mirror of https://github.com/ArduPilot/ardupilot
206 lines
5.1 KiB
C++
206 lines
5.1 KiB
C++
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/// -*- tab-width: 4; Mode: C++; c-basic-offset: 4; indent-tabs-mode: nil -*-
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/*
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This program is free software: you can redistribute it and/or modify
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it under the terms of the GNU General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU General Public License for more details.
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You should have received a copy of the GNU General Public License
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along with this program. If not, see <http://www.gnu.org/licenses/>.
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*/
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/*
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(c) 2017 night_ghost@ykoctpa.ru
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based on: Flymaple port by Mike McCauley
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*/
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#pragma GCC optimize ("O2")
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#include <AP_HAL/AP_HAL.h>
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#if CONFIG_HAL_BOARD == HAL_BOARD_F4LIGHT
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#include "AP_HAL_F4Light.h"
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#include "AP_HAL_F4Light_Namespace.h"
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#include "AnalogIn.h"
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#include <adc.h>
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#include <boards.h>
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#include <gpio_hal.h>
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#include "GPIO.h"
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#include <stm32f4xx.h>
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#include "Scheduler.h"
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#pragma GCC optimize ("O2")
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extern const AP_HAL::HAL& hal;
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using namespace F4Light;
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AnalogSource::AnalogSource(uint8_t pin) :
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_sum_count(0),
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_sum(0),
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_latest(0),
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_last_average(0),
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_pin(ANALOG_INPUT_NONE),
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_stop_pin(ANALOG_INPUT_NONE),
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_settle_time_ms(0),
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_read_start_time_ms(0),
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_init_done(false)
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{
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if(pin != ANALOG_INPUT_NONE) {
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set_pin(pin);
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}
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}
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/*
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return voltage from 0.0 to 3.3V, scaled to Vcc
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*/
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float AnalogSource::voltage_average(void)
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{
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return voltage_average_ratiometric();
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}
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float AnalogSource::voltage_latest(void)
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{
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return read_latest() * (3.3f / 4096.0f);
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}
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/*
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return voltage from 0.0 to 3.3V, assuming a ratiometric sensor. This
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means the result is really a pseudo-voltage, that assumes the supply
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voltage is exactly 3.3V.
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*/
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float AnalogSource::voltage_average_ratiometric(void)
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{
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float v = read_average();
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return v * (3.3f / 4096.0f);
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}
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void AnalogSource::set_pin(uint8_t pin) {
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if (pin != _pin) {
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noInterrupts();
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_sum = 0;
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_sum_count = 0;
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_last_average = 0;
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_latest = 0;
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_pin = pin;
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interrupts();
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// ensure the pin is marked as an INPUT pin
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if (pin != ANALOG_INPUT_NONE && pin != ANALOG_INPUT_F4Light_VCC && pin < BOARD_NR_GPIO_PINS) {
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GPIO::_pinMode(pin, INPUT_ANALOG);
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}
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if (pin == ANALOG_INPUT_F4Light_VCC || (pin != ANALOG_INPUT_NONE && pin < BOARD_NR_GPIO_PINS)) {
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const adc_dev *dev = _find_device();
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if(dev) {
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adc_init(dev);
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adc_enable(dev);
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}
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}
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_init_done=true;
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}
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}
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/* read_average is called from the normal thread (not an interrupt). */
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float AnalogSource::_read_average()
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{
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if (_sum_count == 0) {
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// avoid blocking waiting for new samples
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return _last_average;
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}
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/* Read and clear in a critical section */
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EnterCriticalSection;
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_last_average = _sum / _sum_count;
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LeaveCriticalSection;
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return _last_average;
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}
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void AnalogSource::setup_read() {
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if (_stop_pin != ANALOG_INPUT_NONE && _stop_pin < BOARD_NR_GPIO_PINS) {
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const stm32_pin_info &p = PIN_MAP[_stop_pin];
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gpio_set_mode( p.gpio_device, p.gpio_bit, GPIO_OUTPUT_PP);
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gpio_write_bit(p.gpio_device, p.gpio_bit, 1);
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}
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if (_settle_time_ms != 0) {
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_read_start_time_ms = AP_HAL::millis();
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}
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const adc_dev *dev = _find_device();
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if (_pin == ANALOG_INPUT_F4Light_VCC){
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adc_set_reg_seqlen(dev, 1);
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/* Enable Vrefint on Channel17 */
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adc_channel_config(dev, ADC_Channel_17, 1, ADC_SampleTime_84Cycles);
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adc_vref_enable();
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/* Wait until ADC + Temp sensor start */
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Scheduler::_delay_microseconds(10);
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} else if (_pin == ANALOG_INPUT_NONE) {
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// nothing to do
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} else if(dev != NULL && _pin < BOARD_NR_GPIO_PINS) {
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adc_set_reg_seqlen(dev, 1);
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uint8_t channel = PIN_MAP[_pin].adc_channel;
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adc_channel_config(dev, channel, 1, ADC_SampleTime_84Cycles);
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adc_enable(dev);
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}
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}
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void AnalogSource::stop_read() {
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if(_pin == ANALOG_INPUT_F4Light_VCC) {
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adc_vref_disable();
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}
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if (_stop_pin != ANALOG_INPUT_NONE && _stop_pin < BOARD_NR_GPIO_PINS) {
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const adc_dev *dev = _find_device();
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adc_disable(dev);
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const stm32_pin_info &p = PIN_MAP[_stop_pin];
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gpio_set_mode( p.gpio_device, p.gpio_bit, GPIO_OUTPUT_PP);
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gpio_write_bit(p.gpio_device, p.gpio_bit, 0);
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}
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}
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bool AnalogSource::reading_settled()
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{
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if (_settle_time_ms != 0 && (AP_HAL::millis() - _read_start_time_ms) < _settle_time_ms) {
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return false;
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}
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return true;
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}
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/* new_sample is called from another process */
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void AnalogSource::new_sample(uint16_t sample) {
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_latest = sample;
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EnterCriticalSection;
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_sum += sample;
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//#define MAX_SUM_COUNT 16 // a legacy of the painfull 8-bit past
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#define MAX_SUM_COUNT 64
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if (_sum_count >= MAX_SUM_COUNT) { // F4Light has a 12 bit ADC, so can only sum 16 in a uint16_t - and a 16*65536 in uint32_t
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_sum /= 2;
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_sum_count = MAX_SUM_COUNT/2;
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} else {
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_sum_count++;
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}
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LeaveCriticalSection;
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}
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#endif
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