mirror of
https://github.com/ArduPilot/ardupilot
synced 2025-01-19 23:28:32 -04:00
227 lines
5.3 KiB
C++
227 lines
5.3 KiB
C++
/*
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* This file is free software: you can redistribute it and/or modify it
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* under the terms of the GNU General Public License as published by the
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* Free Software Foundation, either version 3 of the License, or
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* (at your option) any later version.
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*
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* This file is distributed in the hope that it will be useful, but
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* WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
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* See the GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License along
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* with this program. If not, see <http://www.gnu.org/licenses/>.
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*
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* Code by Andrew Tridgell and Siddharth Bharat Purohit
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*/
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#include <stdarg.h>
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#include <stdio.h>
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#include <AP_HAL/AP_HAL.h>
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#include <AP_HAL/system.h>
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#include <AP_BoardConfig/AP_BoardConfig.h>
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#include <AP_InternalError/AP_InternalError.h>
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#include "hwdef/common/watchdog.h"
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#include "hwdef/common/stm32_util.h"
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#include <AP_Vehicle/AP_Vehicle_Type.h>
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#include <CrashCatcher.h>
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#include <ch.h>
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#include "hal.h"
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#include <hrt.h>
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#if CH_CFG_ST_RESOLUTION == 16
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static_assert(sizeof(systime_t) == 2, "expected 16 bit systime_t");
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#elif CH_CFG_ST_RESOLUTION == 32
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static_assert(sizeof(systime_t) == 4, "expected 32 bit systime_t");
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#endif
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static_assert(sizeof(systime_t) == sizeof(sysinterval_t), "expected systime_t same size as sysinterval_t");
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#if defined(HAL_EXPECTED_SYSCLOCK)
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#ifdef STM32_SYS_CK
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static_assert(HAL_EXPECTED_SYSCLOCK == STM32_SYS_CK, "unexpected STM32_SYS_CK value");
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#elif defined(STM32_HCLK)
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static_assert(HAL_EXPECTED_SYSCLOCK == STM32_HCLK, "unexpected STM32_HCLK value");
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#else
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#error "unknown system clock"
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#endif
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#endif
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extern const AP_HAL::HAL& hal;
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extern "C"
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{
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#define bkpt() __asm volatile("BKPT #0\n")
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typedef enum {
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Reset = 1,
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NMI = 2,
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HardFault = 3,
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MemManage = 4,
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BusFault = 5,
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UsageFault = 6,
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} FaultType;
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/*
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save watchdog data for a hard fault
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*/
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void save_fault_watchdog(uint16_t line, FaultType fault_type, uint32_t fault_addr, uint32_t lr)
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{
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#ifndef HAL_BOOTLOADER_BUILD
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bool using_watchdog = AP_BoardConfig::watchdog_enabled();
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if (using_watchdog) {
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AP_HAL::Util::PersistentData &pd = hal.util->persistent_data;
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if (pd.fault_type == 0) {
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// don't overwrite earlier fault
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pd.fault_line = line;
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pd.fault_type = fault_type;
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pd.fault_addr = fault_addr;
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thread_t *tp = chThdGetSelfX();
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if (tp) {
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pd.fault_thd_prio = tp->hdr.pqueue.prio;
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// get first 4 bytes of the name, but only of first fault
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if (tp->name && pd.thread_name4[0] == 0) {
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strncpy_noterm(pd.thread_name4, tp->name, 4);
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}
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}
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pd.fault_icsr = SCB->ICSR;
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pd.fault_lr = lr;
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}
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stm32_watchdog_save((uint32_t *)&hal.util->persistent_data, (sizeof(hal.util->persistent_data)+3)/4);
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}
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#endif
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}
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void *__dso_handle;
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void __cxa_pure_virtual(void);
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void __cxa_pure_virtual() { while (1); } //TODO: Handle properly, maybe generate a traceback
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static bool initialised = false;
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#ifndef HAL_CRASH_SERIAL_PORT_BAUD
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#define HAL_CRASH_SERIAL_PORT_BAUD 921600
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#endif
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#if !defined(USART_ISR_RXNE)
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#define USART_ISR_RXNE USART_ISR_RXNE_RXFNE
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#endif
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void NMI_Handler(void);
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void NMI_Handler(void) { while (1); }
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extern void HardFault_Handler(void);
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void BusFault_Handler(void);
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void BusFault_Handler(void) {
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HardFault_Handler();
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}
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void UsageFault_Handler(void);
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void UsageFault_Handler(void) {
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HardFault_Handler();
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}
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void MemManage_Handler(void);
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void MemManage_Handler(void) {
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HardFault_Handler();
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}
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}
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namespace AP_HAL {
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void init()
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{
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}
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void panic(const char *errormsg, ...)
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{
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#if !defined(HAL_BOOTLOADER_BUILD) && !APM_BUILD_TYPE(APM_BUILD_iofirmware)
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INTERNAL_ERROR(AP_InternalError::error_t::panic);
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va_list ap;
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va_start(ap, errormsg);
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vprintf(errormsg, ap);
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va_end(ap);
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hal.scheduler->delay_microseconds(10000);
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while (1) {
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va_start(ap, errormsg);
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vprintf(errormsg, ap);
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va_end(ap);
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hal.scheduler->delay(500);
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}
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#else
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// we don't support variable args in bootlaoder
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chSysHalt(errormsg);
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// we will never get here, this just to silence a warning
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while (1) {}
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#endif
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}
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uint32_t micros()
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{
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#if CH_CFG_ST_RESOLUTION == 32 && CH_CFG_ST_FREQUENCY==1000000U
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// special case optimisation for 32 bit timers
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return st_lld_get_counter();
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#else
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return hrt_micros32();
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#endif
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}
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uint16_t micros16()
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{
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#if CH_CFG_ST_RESOLUTION == 32 && CH_CFG_ST_FREQUENCY==1000000U
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return st_lld_get_counter() & 0xFFFF;
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#elif CH_CFG_ST_RESOLUTION == 16 && CH_CFG_ST_FREQUENCY==1000000U
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return st_lld_get_counter();
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#else
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return hrt_micros32() & 0xFFFF;
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#endif
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}
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uint32_t millis()
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{
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return hrt_millis32();
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}
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uint16_t millis16()
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{
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return hrt_millis32() & 0xFFFF;
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}
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uint64_t micros64()
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{
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return hrt_micros64();
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}
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uint64_t millis64()
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{
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return hrt_micros64() / 1000U;
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}
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uint32_t native_micros()
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{
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return micros();
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}
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uint32_t native_millis()
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{
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return millis();
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}
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uint16_t native_millis16()
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{
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return millis16();
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}
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uint64_t native_micros64()
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{
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return micros64();
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}
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uint64_t native_millis64()
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{
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return millis64();
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}
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} // namespace AP_HAL
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