Merge pull request #4192 from dhalbert/pico-pwmout-top-fix-4189
RP2040: fix off-by-one PWM top issue
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261b077209
@ -45,6 +45,18 @@ uint32_t slice_variable_frequency;
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static uint32_t channel_use;
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static uint32_t channel_use;
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static uint32_t never_reset_channel;
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static uint32_t never_reset_channel;
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// Per the RP2040 datasheet:
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//
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// "A CC value of 0 will produce a 0% output, i.e. the output signal
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// is always low. A CC value of TOP + 1 (i.e. equal to the period, in
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// non-phase-correct mode) will produce a 100% output. For example, if
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// TOP is programmed to 254, the counter will have a period of 255
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// cycles, and CC values in the range of 0 to 255 inclusive will
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// produce duty cycles in the range 0% to 100% inclusive."
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//
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// So 65534 should be the maximum top value, and we'll set CC to be TOP+1 as appropriate.
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#define MAX_TOP 65534
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static uint32_t _mask(uint8_t slice, uint8_t channel) {
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static uint32_t _mask(uint8_t slice, uint8_t channel) {
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return 1 << (slice * CHANNELS_PER_SLICE + channel);
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return 1 << (slice * CHANNELS_PER_SLICE + channel);
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}
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}
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@ -164,19 +176,28 @@ void common_hal_pwmio_pwmout_deinit(pwmio_pwmout_obj_t* self) {
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extern void common_hal_pwmio_pwmout_set_duty_cycle(pwmio_pwmout_obj_t* self, uint16_t duty) {
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extern void common_hal_pwmio_pwmout_set_duty_cycle(pwmio_pwmout_obj_t* self, uint16_t duty) {
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self->duty_cycle = duty;
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self->duty_cycle = duty;
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uint16_t actual_duty = duty * self->top / ((1 << 16) - 1);
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// Do arithmetic in 32 bits to prevent overflow.
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pwm_set_chan_level(self->slice, self->channel, actual_duty);
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uint16_t compare_count;
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if (duty == 65535) {
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// Ensure that 100% duty cycle is 100% full on and not rounded down,
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// but do MIN() to keep value in range, just in case.
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compare_count = MIN(UINT16_MAX, (uint32_t) self->top + 1);
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} else {
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compare_count= ((uint32_t) duty * self->top + MAX_TOP / 2) / MAX_TOP;
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}
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// compare_count is the CC register value, which should be TOP+1 for 100% duty cycle.
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pwm_set_chan_level(self->slice, self->channel, compare_count);
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}
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}
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uint16_t common_hal_pwmio_pwmout_get_duty_cycle(pwmio_pwmout_obj_t* self) {
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uint16_t common_hal_pwmio_pwmout_get_duty_cycle(pwmio_pwmout_obj_t* self) {
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return self->duty_cycle;
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return self->duty_cycle;
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}
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}
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void pwmio_pwmout_set_top(pwmio_pwmout_obj_t* self, uint32_t top) {
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void pwmio_pwmout_set_top(pwmio_pwmout_obj_t* self, uint16_t top) {
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self->actual_frequency = common_hal_mcu_processor_get_frequency() / top;
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self->actual_frequency = common_hal_mcu_processor_get_frequency() / top;
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self->top = top;
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self->top = top;
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pwm_set_clkdiv_int_frac(self->slice, 1, 0);
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pwm_set_clkdiv_int_frac(self->slice, 1, 0);
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pwm_set_wrap(self->slice, self->top - 1);
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pwm_set_wrap(self->slice, self->top);
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}
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}
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void common_hal_pwmio_pwmout_set_frequency(pwmio_pwmout_obj_t* self, uint32_t frequency) {
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void common_hal_pwmio_pwmout_set_frequency(pwmio_pwmout_obj_t* self, uint32_t frequency) {
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@ -187,7 +208,7 @@ void common_hal_pwmio_pwmout_set_frequency(pwmio_pwmout_obj_t* self, uint32_t fr
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target_slice_frequencies[self->slice] = frequency;
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target_slice_frequencies[self->slice] = frequency;
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// For low frequencies use the divider to give us full resolution duty_cycle.
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// For low frequencies use the divider to give us full resolution duty_cycle.
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if (frequency < (common_hal_mcu_processor_get_frequency() / (1 << 16))) {
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if (frequency <= (common_hal_mcu_processor_get_frequency() / (1 << 16))) {
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// Compute the divisor. It's an 8 bit integer and 4 bit fraction. Therefore,
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// Compute the divisor. It's an 8 bit integer and 4 bit fraction. Therefore,
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// we compute everything * 16 for the fractional part.
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// we compute everything * 16 for the fractional part.
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// This is 1 << 12 because 4 bits are the * 16.
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// This is 1 << 12 because 4 bits are the * 16.
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@ -201,16 +222,17 @@ void common_hal_pwmio_pwmout_set_frequency(pwmio_pwmout_obj_t* self, uint32_t fr
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if (div16 >= (1 << 12)) {
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if (div16 >= (1 << 12)) {
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div16 = (1 << 12) - 1;
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div16 = (1 << 12) - 1;
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}
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}
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self->actual_frequency = frequency16 / div16;
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self->actual_frequency = (frequency16 + (div16 / 2)) / div16;
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self->top = 1 << 16;
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self->top = MAX_TOP;
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pwm_set_clkdiv_int_frac(self->slice, div16 / 16, div16 % 16);
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pwm_set_clkdiv_int_frac(self->slice, div16 / 16, div16 % 16);
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pwm_set_wrap(self->slice, self->top - 1);
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pwm_set_wrap(self->slice, self->top);
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} else {
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} else {
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uint32_t top = common_hal_mcu_processor_get_frequency() / frequency;
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uint32_t top = common_hal_mcu_processor_get_frequency() / frequency;
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self->actual_frequency = common_hal_mcu_processor_get_frequency() / top;
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self->actual_frequency = common_hal_mcu_processor_get_frequency() / top;
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self->top = top;
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self->top = MIN(MAX_TOP, top);
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pwm_set_clkdiv_int_frac(self->slice, 1, 0);
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pwm_set_clkdiv_int_frac(self->slice, 1, 0);
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pwm_set_wrap(self->slice, self->top - 1);
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// Set TOP register. For 100% duty cycle, CC must be set to TOP+1.
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pwm_set_wrap(self->slice, self->top);
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}
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}
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common_hal_pwmio_pwmout_set_duty_cycle(self, self->duty_cycle);
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common_hal_pwmio_pwmout_set_duty_cycle(self, self->duty_cycle);
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}
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}
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@ -39,11 +39,11 @@ typedef struct {
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bool variable_frequency;
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bool variable_frequency;
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uint16_t duty_cycle;
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uint16_t duty_cycle;
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uint32_t actual_frequency;
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uint32_t actual_frequency;
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uint32_t top;
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uint16_t top;
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} pwmio_pwmout_obj_t;
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} pwmio_pwmout_obj_t;
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void pwmout_reset(void);
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void pwmout_reset(void);
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// Private API for AudioPWMOut.
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// Private API for AudioPWMOut.
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void pwmio_pwmout_set_top(pwmio_pwmout_obj_t* self, uint32_t top);
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void pwmio_pwmout_set_top(pwmio_pwmout_obj_t* self, uint16_t top);
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#endif // MICROPY_INCLUDED_ATMEL_SAMD_COMMON_HAL_PWMIO_PWMOUT_H
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#endif // MICROPY_INCLUDED_ATMEL_SAMD_COMMON_HAL_PWMIO_PWMOUT_H
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@ -34,7 +34,6 @@
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#include "lib/utils/buffer_helper.h"
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#include "lib/utils/buffer_helper.h"
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#include "lib/utils/context_manager_helpers.h"
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#include "lib/utils/context_manager_helpers.h"
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#include "py/objproperty.h"
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#include "py/runtime.h"
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#include "py/runtime.h"
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#include "supervisor/shared/translate.h"
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#include "supervisor/shared/translate.h"
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