mirror of
https://github.com/wpilibsuite/allwpilib
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272 lines
7.1 KiB
C++
272 lines
7.1 KiB
C++
// Copyright (c) FIRST and other WPILib contributors.
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// Open Source Software; you can modify and/or share it under the terms of
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// the WPILib BSD license file in the root directory of this project.
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#include "wpi/timestamp.h"
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#include <atomic>
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#ifdef __FRC_ROBORIO__
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#include <stdint.h>
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#pragma GCC diagnostic push
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#pragma GCC diagnostic ignored "-Wpedantic"
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#pragma GCC diagnostic ignored "-Wignored-qualifiers"
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#include <FRC_FPGA_ChipObject/RoboRIO_FRC_ChipObject_Aliases.h>
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#include <FRC_FPGA_ChipObject/nRoboRIO_FPGANamespace/nInterfaceGlobals.h>
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#include <FRC_FPGA_ChipObject/nRoboRIO_FPGANamespace/tHMB.h>
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#include <FRC_NetworkCommunication/LoadOut.h>
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#pragma GCC diagnostic pop
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namespace fpga {
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using namespace nFPGA;
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using namespace nRoboRIO_FPGANamespace;
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} // namespace fpga
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#include <memory>
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#include "dlfcn.h"
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#endif
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#ifdef _WIN32
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#include <windows.h>
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#include <cassert>
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#include <exception>
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#else
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#include <chrono>
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#endif
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#include <cstdio>
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#include <fmt/format.h>
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#ifdef __FRC_ROBORIO__
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namespace {
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static constexpr const char hmbName[] = "HMB_0_RAM";
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static constexpr int timestampLowerOffset = 0xF0;
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static constexpr int timestampUpperOffset = 0xF1;
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static constexpr int hmbTimestampOffset = 5; // 5 us offset
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using NiFpga_CloseHmbFunc = NiFpga_Status (*)(const NiFpga_Session session,
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const char* memoryName);
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using NiFpga_OpenHmbFunc = NiFpga_Status (*)(const NiFpga_Session session,
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const char* memoryName,
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size_t* memorySize,
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void** virtualAddress);
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struct HMBHolder {
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~HMBHolder() {
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if (hmb) {
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closeHmb(hmb->getSystemInterface()->getHandle(), hmbName);
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dlclose(niFpga);
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}
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}
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explicit operator bool() const { return hmb != nullptr; }
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void Configure() {
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nFPGA::nRoboRIO_FPGANamespace::g_currentTargetClass =
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nLoadOut::getTargetClass();
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int32_t status = 0;
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hmb.reset(fpga::tHMB::create(&status));
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niFpga = dlopen("libNiFpga.so", RTLD_LAZY);
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if (!niFpga) {
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hmb = nullptr;
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return;
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}
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NiFpga_OpenHmbFunc openHmb = reinterpret_cast<NiFpga_OpenHmbFunc>(
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dlsym(niFpga, "NiFpgaDll_OpenHmb"));
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closeHmb = reinterpret_cast<NiFpga_CloseHmbFunc>(
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dlsym(niFpga, "NiFpgaDll_CloseHmb"));
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if (openHmb == nullptr || closeHmb == nullptr) {
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closeHmb = nullptr;
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dlclose(niFpga);
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hmb = nullptr;
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return;
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}
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size_t hmbBufferSize = 0;
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status =
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openHmb(hmb->getSystemInterface()->getHandle(), hmbName, &hmbBufferSize,
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reinterpret_cast<void**>(const_cast<uint32_t**>(&hmbBuffer)));
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if (status != 0) {
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closeHmb = nullptr;
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dlclose(niFpga);
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hmb = nullptr;
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return;
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}
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auto cfg = hmb->readConfig(&status);
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cfg.Enables_Timestamp = 1;
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hmb->writeConfig(cfg, &status);
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}
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void Reset() {
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if (hmb) {
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std::unique_ptr<fpga::tHMB> oldHmb;
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oldHmb.swap(hmb);
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closeHmb(oldHmb->getSystemInterface()->getHandle(), hmbName);
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closeHmb = nullptr;
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hmbBuffer = nullptr;
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oldHmb.reset();
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dlclose(niFpga);
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niFpga = nullptr;
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}
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}
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std::unique_ptr<fpga::tHMB> hmb;
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void* niFpga = nullptr;
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NiFpga_CloseHmbFunc closeHmb = nullptr;
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volatile uint32_t* hmbBuffer = nullptr;
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};
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static HMBHolder hmb;
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} // namespace
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#endif
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// offset in microseconds
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static uint64_t time_since_epoch() noexcept {
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#ifdef _WIN32
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FILETIME ft;
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uint64_t tmpres = 0;
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// 100-nanosecond intervals since January 1, 1601 (UTC)
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// which means 0.1 us
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GetSystemTimeAsFileTime(&ft);
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tmpres |= ft.dwHighDateTime;
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tmpres <<= 32;
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tmpres |= ft.dwLowDateTime;
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tmpres /= 10u; // convert to us
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// January 1st, 1970 - January 1st, 1601 UTC ~ 369 years
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// or 11644473600000000 us
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static const uint64_t deltaepoch = 11644473600000000ull;
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tmpres -= deltaepoch;
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return tmpres;
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#else
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// 1-us intervals
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return std::chrono::duration_cast<std::chrono::microseconds>(
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std::chrono::system_clock::now().time_since_epoch())
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.count();
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#endif
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}
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static uint64_t timestamp() noexcept {
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#ifdef _WIN32
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LARGE_INTEGER li;
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QueryPerformanceCounter(&li);
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// there is an imprecision with the initial value,
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// but what matters is that timestamps are monotonic and consistent
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return static_cast<uint64_t>(li.QuadPart);
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#else
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// 1-us intervals
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return std::chrono::duration_cast<std::chrono::microseconds>(
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std::chrono::steady_clock::now().time_since_epoch())
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.count();
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#endif
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}
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#ifdef _WIN32
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static uint64_t update_frequency() {
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LARGE_INTEGER li;
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if (!QueryPerformanceFrequency(&li) || !li.QuadPart) {
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// log something
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std::terminate();
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}
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return static_cast<uint64_t>(li.QuadPart);
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}
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#endif
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static const uint64_t zerotime_val = time_since_epoch();
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static const uint64_t offset_val = timestamp();
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#ifdef _WIN32
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static const uint64_t frequency_val = update_frequency();
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#endif
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uint64_t wpi::NowDefault() {
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#ifdef _WIN32
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assert(offset_val > 0u);
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assert(frequency_val > 0u);
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uint64_t delta = timestamp() - offset_val;
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// because the frequency is in update per seconds, we have to multiply the
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// delta by 1,000,000
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uint64_t delta_in_us = delta * 1000000ull / frequency_val;
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return delta_in_us + zerotime_val;
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#else
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return zerotime_val + timestamp() - offset_val;
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#endif
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}
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static std::atomic<uint64_t (*)()> now_impl{wpi::NowDefault};
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void wpi::impl::SetupNowRio() {
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#ifdef __FRC_ROBORIO__
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if (!hmb) {
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hmb.Configure();
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}
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#endif
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}
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void wpi::impl::ShutdownNowRio() {
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#ifdef __FRC_ROBORIO__
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hmb.Reset();
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#endif
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}
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void wpi::SetNowImpl(uint64_t (*func)(void)) {
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now_impl = func ? func : NowDefault;
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}
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uint64_t wpi::Now() {
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#ifdef __FRC_ROBORIO__
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// Same code as HAL_GetFPGATime()
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if (!hmb) {
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std::fputs(
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"FPGA not yet configured in wpi::Now(). Time will not be correct",
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stderr);
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std::fflush(stderr);
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return 0;
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}
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asm("dmb");
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uint64_t upper1 = hmb.hmbBuffer[timestampUpperOffset];
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asm("dmb");
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uint32_t lower = hmb.hmbBuffer[timestampLowerOffset];
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asm("dmb");
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uint64_t upper2 = hmb.hmbBuffer[timestampUpperOffset];
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if (upper1 != upper2) {
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// Rolled over between the lower call, reread lower
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asm("dmb");
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lower = hmb.hmbBuffer[timestampLowerOffset];
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}
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// 5 is added here because the time to write from the FPGA
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// to the HMB buffer is longer then the time to read
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// from the time register. This would cause register based
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// timestamps to be ahead of HMB timestamps, which could
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// be very bad.
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return (upper2 << 32) + lower + hmbTimestampOffset;
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#else
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return (now_impl.load())();
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#endif
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}
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uint64_t wpi::GetSystemTime() {
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return time_since_epoch();
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}
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extern "C" {
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void WPI_Impl_SetupNowRio(void) {
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return wpi::impl::SetupNowRio();
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}
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void WPI_Impl_ShutdownNowRio(void) {
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return wpi::impl::ShutdownNowRio();
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}
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uint64_t WPI_NowDefault(void) {
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return wpi::NowDefault();
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}
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void WPI_SetNowImpl(uint64_t (*func)(void)) {
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wpi::SetNowImpl(func);
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}
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uint64_t WPI_Now(void) {
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return wpi::Now();
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}
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uint64_t WPI_GetSystemTime(void) {
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return wpi::GetSystemTime();
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}
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} // extern "C"
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