goes high). It goes high again when the counter starts (when TI1 goes low). Arrows from the text 'Write TIF=0' point to the falling edges of the TIF signal.

Slave mode: Trigger mode

The counter can start in response to an event on a selected input.

In the following example, the upcounter starts in response to a rising edge on TI2 input:

register. Write CC2P=1 and CC2NP=0 in TIMx_CCER register to validate the polarity (and detect low level only).

When a rising edge occurs on TI2, the counter starts counting on the internal clock and the TIF flag is set.

The delay between the rising edge on TI2 and the actual start of the counter is due to the resynchronization circuit on TI2 input.

Figure 187. Control circuit in trigger mode

Timing diagram for Figure 187. Control circuit in trigger mode. The diagram shows five signals over time: TI2 (a digital signal with a rising edge), cnt_en (counter enable, which goes high after the rising edge of TI2), Counter clock = ck_cnt = ck_psc (a periodic square wave that starts after the rising edge of TI2), Counter register (showing values 34, 35, 36, 37, 38), and TIF (a flag that goes high at the start of counting). A vertical dashed line marks the rising edge of TI2. The counter register values 35, 36, 37, and 38 are shown in boxes, indicating they are updated on each clock cycle. The source identifier MS31403V1 is in the bottom right corner.

MS31403V1

Timing diagram for Figure 187. Control circuit in trigger mode. The diagram shows five signals over time: TI2 (a digital signal with a rising edge), cnt_en (counter enable, which goes high after the rising edge of TI2), Counter clock = ck_cnt = ck_psc (a periodic square wave that starts after the rising edge of TI2), Counter register (showing values 34, 35, 36, 37, 38), and TIF (a flag that goes high at the start of counting). A vertical dashed line marks the rising edge of TI2. The counter register values 35, 36, 37, and 38 are shown in boxes, indicating they are updated on each clock cycle. The source identifier MS31403V1 is in the bottom right corner.

Slave mode: Combined reset + trigger mode

In this case, a rising edge of the selected trigger input (TRGI) reinitializes the counter, generates an update of the registers, and starts the counter.

This mode is used for one-pulse mode.

Slave mode: external clock mode 2 + trigger mode

The external clock mode 2 can be used in addition to another slave mode (except external clock mode 1 and encoder mode). In this case, the ETR signal is used as external clock input, and another input can be selected as trigger input (in reset mode, gated mode or trigger mode). It is recommended not to select ETR as TRGI through the TS bits of TIMx_SMCR register.

In the following example, the upcounter is incremented at each rising edge of the ETR signal as soon as a rising edge of TI1 occurs:

  1. 1. Configure the external trigger input circuit by programming the TIMx_SMCR register as follows:
    • – ETF = 0000: no filter
    • – ETPS = 00: prescaler disabled
    • – ETP = 0: detection of rising edges on ETR and ECE=1 to enable the external clock mode 2.
  2. 2. Configure the channel 1 as follows, to detect rising edges on TI:
    • – IC1F = 0000: no filter.
    • – The capture prescaler is not used for triggering and does not need to be configured.
    • – CC1S = 01 in TIMx_CCMR1 register to select only the input capture source
    • – CC1P = 0 and CC1NP = 0 in TIMx_CCER register to validate the polarity (and detect rising edge only).
  3. 3. Configure the timer in trigger mode by writing SMS=110 in TIMx_SMCR register. Select TI1 as the input source by writing TS=101 in TIMx_SMCR register.

A rising edge on TI1 enables the counter and sets the TIF flag. The counter then counts on ETR rising edges.

The delay between the rising edge of the ETR signal and the actual reset of the counter is due to the resynchronization circuit on ETRP input.

Figure 188. Control circuit in external clock mode 2 + trigger mode

Timing diagram showing the relationship between TI1, CEN/CNT_EN, ETR, Counter clock, Counter register, and TIF signals. TI1 goes high, triggering the counter. ETR provides the clock. Counter register values 34, 35, 36 are shown. TIF flag is set when TI1 rises.

The timing diagram illustrates the operation of the timer in external clock mode 2 with trigger mode. The signals shown are:

Vertical dashed lines indicate key timing points: the first rising edge of TI1, the first rising edge of ETR after CEN goes high, and the second rising edge of ETR.

MS33110V1

Timing diagram showing the relationship between TI1, CEN/CNT_EN, ETR, Counter clock, Counter register, and TIF signals. TI1 goes high, triggering the counter. ETR provides the clock. Counter register values 34, 35, 36 are shown. TIF flag is set when TI1 rises.

Note: The clock of the slave peripherals (timer, ADC, ...) receiving the TRGO or the TRGO2 signals must be enabled prior to receive events from the master timer, and the clock frequency (prescaler) must not be changed on-the-fly while triggers are received from the master timer.

20.3.26 ADC synchronization

The timer can generate an ADC triggering event with various internal signals, such as reset, enable or compare events. It is also possible to generate a pulse issued by internal edge detectors, such as:

The triggers are issued on the TRGO2 internal line which is redirected to the ADC. There is a total of 16 possible events, which can be selected using the MMS2[3:0] bits in the TIMx_CR2 register.

An example of an application for 3-phase motor drives is given in Figure 170 on page 495 .

Note: The clock of the slave peripherals (timer, ADC, ...) receiving the TRGO or the TRGO2 signals must be enabled prior to receive events from the master timer, and the clock frequency (prescaler) must not be changed on-the-fly while triggers are received from the master timer.

Note: The clock of the ADC must be enabled prior to receive events from the master timer, and must not be changed on-the-fly while triggers are received from the timer.

20.3.27 DMA burst mode

The TIMx timers have the capability to generate multiple DMA requests upon a single event. The main purpose is to be able to re-program part of the timer multiple times without software overhead, but it can also be used to read several registers in a row, at regular intervals.

The DMA controller destination is unique and must point to the virtual register TIMx_DMAR. On a given timer event, the timer launches a sequence of DMA requests (burst). Each write into the TIMx_DMAR register is actually redirected to one of the timer registers.

The DBL[4:0] bits in the TIMx_DCR register set the DMA burst length. The timer recognizes a burst transfer when a read or a write access is done to the TIMx_DMAR address), i.e. the number of transfers (either in half-words or in bytes).

The DBA[4:0] bits in the TIMx_DCR registers define the DMA base address for DMA transfers (when read/write access are done through the TIMx_DMAR address). DBA is defined as an offset starting from the address of the TIMx_CR1 register:

Example:

00000: TIMx_CR1

00001: TIMx_CR2

00010: TIMx_SMCR

As an example, the timer DMA burst feature is used to update the contents of the CCRx registers (x = 2, 3, 4) upon an update event, with the DMA transferring half words into the CCRx registers.

This is done in the following steps:

  1. 1. Configure the corresponding DMA channel as follows:
    • – DMA channel peripheral address is the DMAR register address
    • – DMA channel memory address is the address of the buffer in the RAM containing the data to be transferred by DMA into CCRx registers.
    • – Number of data to transfer = 3 (See note below).
    • – Circular mode disabled.
  2. 2. Configure the DCR register by configuring the DBA and DBL bit fields as follows:
    DBL = 3 transfers, DBA = 0xE.
  3. 3. Enable the TIMx update DMA request (set the UDE bit in the DIER register).
  4. 4. Enable TIMx
  5. 5. Enable the DMA channel

This example is for the case where every CCRx register to be updated once. If every CCRx register is to be updated twice for example, the number of data to transfer should be 6. Let's take the example of a buffer in the RAM containing data1, data2, data3, data4, data5 and data6. The data is transferred to the CCRx registers as follows: on the first update DMA request, data1 is transferred to CCR2, data2 is transferred to CCR3, data3 is transferred to CCR4 and on the second update DMA request, data4 is transferred to CCR2, data5 is transferred to CCR3 and data6 is transferred to CCR4.

Note: A null value can be written to the reserved registers.

20.3.28 Debug mode

When the microcontroller enters debug mode (Cortex-M4 ® F core halted), the TIMx counter either continues to work normally or stops, depending on DBG_TIMx_STOP configuration bit in DBG module.

For safety purposes, when the counter is stopped, the outputs are disabled (as if the MOE bit was reset). The outputs can either be forced to an inactive state (OSSI bit = 1), or have their control taken over by the GPIO controller (OSSI bit = 0), typically to force a Hi-Z.

For more details, refer to section Debug support (DBG).

20.4 TIM1 registers

Refer to for a list of abbreviations used in register descriptions.

The peripheral registers can be accessed by half-words (16-bit) or words (32-bit).

20.4.1 TIM1 control register 1 (TIM1_CR1)

Address offset: 0x00

Reset value: 0x0000

1514131211109876543210
Res.Res.Res.Res.UIFREMAPRes.CKD[1:0]ARPECMS[1:0]DIROPMURSUDISCEN
rwrwrwrwrwrwrwrwrwrwrw

Bits 15:12 Reserved, must be kept at reset value.

Bit 11 UIFREMAP : UIF status bit remapping

0: No remapping. UIF status bit is not copied to TIMx_CNT register bit 31.
1: Remapping enabled. UIF status bit is copied to TIMx_CNT register bit 31.

Bit 10 Reserved, must be kept at reset value.

Bits 9:8 CKD[1:0] : Clock division

This bit-field indicates the division ratio between the timer clock (CK_INT) frequency and the dead-time and sampling clock ( \( t_{DTS} \) ) used by the dead-time generators and the digital filters (ETR, TIx):
00: \( t_{DTS} = t_{CK\_INT} \)
01: \( t_{DTS} = 2 \times t_{CK\_INT} \)
10: \( t_{DTS} = 4 \times t_{CK\_INT} \)
11: Reserved, do not program this value

Note: \( t_{DTS} = 1/f_{DTS} \) , \( t_{CK\_INT} = 1/f_{CK\_INT} \) .

Bit 7 ARPE : Auto-reload preload enable

0: TIMx_ARR register is not buffered
1: TIMx_ARR register is buffered

Bits 6:5 CMS[1:0] : Center-aligned mode selection

00: Edge-aligned mode. The counter counts up or down depending on the direction bit (DIR).
01: Center-aligned mode 1. The counter counts up and down alternatively. Output compare interrupt flags of channels configured in output (CCxS=00 in TIMx_CCMRx register) are set only when the counter is counting down.
10: Center-aligned mode 2. The counter counts up and down alternatively. Output compare interrupt flags of channels configured in output (CCxS=00 in TIMx_CCMRx register) are set only when the counter is counting up.
11: Center-aligned mode 3. The counter counts up and down alternatively. Output compare interrupt flags of channels configured in output (CCxS=00 in TIMx_CCMRx register) are set both when the counter is counting up or down.

Note: Switch from edge-aligned mode to center-aligned mode as long as the counter is enabled (CEN=1) is not allowed

Bit 4 DIR : Direction

Note: This bit is read only when the timer is configured in Center-aligned mode or Encoder mode.

Bit 3 OPM : One pulse mode

Bit 2 URS : Update request source

This bit is set and cleared by software to select the UEV event sources.

These events can be:

Bit 1 UDIS : Update disable

This bit is set and cleared by software to enable/disable UEV event generation.

Buffered registers are then loaded with their preload values.

Bit 0 CEN : Counter enable

Note: External clock, gated mode and encoder mode can work only if the CEN bit has been previously set by software. However trigger mode can set the CEN bit automatically by hardware.

20.4.2 TIM1 control register 2 (TIM1_CR2)

Address offset: 0x04

Reset value: 0x0000 0000

31302928272625242322212019181716
Res.Res.Res.Res.Res.Res.Res.Res.MMS2[3:0]Res.OIS6Res.OIS5
rwrwrwrwrwrw

1514131211109876543210
Res.OIS4OIS3NOIS3OIS2NOIS2OIS1NOIS1TI1SMMS[2:0]CCDSCCUSRes.CCPC
rwrwrwrwrwrwrwrwrwrwrwrwrwrw

Bits 31:24 Reserved, must be kept at reset value.

Bits 23:20 MMS2[3:0] : Master mode selection 2

These bits allow the information to be sent to ADC for synchronization (TRGO2) to be selected. The combination is as follows:

0000: Reset - the UG bit from the TIMx_EGR register is used as trigger output (TRGO2). If the reset is generated by the trigger input (slave mode controller configured in reset mode), the signal on TRGO2 is delayed compared to the actual reset.

0001: Enable - the Counter Enable signal CNT_EN is used as trigger output (TRGO2). It is useful to start several timers at the same time or to control a window in which a slave timer is enabled. The Counter Enable signal is generated by a logic AND between the CEN control bit and the trigger input when configured in Gated mode. When the Counter Enable signal is controlled by the trigger input, there is a delay on TRGO2, except if the Master/Slave mode is selected (see the MSM bit description in TIMx_SMCR register).

0010: Update - the update event is selected as trigger output (TRGO2). For instance, a master timer can then be used as a prescaler for a slave timer.

0011: Compare pulse - the trigger output sends a positive pulse when the CC1IF flag is to be set (even if it was already high), as soon as a capture or compare match occurs (TRGO2).

0100: Compare - OC1REFC signal is used as trigger output (TRGO2)

0101: Compare - OC2REFC signal is used as trigger output (TRGO2)

0110: Compare - OC3REFC signal is used as trigger output (TRGO2)

0111: Compare - OC4REFC signal is used as trigger output (TRGO2)

1000: Compare - OC5REFC signal is used as trigger output (TRGO2)

1001: Compare - OC6REFC signal is used as trigger output (TRGO2)

1010: Compare Pulse - OC4REFC rising or falling edges generate pulses on TRGO2

1011: Compare Pulse - OC6REFC rising or falling edges generate pulses on TRGO2

1100: Compare Pulse - OC4REFC or OC6REFC rising edges generate pulses on TRGO2

1101: Compare Pulse - OC4REFC rising or OC6REFC falling edges generate pulses on TRGO2

1110: Compare Pulse - OC5REFC or OC6REFC rising edges generate pulses on TRGO2

1111: Compare Pulse - OC5REFC rising or OC6REFC falling edges generate pulses on TRGO2

Note: The clock of the slave timer or ADC must be enabled prior to receive events from the master timer, and must not be changed on-the-fly while triggers are received from the master timer.

Bit 19 Reserved, must be kept at reset value.

Bit 18 OIS6 : Output Idle state 6 (OC6 output)

Refer to OIS1 bit

Bit 17 Reserved, must be kept at reset value.

Bit 16 OIS5 : Output Idle state 5 (OC5 output)

Refer to OIS1 bit

Bit 15 Reserved, must be kept at reset value.

Bit 14 OIS4 : Output Idle state 4 (OC4 output)

Refer to OIS1 bit

Bit 13 OIS3N : Output Idle state 3 (OC3N output)

Refer to OIS1N bit

Bit 12 OIS3 : Output Idle state 3 (OC3 output)

Refer to OIS1 bit

Bit 11 OIS2N : Output Idle state 2 (OC2N output)

Refer to OIS1N bit

Bit 10 OIS2 : Output Idle state 2 (OC2 output)

Refer to OIS1 bit

Bit 9 OIS1N : Output Idle state 1 (OC1N output)

0: OC1N=0 after a dead-time when MOE=0

1: OC1N=1 after a dead-time when MOE=0

Note: This bit can not be modified as long as LOCK level 1, 2 or 3 has been programmed (LOCK bits in TIMx_BDTR register).

Bit 8 OIS1 : Output Idle state 1 (OC1 output)

0: OC1=0 (after a dead-time if OC1N is implemented) when MOE=0

1: OC1=1 (after a dead-time if OC1N is implemented) when MOE=0

Note: This bit can not be modified as long as LOCK level 1, 2 or 3 has been programmed (LOCK bits in TIMx_BDTR register).

Bit 7 TI1S : TI1 selection

0: The TIMx_CH1 pin is connected to TI1 input

1: The TIMx_CH1, CH2 and CH3 pins are connected to the TI1 input (XOR combination)

Bits 6:4 MMS[2:0] : Master mode selection

These bits allow selected information to be sent in master mode to slave timers for synchronization (TRGO). The combination is as follows:

000: Reset - the UG bit from the TIMx_EGR register is used as trigger output (TRGO). If the reset is generated by the trigger input (slave mode controller configured in reset mode) then the signal on TRGO is delayed compared to the actual reset.

001: Enable - the Counter Enable signal CNT_EN is used as trigger output (TRGO). It is useful to start several timers at the same time or to control a window in which a slave timer is enable. The Counter Enable signal is generated by a logic AND between CEN control bit and the trigger input when configured in gated mode. When the Counter Enable signal is controlled by the trigger input, there is a delay on TRGO, except if the master/slave mode is selected (see the MSM bit description in TIMx_SMCR register).

010: Update - The update event is selected as trigger output (TRGO). For instance a master timer can then be used as a prescaler for a slave timer.

011: Compare Pulse - The trigger output send a positive pulse when the CC1IF flag is to be set (even if it was already high), as soon as a capture or a compare match occurred. (TRGO).

100: Compare - OC1REFC signal is used as trigger output (TRGO)

101: Compare - OC2REFC signal is used as trigger output (TRGO)

110: Compare - OC3REFC signal is used as trigger output (TRGO)

111: Compare - OC4REFC signal is used as trigger output (TRGO)

Note: The clock of the slave timer or ADC must be enabled prior to receive events from the master timer, and must not be changed on-the-fly while triggers are received from the master timer.

Bit 3 CCDS : Capture/compare DMA selection

0: CCx DMA request sent when CCx event occurs

1: CCx DMA requests sent when update event occurs

Bit 2 CCUS : Capture/compare control update selection

0: When capture/compare control bits are preloaded (CCPC=1), they are updated by setting the COMG bit only

1: When capture/compare control bits are preloaded (CCPC=1), they are updated by setting the COMG bit or when an rising edge occurs on TRGI

Note: This bit acts only on channels that have a complementary output.

Bit 1 Reserved, must be kept at reset value.

Bit 0 CCPC : Capture/compare preloaded control

0: CCxE, CCxNE and OCxM bits are not preloaded

1: CCxE, CCxNE and OCxM bits are preloaded, after having been written, they are updated only when a commutation event (COM) occurs (COMG bit set or rising edge detected on TRGI, depending on the CCUS bit).

Note: This bit acts only on channels that have a complementary output.

20.4.3 TIM1 slave mode control register (TIM1_SMCR)

Address offset: 0x08

Reset value: 0x0000 0000

31302928272625242322212019181716
Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.SMS[3]
rw
151413117632
ETPECEETPS[1:0]ETF[3:0]MSMTS[2:0]OCCSSMS[2:0]
rwrwrwrwrwrwrwrwrwrwrwrwrwrwrwrw

Bits 31:17 Reserved, must be kept at reset value.

Bit 15 ETP : External trigger polarity

This bit selects whether ETR or \( \overline{\text{ETR}} \) is used for trigger operations

0: ETR is non-inverted, active at high level or rising edge.

1: ETR is inverted, active at low level or falling edge.

Bit 14 ECE : External clock enable

This bit enables External clock mode 2.

0: External clock mode 2 disabled

1: External clock mode 2 enabled. The counter is clocked by any active edge on the ETRF signal.

Note: Setting the ECE bit has the same effect as selecting external clock mode 1 with TRGI connected to ETRF (SMS=111 and TS=111).

It is possible to simultaneously use external clock mode 2 with the following slave modes: reset mode, gated mode and trigger mode. Nevertheless, TRGI must not be connected to ETRF in this case (TS bits must not be 111).

If external clock mode 1 and external clock mode 2 are enabled at the same time, the external clock input is ETRF.

Bits 13:12 ETPS[1:0] : External trigger prescaler

External trigger signal ETRP frequency must be at most 1/4 of \( f_{CK\_INT} \) frequency. A prescaler can be enabled to reduce ETRP frequency. It is useful when inputting fast external clocks.

Bits 11:8 ETF[3:0] : External trigger filter

This bit-field then defines the frequency used to sample ETRP signal and the length of the digital filter applied to ETRP. The digital filter is made of an event counter in which N consecutive events are needed to validate a transition on the output:

Bit 7 MSM : Master/slave modeBits 6:4 TS[2:0] : Trigger selection

This bit-field selects the trigger input to be used to synchronize the counter.

See Table 115: TIM1 internal trigger connection on page 525 for more details on ITRx meaning for each Timer.

Note: These bits must be changed only when they are not used (e.g. when SMS=000) to avoid wrong edge detections at the transition.

Note: The other bit is at position 16 in the same register

Bit 3 OCCS : OCREF clear selection

This bit is used to select the OCREF clear source.

Bits 16, 2, 1, 0 SMS[3:0] : Slave mode selection

When external signals are selected the active edge of the trigger signal (TRGI) is linked to the polarity selected on the external input (see Input Control register and Control Register description).

0000: Slave mode disabled - if CEN = '1' then the prescaler is clocked directly by the internal clock.

0001: Encoder mode 1 - Counter counts up/down on TI1FP1 edge depending on TI2FP2 level.

0010: Encoder mode 2 - Counter counts up/down on TI2FP2 edge depending on TI1FP1 level.

0011: Encoder mode 3 - Counter counts up/down on both TI1FP1 and TI2FP2 edges depending on the level of the other input.

0100: Reset Mode - Rising edge of the selected trigger input (TRGI) reinitializes the counter and generates an update of the registers.

0101: Gated Mode - The counter clock is enabled when the trigger input (TRGI) is high. The counter stops (but is not reset) as soon as the trigger becomes low. Both start and stop of the counter are controlled.

0110: Trigger Mode - The counter starts at a rising edge of the trigger TRGI (but it is not reset). Only the start of the counter is controlled.

0111: External Clock Mode 1 - Rising edges of the selected trigger (TRGI) clock the counter.

1000: Combined reset + trigger mode - Rising edge of the selected trigger input (TRGI) reinitializes the counter, generates an update of the registers and starts the counter.

Codes above 1000: Reserved.

Note: The gated mode must not be used if TI1F_ED is selected as the trigger input (TS=100). Indeed, TI1F_ED outputs 1 pulse for each transition on TI1F, whereas the gated mode checks the level of the trigger signal.

Note: The clock of the slave peripherals (timer, ADC, ...) receiving the TRGO or the TRGO2 signals must be enabled prior to receive events from the master timer, and the clock frequency (prescaler) must not be changed on-the-fly while triggers are received from the master timer.

Table 115. TIM1 internal trigger connection

Slave TIMITR0 (TS = 000)ITR1 (TS = 001)ITR2 (TS = 010)ITR3 (TS = 011)
TIM1TIM15TIM2TIM3TIM4 or
TIM17 OC1 (1)

1. TIM1_ITR3 selection is made using bit 6 of the SYSCFG_CFGR1 register.

20.4.4 TIM1 DMA/interrupt enable register (TIM1_DIER)

Address offset: 0x0C

Reset value: 0x0000

1514131211109876543210
Res.TDECOMDECC4DECC3DECC2DECC1DEUDEBIETIECOMIECC4IECC3IECC2IECC1IEUIE
rwrwrwrwrwrwrwrwrwrwrwrwrwrwrw
  1. Bit 15 Reserved, must be kept at reset value.
  2. Bit 14 TDE : Trigger DMA request enable
    0: Trigger DMA request disabled
    1: Trigger DMA request enabled
  3. Bit 13 COMDE : COM DMA request enable
    0: COM DMA request disabled
    1: COM DMA request enabled
  4. Bit 12 CC4DE : Capture/Compare 4 DMA request enable
    0: CC4 DMA request disabled
    1: CC4 DMA request enabled
  5. Bit 11 CC3DE : Capture/Compare 3 DMA request enable
    0: CC3 DMA request disabled
    1: CC3 DMA request enabled
  6. Bit 10 CC2DE : Capture/Compare 2 DMA request enable
    0: CC2 DMA request disabled
    1: CC2 DMA request enabled
  7. Bit 9 CC1DE : Capture/Compare 1 DMA request enable
    0: CC1 DMA request disabled
    1: CC1 DMA request enabled
  8. Bit 8 UDE : Update DMA request enable
    0: Update DMA request disabled
    1: Update DMA request enabled
  9. Bit 7 BIE : Break interrupt enable
    0: Break interrupt disabled
    1: Break interrupt enabled
  10. Bit 6 TIE : Trigger interrupt enable
    0: Trigger interrupt disabled
    1: Trigger interrupt enabled
  11. Bit 5 COMIE : COM interrupt enable
    0: COM interrupt disabled
    1: COM interrupt enabled
  12. Bit 4 CC4IE : Capture/Compare 4 interrupt enable
    0: CC4 interrupt disabled
    1: CC4 interrupt enabled
  13. Bit 3 CC3IE : Capture/Compare 3 interrupt enable
    0: CC3 interrupt disabled
    1: CC3 interrupt enabled

Bit 2 CC2IE : Capture/Compare 2 interrupt enable

0: CC2 interrupt disabled

1: CC2 interrupt enabled

Bit 1 CC1IE : Capture/Compare 1 interrupt enable

0: CC1 interrupt disabled

1: CC1 interrupt enabled

Bit 0 UIE : Update interrupt enable

0: Update interrupt disabled

1: Update interrupt enabled

20.4.5 TIM1 status register (TIM1_SR)

Address offset: 0x10

Reset value: 0x0000 0000

31302928272625242322212019181716
Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.CC6IFCC5IF
rc_w0rc_w0
1514131211109876543210
Res.Res.Res.CC4OFCC3OFCC2OFCC1OFB2IFBIFTIFCOMIFCC4IFCC3IFCC2IFCC1IFUIF
rc_w0rc_w0rc_w0rc_w0rc_w0rc_w0rc_w0rc_w0rc_w0rc_w0rc_w0rc_w0rc_w0

Bits 31:18 Reserved, must be kept at reset value.

Bit 17 CC6IF : Compare 6 interrupt flag

Refer to CC1IF description (Note: Channel 6 can only be configured as output)

Bit 16 CC5IF : Compare 5 interrupt flag

Refer to CC1IF description (Note: Channel 5 can only be configured as output)

Bits 15:13 Reserved, must be kept at reset value.

Bit 12 CC4OF : Capture/Compare 4 overcapture flag

Refer to CC1OF description

Bit 11 CC3OF : Capture/Compare 3 overcapture flag

Refer to CC1OF description

Bit 10 CC2OF : Capture/Compare 2 overcapture flag

Refer to CC1OF description

Bit 9 CC1OF : Capture/Compare 1 overcapture flag

This flag is set by hardware only when the corresponding channel is configured in input capture mode. It is cleared by software by writing it to '0'.

0: No overcapture has been detected.

1: The counter value has been captured in TIMx_CCR1 register while CC1IF flag was already set

Bit 8 B2IF : Break 2 interrupt flag

This flag is set by hardware as soon as the break 2 input goes active. It can be cleared by software if the break 2 input is not active.

0: No break event occurred.

1: An active level has been detected on the break 2 input. An interrupt is generated if BIE=1 in the TIMx_DIER register.

Bit 7 BIF: Break interrupt flag

This flag is set by hardware as soon as the break input goes active. It can be cleared by software if the break input is not active.

0: No break event occurred.

1: An active level has been detected on the break input. An interrupt is generated if BIE=1 in the TIMx_DIER register.

Bit 6 TIF: Trigger interrupt flag

This flag is set by hardware on the TRG trigger event (active edge detected on TRGI input when the slave mode controller is enabled in all modes but gated mode. It is set when the counter starts or stops when gated mode is selected. It is cleared by software.

0: No trigger event occurred.

1: Trigger interrupt pending.

Bit 5 COMIF: COM interrupt flag

This flag is set by hardware on COM event (when Capture/compare Control bits - CCxE, CCxNE, OCxM - have been updated). It is cleared by software.

0: No COM event occurred.

1: COM interrupt pending.

Bit 4 CC4IF: Capture/Compare 4 interrupt flag

Refer to CC1IF description

Bit 3 CC3IF: Capture/Compare 3 interrupt flag

Refer to CC1IF description

Bit 2 CC2IF: Capture/Compare 2 interrupt flag

Refer to CC1IF description

Bit 1 CC1IF: Capture/Compare 1 interrupt flag

This flag is set by hardware. It is cleared by software (input capture or output compare mode) or by reading the TIMx_CCR1 register (input capture mode only).

0: No compare match / No input capture occurred

1: A compare match or an input capture occurred.

If channel CC1 is configured as output: this flag is set when the content of the counter TIMx_CNT matches the content of the TIMx_CCR1 register. When the content of TIMx_CCR1 is greater than the content of TIMx_ARR, the CC1IF bit goes high on the counter overflow (in up-counting and up/down-counting modes) or underflow (in down-counting mode). There are 3 possible options for flag setting in center-aligned mode, refer to the CMS bits in the TIMx_CR1 register for the full description.

If channel CC1 is configured as input: this bit is set when counter value has been captured in TIMx_CCR1 register (an edge has been detected on IC1, as per the edge sensitivity defined with the CC1P and CC1NP bits setting, in TIMx_CCER).

Bit 0 UIF: Update interrupt flag

This bit is set by hardware on an update event. It is cleared by software.

0: No update occurred.

1: Update interrupt pending. This bit is set by hardware when the registers are updated:

20.4.6 TIM1 event generation register (TIM1_EGR)

Address offset: 0x14

Reset value: 0x0000

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Bits 15:9 Reserved, must be kept at reset value.

Bit 8 B2G : Break 2 generation

This bit is set by software in order to generate an event, it is automatically cleared by hardware.

0: No action

1: A break 2 event is generated. MOE bit is cleared and B2IF flag is set. Related interrupt can occur if enabled.

Bit 7 BG : Break generation

This bit is set by software in order to generate an event, it is automatically cleared by hardware.

0: No action

1: A break event is generated. MOE bit is cleared and BIF flag is set. Related interrupt or DMA transfer can occur if enabled.

Bit 6 TG : Trigger generation

This bit is set by software in order to generate an event, it is automatically cleared by hardware.

0: No action

1: The TIF flag is set in TIMx_SR register. Related interrupt or DMA transfer can occur if enabled.

Bit 5 COMG : Capture/Compare control update generation

This bit can be set by software, it is automatically cleared by hardware

0: No action

1: When CCPC bit is set, it allows CCxE, CCxNE and OCxM bits to be updated.

Note: This bit acts only on channels having a complementary output.

Bit 4 CC4G : Capture/Compare 4 generation

Refer to CC1G description

Bit 3 CC3G : Capture/Compare 3 generation

Refer to CC1G description

Bit 2 CC2G : Capture/Compare 2 generation

Refer to CC1G description

Bit 1 CC1G : Capture/Compare 1 generation

This bit is set by software in order to generate an event, it is automatically cleared by hardware.

0: No action

1: A capture/compare event is generated on channel 1:

If channel CC1 is configured as output:

CC1IF flag is set, Corresponding interrupt or DMA request is sent if enabled.

If channel CC1 is configured as input:

The current value of the counter is captured in TIMx_CCR1 register. The CC1IF flag is set, the corresponding interrupt or DMA request is sent if enabled. The CC1OF flag is set if the CC1IF flag was already high.

Bit 0 UG : Update generation

This bit can be set by software, it is automatically cleared by hardware.

0: No action

1: Reinitialize the counter and generates an update of the registers. The prescaler internal counter is also cleared (the prescaler ratio is not affected). The counter is cleared if the center-aligned mode is selected or if DIR=0 (upcounting), else it takes the auto-reload value (TIMx_ARR) if DIR=1 (downcounting).

20.4.7 TIM1 capture/compare mode register 1 [alternate] (TIM1_CCMR1)

Address offset: 0x18

Reset value: 0x0000 0000

The same register can be used for input capture mode (this section) or for output compare mode (next section). The direction of a channel is defined by configuring the corresponding CCxS bits. All the other bits of this register have a different function for input capture and for output compare modes. It is possible to combine both modes independently (e.g. channel 1 in input capture mode and channel 2 in output compare mode).

Input capture mode:

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Bits 31:16 Reserved, must be kept at reset value.

Bits 15:12 IC2F[3:0] : Input capture 2 filter
Refer to IC1F[3:0] description.

Bits 11:10 IC2PSC[1:0] : Input capture 2 prescaler
Refer to IC1PSC[1:0] description.

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Bits 9:8 CC2S[1:0] : Capture/Compare 2 selection

This bit-field defines the direction of the channel (input/output) as well as the used input.

Note: CC2S bits are writable only when the channel is OFF (CC2E = '0' in TIMx_CCER).

Bits 7:4 IC1F[3:0] : Input capture 1 filter

This bit-field defines the frequency used to sample TI1 input and the length of the digital filter applied to TI1. The digital filter is made of an event counter in which N consecutive events are needed to validate a transition on the output:

Bits 3:2 IC1PSC[1:0] : Input capture 1 prescaler

This bit-field defines the ratio of the prescaler acting on CC1 input (IC1). The prescaler is reset as soon as CC1E='0' (TIMx_CCER register).

Bits 1:0 CC1S[1:0] : Capture/Compare 1 Selection

This bit-field defines the direction of the channel (input/output) as well as the used input.

Note: CC1S bits are writable only when the channel is OFF (CC1E = '0' in TIMx_CCER).

20.4.8 TIM1 capture/compare mode register 1 [alternate] (TIM1_CCMR1)

Address offset: 0x18

Reset value: 0x0000 0000

The same register can be used for output compare mode (this section) or for input capture mode (previous section). The direction of a channel is defined by configuring the

corresponding CCxS bits. All the other bits of this register have a different function for input capture and for output compare modes. It is possible to combine both modes independently (e.g. channel 1 in input capture mode and channel 2 in output compare mode).

Output compare mode:

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OC2 CEOC2M[2:0]OC2 PEOC2 FECC2S[1:0]OC1 CEOC1M[2:0]OC1 PEOC1 FECC1S[1:0]
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Bits 31:25 Reserved, must be kept at reset value.

Bits 23:17 Reserved, must be kept at reset value.

Bit 15 OC2CE : Output Compare 2 clear enable
Refer to OC1CE description.

Bits 24, 14:12 OC2M[3:0] : Output Compare 2 mode
Refer to OC1M[3:0] description.

Bit 11 OC2PE : Output Compare 2 preload enable
Refer to OC1PE description.

Bit 10 OC2FE : Output Compare 2 fast enable
Refer to OC1FE description.

Bits 9:8 CC2S[1:0] : Capture/Compare 2 selection

This bit-field defines the direction of the channel (input/output) as well as the used input.

00: CC2 channel is configured as output

01: CC2 channel is configured as input, IC2 is mapped on TI2

10: CC2 channel is configured as input, IC2 is mapped on TI1

11: CC2 channel is configured as input, IC2 is mapped on TRC. This mode is working only if an internal trigger input is selected through the TS bit (TIMx_SMCR register)

Note: CC2S bits are writable only when the channel is OFF (CC2E = '0' in TIMx_CCER).

Bit 7 OC1CE : Output Compare 1 clear enable

0: OC1Ref is not affected by the ocref_clr_int signal

1: OC1Ref is cleared as soon as a High level is detected on ocref_clr_int signal (OCREF_CLR input or ETRF input)

Bits 16, 6:4 OC1M[3:0] : Output Compare 1 mode

These bits define the behavior of the output reference signal OC1REF from which OC1 and OC1N are derived. OC1REF is active high whereas OC1 and OC1N active level depends on CC1P and CC1NP bits.

0000: Frozen - The comparison between the output compare register TIMx_CCR1 and the counter TIMx_CNT has no effect on the outputs.(this mode is used to generate a timing base).

0001: Set channel 1 to active level on match. OC1REF signal is forced high when the counter TIMx_CNT matches the capture/compare register 1 (TIMx_CCR1).

0010: Set channel 1 to inactive level on match. OC1REF signal is forced low when the counter TIMx_CNT matches the capture/compare register 1 (TIMx_CCR1).

0011: Toggle - OC1REF toggles when TIMx_CNT=TIMx_CCR1.

0100: Force inactive level - OC1REF is forced low.

0101: Force active level - OC1REF is forced high.

0110: PWM mode 1 - In upcounting, channel 1 is active as long as TIMx_CNT<TIMx_CCR1 else inactive. In downcounting, channel 1 is inactive (OC1REF='0') as long as TIMx_CNT>TIMx_CCR1 else active (OC1REF='1').

0111: PWM mode 2 - In upcounting, channel 1 is inactive as long as TIMx_CNT<TIMx_CCR1 else active. In downcounting, channel 1 is active as long as TIMx_CNT>TIMx_CCR1 else inactive.

1000: Retriggerable OPM mode 1 - In up-counting mode, the channel is active until a trigger event is detected (on TRGI signal). Then, a comparison is performed as in PWM mode 1 and the channels becomes active again at the next update. In down-counting mode, the channel is inactive until a trigger event is detected (on TRGI signal). Then, a comparison is performed as in PWM mode 1 and the channels becomes inactive again at the next update.

1001: Retriggerable OPM mode 2 - In up-counting mode, the channel is inactive until a trigger event is detected (on TRGI signal). Then, a comparison is performed as in PWM mode 2 and the channels becomes inactive again at the next update. In down-counting mode, the channel is active until a trigger event is detected (on TRGI signal). Then, a comparison is performed as in PWM mode 1 and the channels becomes active again at the next update.

1010: Reserved,

1011: Reserved,

1100: Combined PWM mode 1 - OC1REF has the same behavior as in PWM mode 1. OC1REFC is the logical OR between OC1REF and OC2REF.

1101: Combined PWM mode 2 - OC1REF has the same behavior as in PWM mode 2. OC1REFC is the logical AND between OC1REF and OC2REF.

1110: Asymmetric PWM mode 1 - OC1REF has the same behavior as in PWM mode 1. OC1REFC outputs OC1REF when the counter is counting up, OC2REF when it is counting down.

1111: Asymmetric PWM mode 2 - OC1REF has the same behavior as in PWM mode 2. OC1REFC outputs OC1REF when the counter is counting up, OC2REF when it is counting down.

Note: These bits can not be modified as long as LOCK level 3 has been programmed (LOCK bits in TIMx_BDTR register) and CC1S='00' (the channel is configured in output).

Note: In PWM mode, the OCREF level changes only when the result of the comparison changes or when the output compare mode switches from "frozen" mode to "PWM" mode.

Note: On channels having a complementary output, this bit field is preloaded. If the CCPC bit is set in the TIMx_CR2 register then the OC1M active bits take the new value from the preloaded bits only when a COM event is generated.

Note: The OC1M[3] bit is not contiguous, located in bit 16.

Bit 3 OC1PE : Output Compare 1 preload enable

0: Preload register on TIMx_CCR1 disabled. TIMx_CCR1 can be written at anytime, the new value is taken in account immediately.

1: Preload register on TIMx_CCR1 enabled. Read/Write operations access the preload register. TIMx_CCR1 preload value is loaded in the active register at each update event.

Note: These bits can not be modified as long as LOCK level 3 has been programmed (LOCK bits in TIMx_BDTR register) and CC1S='00' (the channel is configured in output).

The PWM mode can be used without validating the preload register only in one pulse mode (OPM bit set in TIMx_CR1 register). Else the behavior is not guaranteed.

Bit 2 OC1FE : Output Compare 1 fast enable

This bit decreases the latency between a trigger event and a transition on the timer output. It must be used in one-pulse mode (OPM bit set in TIMx_CR1 register), to have the output pulse starting as soon as possible after the starting trigger.

0: CC1 behaves normally depending on counter and CCR1 values even when the trigger is ON. The minimum delay to activate CC1 output when an edge occurs on the trigger input is 5 clock cycles.

1: An active edge on the trigger input acts like a compare match on CC1 output. Then, OC is set to the compare level independently from the result of the comparison. Delay to sample the trigger input and to activate CC1 output is reduced to 3 clock cycles. OCFE acts only if the channel is configured in PWM1 or PWM2 mode.

Bits 1:0 CC1S[1:0] : Capture/Compare 1 selection

This bit-field defines the direction of the channel (input/output) as well as the used input.

00: CC1 channel is configured as output

01: CC1 channel is configured as input, IC1 is mapped on TI1

10: CC1 channel is configured as input, IC1 is mapped on TI2

11: CC1 channel is configured as input, IC1 is mapped on TRC. This mode is working only if an internal trigger input is selected through TS bit (TIMx_SMCR register)

Note: CC1S bits are writable only when the channel is OFF (CC1E = '0' in TIMx_CCER).

20.4.9 TIM1 capture/compare mode register 2 [alternate] (TIM1_CCMR2)

Address offset: 0x1C

Reset value: 0x0000 0000

The same register can be used for input capture mode (this section) or for output compare mode (next section). The direction of a channel is defined by configuring the corresponding CCxS bits. All the other bits of this register have a different function for input capture and for output compare modes. It is possible to combine both modes independently (e.g. channel 1 in input capture mode and channel 2 in output compare mode).

Input capture mode:

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IC4F[3:0]IC4PSC[1:0]CC4S[1:0]IC3F[3:0]IC3PSC[1:0]CC3S[1:0]
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Bits 31:16 Reserved, must be kept at reset value.

Bits 15:12 IC4F[3:0] : Input capture 4 filter
Refer to IC1F[3:0] description.

Bits 11:10 IC4PSC[1:0] : Input capture 4 prescaler
Refer to IC1PSC[1:0] description.

Bits 9:8 CC4S[1:0] : Capture/Compare 4 selection
This bit-field defines the direction of the channel (input/output) as well as the used input.
00: CC4 channel is configured as output
01: CC4 channel is configured as input, IC4 is mapped on TI4
10: CC4 channel is configured as input, IC4 is mapped on TI3
11: CC4 channel is configured as input, IC4 is mapped on TRC. This mode is working only if an internal trigger input is selected through TS bit (TIMx_SMCR register)
Note: CC4S bits are writable only when the channel is OFF (CC4E = '0' in TIMx_CCER).

Bits 7:4 IC3F[3:0] : Input capture 3 filter
Refer to IC1F[3:0] description.

Bits 3:2 IC3PSC[1:0] : Input capture 3 prescaler
Refer to IC1PSC[1:0] description.

Bits 1:0 CC3S[1:0] : Capture/compare 3 selection
This bit-field defines the direction of the channel (input/output) as well as the used input.
00: CC3 channel is configured as output
01: CC3 channel is configured as input, IC3 is mapped on TI3
10: CC3 channel is configured as input, IC3 is mapped on TI4
11: CC3 channel is configured as input, IC3 is mapped on TRC. This mode is working only if an internal trigger input is selected through TS bit (TIMx_SMCR register)
Note: CC3S bits are writable only when the channel is OFF (CC3E = '0' in TIMx_CCER).

20.4.10 TIM1 capture/compare mode register 2 [alternate] (TIM1_CCMR2)

Address offset: 0x1C

Reset value: 0x0000 0000

The same register can be used for output compare mode (this section) or for input capture mode (previous section). The direction of a channel is defined by configuring the corresponding CCxS bits. All the other bits of this register have a different function for input capture and for output compare modes. It is possible to combine both modes independently (e.g. channel 1 in input capture mode and channel 2 in output compare mode).

Output compare mode

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OC4CEOC4M[2:0]OC4PEOC4FECC4S[1:0]OC3CEOC3M[2:0]OC3PEOC3FECC3S[1:0]
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Bits 31:25 Reserved, must be kept at reset value.

Bits 23:17 Reserved, must be kept at reset value.

Bit 15 OC4CE : Output compare 4 clear enable
Refer to OC1CE description.

Bits 24, 14:12 OC4M[3:0] : Output compare 4 mode
Refer to OC3M[3:0] description.

Bit 11 OC4PE : Output compare 4 preload enable
Refer to OC1PE description.

Bit 10 OC4FE : Output compare 4 fast enable
Refer to OC1FE description.

Bits 9:8 CC4S[1:0] : Capture/Compare 4 selection
This bit-field defines the direction of the channel (input/output) as well as the used input.
00: CC4 channel is configured as output
01: CC4 channel is configured as input, IC4 is mapped on TI4
10: CC4 channel is configured as input, IC4 is mapped on TI3
11: CC4 channel is configured as input, IC4 is mapped on TRC. This mode is working only if an internal trigger input is selected through TS bit (TIMx_SMCR register)
Note: CC4S bits are writable only when the channel is OFF (CC4E = '0' in TIMx_CCER).

Bit 7 OC3CE : Output compare 3 clear enable
Refer to OC1CE description.

Bits 16, 6:4 OC3M[3:0] : Output compare 3 mode
Refer to OC1M[3:0] description.

Bit 3 OC3PE : Output compare 3 preload enable
Refer to OC1PE description.

Bit 2 OC3FE : Output compare 3 fast enable
Refer to OC1FE description.

Bits 1:0 CC3S[1:0] : Capture/Compare 3 selection
This bit-field defines the direction of the channel (input/output) as well as the used input.
00: CC3 channel is configured as output
01: CC3 channel is configured as input, IC3 is mapped on TI3
10: CC3 channel is configured as input, IC3 is mapped on TI4
11: CC3 channel is configured as input, IC3 is mapped on TRC. This mode is working only if an internal trigger input is selected through TS bit (TIMx_SMCR register)
Note: CC3S bits are writable only when the channel is OFF (CC3E = '0' in TIMx_CCER).

20.4.11 TIM1 capture/compare enable register (TIM1_CCER)

Address offset: 0x20

Reset value: 0x0000 0000

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Bits 31:22 Reserved, must be kept at reset value.

Bit 21 CC6P : Capture/Compare 6 output polarity

Refer to CC1P description

Bit 20 CC6E : Capture/Compare 6 output enable

Refer to CC1E description

Bits 19:18 Reserved, must be kept at reset value.

Bit 17 CC5P : Capture/Compare 5 output polarity

Refer to CC1P description

Bit 16 CC5E : Capture/Compare 5 output enable

Refer to CC1E description

Bit 15 CC4NP : Capture/Compare 4 complementary output polarity

Refer to CC1NP description

Bit 14 Reserved, must be kept at reset value.

Bit 13 CC4P : Capture/Compare 4 output polarity

Refer to CC1P description

Bit 12 CC4E : Capture/Compare 4 output enable

Refer to CC1E description

Bit 11 CC3NP : Capture/Compare 3 complementary output polarity

Refer to CC1NP description

Bit 10 CC3NE : Capture/Compare 3 complementary output enable

Refer to CC1NE description

Bit 9 CC3P : Capture/Compare 3 output polarity

Refer to CC1P description

Bit 8 CC3E : Capture/Compare 3 output enable

Refer to CC1E description

Bit 7 CC2NP : Capture/Compare 2 complementary output polarity

Refer to CC1NP description

Bit 6 CC2NE : Capture/Compare 2 complementary output enable

Refer to CC1NE description

Bit 5 CC2P : Capture/Compare 2 output polarity

Refer to CC1P description

Bit 4 CC2E : Capture/Compare 2 output enable

Refer to CC1E description

Bit 3 CC1NP : Capture/Compare 1 complementary output polarity

CC1 channel configured as output:

0: OC1N active high.

1: OC1N active low.

CC1 channel configured as input:

This bit is used in conjunction with CC1P to define the polarity of TI1FP1 and TI2FP1. Refer to CC1P description.

Note: This bit is not writable as soon as LOCK level 2 or 3 has been programmed (LOCK bits in TIMx_BDTR register) and CC1S="00" (channel configured as output).

On channels having a complementary output, this bit is preloaded. If the CCPC bit is set in the TIMx_CR2 register then the CC1NP active bit takes the new value from the preloaded bit only when a Commutation event is generated.

Bit 2 CC1NE : Capture/Compare 1 complementary output enable

0: Off - OC1N is not active. OC1N level is then function of MOE, OSSI, OSSR, OIS1, OIS1N and CC1E bits.

1: On - OC1N signal is output on the corresponding output pin depending on MOE, OSSI, OSSR, OIS1, OIS1N and CC1E bits.

On channels having a complementary output, this bit is preloaded. If the CCPC bit is set in the TIMx_CR2 register then the CC1NE active bit takes the new value from the preloaded bit only when a Commutation event is generated.

Bit 1 CC1P : Capture/Compare 1 output polarity

0: OC1 active high (output mode) / Edge sensitivity selection (input mode, see below)

1: OC1 active low (output mode) / Edge sensitivity selection (input mode, see below)

When CC1 channel is configured as input, both CC1NP/CC1P bits select the active polarity of TI1FP1 and TI2FP1 for trigger or capture operations.

CC1NP=0, CC1P=0: non-inverted/rising edge. The circuit is sensitive to TIxFP1 rising edge (capture or trigger operations in reset, external clock or trigger mode), TIxFP1 is not inverted (trigger operation in gated mode or encoder mode).

CC1NP=0, CC1P=1: inverted/falling edge. The circuit is sensitive to TIxFP1 falling edge (capture or trigger operations in reset, external clock or trigger mode), TIxFP1 is inverted (trigger operation in gated mode or encoder mode).

CC1NP=1, CC1P=1: non-inverted/both edges/ The circuit is sensitive to both TIxFP1 rising and falling edges (capture or trigger operations in reset, external clock or trigger mode), TIxFP1 is not inverted (trigger operation in gated mode). This configuration must not be used in encoder mode.

CC1NP=1, CC1P=0: The configuration is reserved, it must not be used.

Note: This bit is not writable as soon as LOCK level 2 or 3 has been programmed (LOCK bits in TIMx_BDTR register).

On channels having a complementary output, this bit is preloaded. If the CCPC bit is set in the TIMx_CR2 register then the CC1P active bit takes the new value from the preloaded bit only when a Commutation event is generated.

Bit 0 CC1E : Capture/Compare 1 output enable

0: Capture mode disabled / OC1 is not active (see below)

1: Capture mode enabled / OC1 signal is output on the corresponding output pin

When CC1 channel is configured as output , the OC1 level depends on MOE, OSSI, OSSR, OIS1, OIS1N and CC1NE bits, regardless of the CC1E bits state. Refer to Table 116 for details.

Note: On channels having a complementary output, this bit is preloaded. If the CCPC bit is set in the TIMx_CR2 register then the CC1E active bit takes the new value from the preloaded bit only when a Commutation event is generated.

Table 116. Output control bits for complementary OCx and OCxN channels with break feature

Control bitsOutput states (1)
MOE bitOSSI bitOSSR bitCCxE bitCCxNE bitOCx output stateOCxN output state
1XX00Output disabled (not driven by the timer: Hi-Z)
OCx=0, OCxN=0
001Output disabled (not driven by the timer: Hi-Z)
OCx=0
OCxREF + Polarity
OCxN = OCxREF xor CCxNP
010OCxREF + Polarity
OCx=OCxREF xor CCxP
Output Disabled (not driven by the timer: Hi-Z)
OCxN=0
X11OCREF + Polarity + dead-timeComplementary to OCREF (not OCREF) + Polarity + dead-time
101Off-State (output enabled with inactive state)
OCx=CCxP
OCxREF + Polarity
OCxN = OCxREF xor CCxNP
110OCxREF + Polarity
OCx=OCxREF xor CCxP
Off-State (output enabled with inactive state)
OCxN=CCxNP
00XXXOutput disabled (not driven by the timer: Hi-Z).
100
01Off-State (output enabled with inactive state)
Asynchronously: OCx=CCxP, OCxN=CCxNP (if BRK or BRK2 is triggered).

Then (this is valid only if BRK is triggered), if the clock is present: OCx=OISx and OCxN=OISxN after a dead-time, assuming that OISx and OISxN do not correspond to OCx and OCxN both in active state (may cause a short circuit when driving switches in half-bridge configuration).
Note: BRK2 can only be used if OSSI = OSSR = 1.
10
11

1. When both outputs of a channel are not used (control taken over by GPIO), the OISx, OISxN, CCxP and CCxNP bits must be kept cleared.

Note: The state of the external I/O pins connected to the complementary OCx and OCxN channels depends on the OCx and OCxN channel state and the GPIO registers.

20.4.12 TIM1 counter (TIM1_CNT)

Address offset: 0x24

Reset value: 0x0000 0000

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1514131211109876543210
CNT[15:0]
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Bit 31 UIFCPY : UIF copy

This bit is a read-only copy of the UIF bit of the TIMx_ISR register. If the UIFREMAP bit in the TIMxCR1 is reset, bit 31 is reserved and read at 0.

Bits 30:16 Reserved, must be kept at reset value.

Bits 15:0 CNT[15:0] : Counter value

20.4.13 TIM1 prescaler (TIM1_PSC)

Address offset: 0x28

Reset value: 0x0000

1514131211109876543210
PSC[15:0]
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Bits 15:0 PSC[15:0] : Prescaler value

The counter clock frequency (CK_CNT) is equal to \( f_{CK\_PSC} / (PSC[15:0] + 1) \) .

PSC contains the value to be loaded in the active prescaler register at each update event (including when the counter is cleared through UG bit of TIMx_EGR register or through trigger controller when configured in “reset mode”).

20.4.14 TIM1 auto-reload register (TIM1_ARR)

Address offset: 0x2C

Reset value: 0xFFFF

1514131211109876543210
ARR[15:0]
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Bits 15:0 ARR[15:0] : Auto-reload value

ARR is the value to be loaded in the actual auto-reload register.

Refer to the Section 20.3.1: Time-base unit on page 463 for more details about ARR update and behavior.

The counter is blocked while the auto-reload value is null.

20.4.15 TIM1 repetition counter register (TIM1_RCR)

Address offset: 0x30

Reset value: 0x0000

1514131211109876543210
REP[15:0]
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Bits 15:0 REP[15:0] : Repetition counter value

These bits allow the user to set-up the update rate of the compare registers (i.e. periodic transfers from preload to active registers) when preload registers are enable, as well as the update interrupt generation rate, if this interrupt is enable.

Each time the REP_CNT related downcounter reaches zero, an update event is generated and it restarts counting from REP value. As REP_CNT is reloaded with REP value only at the repetition update event U_RC, any write to the TIMx_RCR register is not taken in account until the next repetition update event.

It means in PWM mode (REP+1) corresponds to:

the number of PWM periods in edge-aligned mode

the number of half PWM period in center-aligned mode.

20.4.16 TIM1 capture/compare register 1 (TIM1_CCR1)

Address offset: 0x34

Reset value: 0x0000

1514131211109876543210
CCR1[15:0]
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Bits 15:0 CCR1[15:0] : Capture/Compare 1 value

If channel CC1 is configured as output: CCR1 is the value to be loaded in the actual capture/compare 1 register (preload value).

It is loaded permanently if the preload feature is not selected in the TIMx_CCMR1 register (bit OC1PE). Else the preload value is copied in the active capture/compare 1 register when an update event occurs.

The active capture/compare register contains the value to be compared to the counter TIMx_CNT and signaled on OC1 output.

If channel CC1 is configured as input: CR1 is the counter value transferred by the last input capture 1 event (IC1). The TIMx_CCR1 register is read-only and cannot be programmed.

20.4.17 TIM1 capture/compare register 2 (TIM1_CCR2)

Address offset: 0x38

Reset value: 0x0000

1514131211109876543210
CCR2[15:0]
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Bits 15:0 CCR2[15:0] : Capture/Compare 2 value

If channel CC2 is configured as output: CCR2 is the value to be loaded in the actual capture/compare 2 register (preload value).

It is loaded permanently if the preload feature is not selected in the TIMx_CCMR1 register (bit OC2PE). Else the preload value is copied in the active capture/compare 2 register when an update event occurs.

The active capture/compare register contains the value to be compared to the counter TIMx_CNT and signaled on OC2 output.

If channel CC2 is configured as input: CCR2 is the counter value transferred by the last input capture 2 event (IC2). The TIMx_CCR2 register is read-only and cannot be programmed.

20.4.18 TIM1 capture/compare register 3 (TIM1_CCR3)

Address offset: 0x3C

Reset value: 0x0000

1514131211109876543210
CCR3[15:0]
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Bits 15:0 CCR3[15:0] : Capture/Compare value

If channel CC3 is configured as output: CCR3 is the value to be loaded in the actual capture/compare 3 register (preload value).

It is loaded permanently if the preload feature is not selected in the TIMx_CCMR2 register (bit OC3PE). Else the preload value is copied in the active capture/compare 3 register when an update event occurs.

The active capture/compare register contains the value to be compared to the counter TIMx_CNT and signalled on OC3 output.

If channel CC3 is configured as input: CCR3 is the counter value transferred by the last input capture 3 event (IC3). The TIMx_CCR3 register is read-only and cannot be programmed.

20.4.19 TIM1 capture/compare register 4 (TIM1_CCR4)

Address offset: 0x40

Reset value: 0x0000

1514131211109876543210
CCR4[15:0]
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Bits 15:0 CCR4[15:0] : Capture/Compare value

If channel CC4 is configured as output: CCR4 is the value to be loaded in the actual capture/compare 4 register (preload value).

It is loaded permanently if the preload feature is not selected in the TIMx_CCMR2 register (bit OC4PE). Else the preload value is copied in the active capture/compare 4 register when an update event occurs.

The active capture/compare register contains the value to be compared to the counter TIMx_CNT and signalled on OC4 output.

If channel CC4 is configured as input: CCR4 is the counter value transferred by the last input capture 4 event (IC4). The TIMx_CCR4 register is read-only and cannot be programmed.

20.4.20 TIM1 break and dead-time register (TIM1_BDTR)

Address offset: 0x44

Reset value: 0x0000 0000

31302928272625242322212019181716
Res.Res.Res.Res.Res.Res.BK2PBK2EBK2F[3:0]BKF[3:0]
rwrwrwrwrwrwrwrwrwrw
1514131211109876543210
MOEAOEBKPBKEOSSROSSILOCK[1:0]DTG[7:0]
rwrwrwrwrwrwrwrwrwrwrwrwrwrwrwrw

Note: As the bits BK2P, BK2E, BK2F[3:0], BKF[3:0], AOE, BKP, BKE, OSSI, OSSR and DTG[7:0] can be write-locked depending on the LOCK configuration, it can be necessary to configure all of them during the first write access to the TIMx_BDTR register.

Bits 31:26 Reserved, must be kept at reset value.

Bit 25 BK2P : Break 2 polarity

0: Break input BRK2 is active low

1: Break input BRK2 is active high

Note: This bit cannot be modified as long as LOCK level 1 has been programmed (LOCK bits in TIMx_BDTR register).

Note: Any write operation to this bit takes a delay of 1 APB clock cycle to become effective.

Bit 24 BK2E : Break 2 enable

Note: The BRK2 must only be used with OSSR = OSSI = 1.

Note: This bit cannot be modified when LOCK level 1 has been programmed (LOCK bits in TIMx_BDTR register).

Note: Any write operation to this bit takes a delay of 1 APB clock cycle to become effective.

Bits 23:20 BK2F[3:0] : Break 2 filter

This bit-field defines the frequency used to sample BRK2 input and the length of the digital filter applied to BRK2. The digital filter is made of an event counter in which N consecutive events are needed to validate a transition on the output:

0000: No filter, BRK2 acts asynchronously

0001: \( f_{\text{SAMPLING}}=f_{\text{CK\_INT}} \) , N=2

0010: \( f_{\text{SAMPLING}}=f_{\text{CK\_INT}} \) , N=4

0011: \( f_{\text{SAMPLING}}=f_{\text{CK\_INT}} \) , N=8

0100: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/2 \) , N=6

0101: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/2 \) , N=8

0110: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/4 \) , N=6

0111: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/4 \) , N=8

1000: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/8 \) , N=6

1001: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/8 \) , N=8

1010: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/16 \) , N=5

1011: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/16 \) , N=6

1100: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/16 \) , N=8

1101: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/32 \) , N=5

1110: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/32 \) , N=6

1111: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/32 \) , N=8

Note: This bit cannot be modified when LOCK level 1 has been programmed (LOCK bits in TIMx_BDTR register).

Bits 19:16 BKF[3:0] : Break filter

This bit-field defines the frequency used to sample BRK input and the length of the digital filter applied to BRK. The digital filter is made of an event counter in which N consecutive events are needed to validate a transition on the output:

0000: No filter, BRK acts asynchronously

0001: \( f_{\text{SAMPLING}}=f_{\text{CK\_INT}} \) , N=2

0010: \( f_{\text{SAMPLING}}=f_{\text{CK\_INT}} \) , N=4

0011: \( f_{\text{SAMPLING}}=f_{\text{CK\_INT}} \) , N=8

0100: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/2 \) , N=6

0101: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/2 \) , N=8

0110: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/4 \) , N=6

0111: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/4 \) , N=8

1000: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/8 \) , N=6

1001: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/8 \) , N=8

1010: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/16 \) , N=5

1011: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/16 \) , N=6

1100: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/16 \) , N=8

1101: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/32 \) , N=5

1110: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/32 \) , N=6

1111: \( f_{\text{SAMPLING}}=f_{\text{DTS}}/32 \) , N=8

Note: This bit cannot be modified when LOCK level 1 has been programmed (LOCK bits in TIMx_BDTR register).

Bit 15 MOE: Main output enable

This bit is cleared asynchronously by hardware as soon as one of the break inputs is active (BRK or BRK2). It is set by software or automatically depending on the AOE bit. It is acting only on the channels which are configured in output.

0: In response to a break 2 event. OC and OCN outputs are disabled

In response to a break event or if MOE is written to 0: OC and OCN outputs are disabled or forced to idle state depending on the OSSI bit.

1: OC and OCN outputs are enabled if their respective enable bits are set (CCxE, CCxNE in TIMx_CCER register).

See OC/OCN enable description for more details ( Section 20.4.11: TIM1 capture/compare enable register (TIM1_CCER) ).

Bit 14 AOE: Automatic output enable

0: MOE can be set only by software

1: MOE can be set by software or automatically at the next update event (if none of the break inputs BRK and BRK2 is active)

Note: This bit can not be modified as long as LOCK level 1 has been programmed (LOCK bits in TIMx_BDTR register).

Bit 13 BKP: Break polarity

0: Break input BRK is active low

1: Break input BRK is active high

Note: This bit can not be modified as long as LOCK level 1 has been programmed (LOCK bits in TIMx_BDTR register).

Note: Any write operation to this bit takes a delay of 1 APB clock cycle to become effective.

Bit 12 BKE: Break enable

0: Break inputs (BRK and CCS clock failure event) disabled

1: Break inputs (BRK and CCS clock failure event) enabled

Note: This bit cannot be modified when LOCK level 1 has been programmed (LOCK bits in TIMx_BDTR register).

Note: Any write operation to this bit takes a delay of 1 APB clock cycle to become effective.

Bit 11 OSSR: Off-state selection for Run mode

This bit is used when MOE=1 on channels having a complementary output which are configured as outputs. OSSR is not implemented if no complementary output is implemented in the timer.

See OC/OCN enable description for more details ( Section 20.4.11: TIM1 capture/compare enable register (TIM1_CCER) ).

0: When inactive, OC/OCN outputs are disabled (the timer releases the output control which is taken over by the GPIO logic, which forces a Hi-Z state).

1: When inactive, OC/OCN outputs are enabled with their inactive level as soon as CCxE=1 or CCxNE=1 (the output is still controlled by the timer).

Note: This bit can not be modified as soon as the LOCK level 2 has been programmed (LOCK bits in TIMx_BDTR register).

Bit 10 OSSI : Off-state selection for Idle mode

This bit is used when MOE=0 due to a break event or by a software write, on channels configured as outputs.
See OC/OCN enable description for more details ( Section 20.4.11: TIM1 capture/compare enable register (TIM1_CCER) ).

0: When inactive, OC/OCN outputs are disabled (the timer releases the output control which is taken over by the GPIO logic and which imposes a Hi-Z state).
1: When inactive, OC/OCN outputs are first forced with their inactive level then forced to their idle level after the deadtime. The timer maintains its control over the output.

Note: This bit can not be modified as soon as the LOCK level 2 has been programmed (LOCK bits in TIMx_BDTR register).

Bits 9:8 LOCK[1:0] : Lock configuration

These bits offer a write protection against software errors.
00: LOCK OFF - No bit is write protected.
01: LOCK Level 1 = DTG bits in TIMx_BDTR register, OISx and OISxN bits in TIMx_CR2 register and BKE/BKP/AOE bits in TIMx_BDTR register can no longer be written.
10: LOCK Level 2 = LOCK Level 1 + CC Polarity bits (CCxP/CCxNP bits in TIMx_CCER register, as long as the related channel is configured in output through the CCxS bits) as well as OSSR and OSSI bits can no longer be written.
11: LOCK Level 3 = LOCK Level 2 + CC Control bits (OCxM and OCxPE bits in TIMx_CCMRx registers, as long as the related channel is configured in output through the CCxS bits) can no longer be written.

Note: The LOCK bits can be written only once after the reset. Once the TIMx_BDTR register has been written, their content is frozen until the next reset.

Bits 7:0 DTG[7:0] : Dead-time generator setup

This bit-field defines the duration of the dead-time inserted between the complementary outputs. DT correspond to this duration.
DTG[7:5] = 0xx => DT = DTG[7:0] × \( t_{DTG} \) with \( t_{DTG} = t_{DTS} \) .
DTG[7:5] = 10x => DT = (64 + DTG[5:0]) × \( t_{DTG} \) with \( t_{DTG} = 2 \times t_{DTS} \) .
DTG[7:5] = 110 => DT = (32 + DTG[4:0]) × \( t_{DTG} \) with \( t_{DTG} = 8 \times t_{DTS} \) .
DTG[7:5] = 111 => DT = (32 + DTG[4:0]) × \( t_{DTG} \) with \( t_{DTG} = 16 \times t_{DTS} \) .
Example if \( t_{DTS} = 125 \) ns (8 MHz), dead-time possible values are:
0 to 15875 ns by 125 ns steps,
16 µs to 31750 ns by 250 ns steps,
32 µs to 63 µs by 1 µs steps,
64 µs to 126 µs by 2 µs steps

Note: This bit-field can not be modified as long as LOCK level 1, 2 or 3 has been programmed (LOCK bits in TIMx_BDTR register).

20.4.21 TIM1 DMA control register (TIM1_DCR)

Address offset: 0x48

Reset value: 0x0000

1514131211109876543210
Res.Res.Res.DBL[4:0]Res.Res.Res.DBA[4:0]
rwrwrwrwrwrwrwrwrwrw

Bits 15:13 Reserved, must be kept at reset value.

Bits 12:8 DBL[4:0] : DMA burst length

This 5-bit vector defines the length of DMA transfers (the timer recognizes a burst transfer when a read or a write access is done to the TIMx_DMAR address), i.e. the number of transfers. Transfers can be in half-words or in bytes (see example below).

00000: 1 transfer
00001: 2 transfers
00010: 3 transfers
...
10001: 18 transfers

Example: Let us consider the following transfer: DBL = 7 bytes & DBA = TIMx_CR1.

– If DBL = 7 bytes and DBA = TIMx_CR1 represents the address of the byte to be transferred, the address of the transfer should be given by the following equation:

(TIMx_CR1 address) + DBA + (DMA index), where DMA index = DBL

In this example, 7 bytes are added to (TIMx_CR1 address) + DBA, which gives us the address from/to which the data is copied. In this case, the transfer is done to 7 registers starting from the following address: (TIMx_CR1 address) + DBA

According to the configuration of the DMA Data Size, several cases may occur:

– If the DMA Data Size is configured in half-words, 16-bit data is transferred to each of the 7 registers.

– If the DMA Data Size is configured in bytes, the data is also transferred to 7 registers: the first register contains the first MSB byte, the second register, the first LSB byte and so on. So with the transfer Timer, one also has to specify the size of data transferred by DMA.

Bits 7:5 Reserved, must be kept at reset value.

Bits 4:0 DBA[4:0] : DMA base address

This 5-bits vector defines the base-address for DMA transfers (when read/write access are done through the TIMx_DMAR address). DBA is defined as an offset starting from the address of the TIMx_CR1 register.

Example:

00000: TIMx_CR1,
00001: TIMx_CR2,
00010: TIMx_SMCR,
...

20.4.22 TIM1 DMA address for full transfer (TIM1_DMAR)

Address offset: 0x4C

Reset value: 0x0000 0000

31302928272625242322212019181716
DMAB[31:16]
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1514131211109876543210
DMAB[15:0]
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Bits 31:0 DMAB[31:0] : DMA register for burst accesses

A read or write operation to the DMAR register accesses the register located at the address \( (\text{TIMx\_CR1 address}) + (\text{DBA} + \text{DMA index}) \times 4 \)

where TIMx_CR1 address is the address of the control register 1, DBA is the DMA base address configured in TIMx_DCR register, DMA index is automatically controlled by the DMA transfer, and ranges from 0 to DBL (DBL configured in TIMx_DCR).

20.4.23 TIM1 option registers (TIM1_OR)

Address offset: 0x50

Reset value: 0x0000 0000

31302928272625242322212019181716
Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.
1514131211109876543210
Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.TIM1_ETR_ADC1_RMP
rwrw

Bits 31:4 Reserved, must be kept at reset value.

Bits 1:0 TIM1_ETR_ADC1_RMP[1:0] : TIM1_ETR_ADC1 remapping capability

Note: ADC1 AWD is 'ORed' with the other TIM1_ETR source signals. It is consequently necessary to disable by software other sources (input pins).

20.4.24 TIM1 capture/compare mode register 3 (TIM1_CCMR3)

Address offset: 0x54

Reset value: 0x0000 0000

The channels 5 and 6 can only be configured in output.

Output compare mode:

31302928272625242322212019181716
Res.Res.Res.Res.Res.Res.Res.OC6M[3]Res.Res.Res.Res.Res.Res.Res.OC5M[3]
rwrw
1514131211109876543210
OC6CEOC6M[2:0]OC6PEOC6FERes.OC5CEOC5M[2:0]OC5PEOC5FERes.
rwrwrwrwrwrwrwrwrwrwrwrw

Bits 31:25 Reserved, must be kept at reset value.

Bits 23:17 Reserved, must be kept at reset value.

Bit 15 OC6CE : Output compare 6 clear enable
Refer to OC1CE description.

Bits 24, 14, 13, 12 OC6M[3:0] : Output compare 6 mode
Refer to OC1M description.

Bit 11 OC6PE : Output compare 6 preload enable
Refer to OC1PE description.

Bit 10 OC6FE : Output compare 6 fast enable
Refer to OC1FE description.

Bits 9:8 Reserved, must be kept at reset value.

Bit 7 OC5CE : Output compare 5 clear enable
Refer to OC1CE description.

Bits 16, 6, 5, 4 OC5M[3:0] : Output compare 5 mode
Refer to OC1M description.

Bit 3 OC5PE : Output compare 5 preload enable
Refer to OC1PE description.

Bit 2 OC5FE : Output compare 5 fast enable
Refer to OC1FE description.

Bits 1:0 Reserved, must be kept at reset value.

20.4.25 TIM1 capture/compare register 5 (TIM1_CCR5)

Address offset: 0x58

Reset value: 0x0000 0000

31302928272625242322212019181716
GC5C3GC5C2GC5C1Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.
rwrwrw
1514131211109876543210
CCR5[15:0]
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Bit 31 GC5C3 : Group Channel 5 and Channel 3

Distortion on Channel 3 output:

0: No effect of OC5REF on OC3REFC

1: OC3REFC is the logical AND of OC3REFC and OC5REF

This bit can either have immediate effect or be preloaded and taken into account after an update event (if preload feature is selected in TIMxCCMR2).

Note: it is also possible to apply this distortion on combined PWM signals.

Bit 30 GC5C2 : Group Channel 5 and Channel 2

Distortion on Channel 2 output:

0: No effect of OC5REF on OC2REFC

1: OC2REFC is the logical AND of OC2REFC and OC5REF

This bit can either have immediate effect or be preloaded and taken into account after an update event (if preload feature is selected in TIMxCCMR1).

Note: it is also possible to apply this distortion on combined PWM signals.

Bit 29 GC5C1 : Group Channel 5 and Channel 1

Distortion on Channel 1 output:

0: No effect of OC5REF on OC1REFC

1: OC1REFC is the logical AND of OC1REFC and OC5REF

This bit can either have immediate effect or be preloaded and taken into account after an update event (if preload feature is selected in TIMxCCMR1).

Note: it is also possible to apply this distortion on combined PWM signals.

Bits 28:16 Reserved, must be kept at reset value.

Bits 15:0 CCR5[15:0] : Capture/Compare 5 value

CCR5 is the value to be loaded in the actual capture/compare 5 register (preload value).

It is loaded permanently if the preload feature is not selected in the TIMx_CCMR3 register (bit OC5PE). Else the preload value is copied in the active capture/compare 5 register when an update event occurs.

The active capture/compare register contains the value to be compared to the counter TIMx_CNT and signaled on OC5 output.

20.4.26 TIM1 capture/compare register 6 (TIM1_CCR6)

Address offset: 0x5C

Reset value: 0x0000

1514131211109876543210
CCR6[15:0]
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Bits 15:0 CCR6[15:0] : Capture/Compare 6 value

CCR6 is the value to be loaded in the actual capture/compare 6 register (preload value).

It is loaded permanently if the preload feature is not selected in the TIMx_CCMR3 register (bit OC6PE). Else the preload value is copied in the active capture/compare 6 register when an update event occurs.

The active capture/compare register contains the value to be compared to the counter TIMx_CNT and signaled on OC6 output.

20.4.27 TIM1 register map

TIM1 registers are mapped as 16-bit addressable registers as described in the table below:

Table 117. TIM1 register map and reset values

OffsetRegister313029282726252423222120191817161514131211109876543210
0x00TIM1_CR1Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.UIFREMARes.CKD
[1:0]
ARPECMS
[1:0]
DIROPMURSUDISCEN
Reset value00000000000
0x04TIM1_CR2Res.Res.Res.Res.Res.Res.Res.Res.MMS2[3:0]Res.OIS6Res.OIS5Res.OIS4OIS3NOIS3OIS2NOIS2OIS1NOIS1TI1SMMS
[2:0]
CCDSCCUSRes.CCPC
Reset value00000000000000000000
0x08TIM1_SMCRRes.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.SMS[3]ETPECEETPS
[1:0]
ETF[3:0]MSMTS[2:0]OCCSSMS[2:0]
Reset value00000000000000000
0x0CTIM1_DIERRes.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.TDECOMDECC4DECC3DECC2DECC1DEUDEBIETIECOMIECC4IECC3IECC2IECC1IEUIE
Reset value000000000000000
0x10TIM1_SRRes.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.CC6IFCC5IFRes.Res.Res.CC4OFCC3OFCC2OFCC1OFB2IFBIFTIFCOMIFCC4IFCC3IFCC2IFCC1IFUIF
Reset value000000000000000
0x14TIM1_EGRRes.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.B2GBGTGCOMGCC4GCC3GCC2GCC1GUG
Reset value000000000
0x18TIM1_CCMR1
Input Capture mode
Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.IC2F[3:0]IC2PSC
[1:0]
CC2S
[1:0]
IC1F[3:0]IC1PSC
[1:0]
CC1S
[1:0]
Reset value0000000000000000
TIM1_CCMR1
Output Compare mode
Res.Res.Res.Res.Res.Res.Res.OC2M[3]Res.Res.Res.Res.Res.Res.OC1M[3]OC2CEOC2M
[2:0]
OC2PEOC2FECC2S
[1:0]
OC1CEOC1M
[2:0]
OC1PEOC1FECC1S
[1:0]
Reset value00000000000000000
0x1CTIM1_CCMR2
Input Capture mode
Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.IC4F[3:0]IC4PSC
[1:0]
CC4S
[1:0]
IC3F[3:0]IC3PSC
[1:0]
CC3S
[1:0]
Reset value0000000000000000
TIM1_CCMR2
Output Compare mode
Res.Res.Res.Res.Res.Res.Res.OC4M[3]Res.Res.Res.Res.Res.Res.OC3M[3]OC4CEOC4M
[2:0]
OC4PEOC4FECC4S
[1:0]
OC3CEOC3M
[2:0]
OC3PEOC3FECC3S
[1:0]
Reset value00000000000000000
0x20TIM1_CCERRes.Res.Res.Res.Res.Res.Res.Res.Res.CC6PCC6ERes.Res.CC5PCC5ECC4NPRes.CC4PCC4ECC3NPCC3NECC3PCC3ECC2NPCC2NECC2PCC2ECC1NPCC1NECC1PCC1E
Reset value0000000000000000000

Table 117. TIM1 register map and reset values (continued)

OffsetRegister313029282726252423222120191817161514131211109876543210
0x24TIM1_CNTUIFCPYRes.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.CNT[15:0]
Reset value00000000000000000
0x28TIM1_PSCRes.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.PSC[15:0]
Reset value0000000000000000
0x2CTIM1_ARRRes.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.ARR[15:0]
Reset value1111111111111111
0x30TIM1_RCRRes.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.REP[15:0]
Reset value0000000000000000
0x34TIM1_CCR1Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.CCR1[15:0]
Reset value0000000000000000
0x38TIM1_CCR2Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.CCR2[15:0]
Reset value0000000000000000
0x3CTIM1_CCR3Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.CCR3[15:0]
Reset value0000000000000000
0x40TIM1_CCR4Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.CCR4[15:0]
Reset value0000000000000000
0x44TIM1_BDTRRes.Res.Res.Res.Res.Res.BK2PBK2EBK2F[3:0]BKF[3:0]MOEAOEBKPBKEOSSROSSILOCK [1:0]DT[7:0]
Reset value00000000000000000000000000
0x48TIM1_DCRRes.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.DBL[4:0]Res.Res.Res.DBA[4:0]
Reset value0000000000
0x4CTIM1_DMARDMAB[15:0]
Reset value00000000000000000000000000000000
0x50TIM1_ORRes.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.TIM1_ETR_ADC1_RMP
Reset value0

Table 117. TIM1 register map and reset values (continued)

OffsetRegister313029282726252423222120191817161514131211109876543210
0x54TIM1_CCMR3
Output
Compare mode
Res.Res.Res.Res.Res.Res.Res.OC6M[3]Res.Res.Res.Res.Res.Res.Res.OC5M[3]OC6CEOC6M
[2:0]
OC6PEOC6FERes.Res.OC5CEOC5M
[2:0]
OC5PEOC5FERes.Res.
Reset value00000000000000
0x58TIM1_CCR5GC5C3GC5C2GC5C1Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.CCR5[15:0]
Reset value000000000000000000
0x5CTIM1_CCR6Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.Res.CCR6[15:0]
Reset value000000000000000

Refer to Section 3.2 on page 51 for the register boundary addresses.