3 Commits
Author SHA1 Message Date
Oleg Kalachev 7c53e88963 Add notch filter for the gyro 2026-07-08 16:07:03 +03:00
Oleg Kalachev 28f015569b Add log reset command to cli 2026-07-08 01:07:59 +03:00
Oleg Kalachev 83d1c5c68a Implement entirely new logging subsystem
Make topic-based logging mechanics.
Print any log value to console.
Possibility to expose any logging value to mavlink.
2026-06-30 13:03:43 +03:00
18 changed files with 585 additions and 105 deletions
+20 -3
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@@ -6,7 +6,7 @@
#include "pid.h" #include "pid.h"
#include "vector.h" #include "vector.h"
#include "util.h" #include "util.h"
#include "lpf.h" #include "filter.h"
extern const int MOTOR_REAR_LEFT, MOTOR_REAR_RIGHT, MOTOR_FRONT_RIGHT, MOTOR_FRONT_LEFT; extern const int MOTOR_REAR_LEFT, MOTOR_REAR_RIGHT, MOTOR_FRONT_RIGHT, MOTOR_FRONT_LEFT;
extern const int RAW, ACRO, STAB, AUTO; extern const int RAW, ACRO, STAB, AUTO;
@@ -52,6 +52,12 @@ const char* motd =
"mot - show motor output\n" "mot - show motor output\n"
"log [dump] - print log header [and data]\n" "log [dump] - print log header [and data]\n"
"mfr, mfl, mrr, mrl - test motor (remove props)\n" "mfr, mfl, mrr, mrl - test motor (remove props)\n"
"log - show log info\n"
"log header - show log header\n"
"log reset - reset log\n"
"log <name> <rate> - setup log topic rate\n"
"l <str> - show log values starting with str\n"
"l expose <name> - expose log value to telemetry\n"
"sys - show system info\n" "sys - show system info\n"
"reset - reset drone's state\n" "reset - reset drone's state\n"
"reboot - reboot the drone\n"; "reboot - reboot the drone\n";
@@ -153,9 +159,18 @@ void doCommand(String str, bool echo = false) {
} else if (command == "mot") { } else if (command == "mot") {
print("front-right %g front-left %g rear-right %g rear-left %g\n", print("front-right %g front-left %g rear-right %g rear-left %g\n",
motors[MOTOR_FRONT_RIGHT], motors[MOTOR_FRONT_LEFT], motors[MOTOR_REAR_RIGHT], motors[MOTOR_REAR_LEFT]); motors[MOTOR_FRONT_RIGHT], motors[MOTOR_FRONT_LEFT], motors[MOTOR_REAR_RIGHT], motors[MOTOR_REAR_LEFT]);
} else if (command == "log") { } else if (command == "log" && arg0 == "") {
printLogInfo();
} else if (command == "log" && arg1 != "") {
configLogThrottle(arg0.c_str(), arg1.toFloat());
} else if (command == "log" && arg0 == "header") {
printLogHeader(); printLogHeader();
if (arg0 == "dump") printLogData(); } else if (command == "log" && arg0 == "reset") {
resetLog();
} else if (command == "l" && arg0 == "expose" && arg1 != "") {
exposeLogValue(arg1.c_str());
} else if (command == "l") {
printLogValues(arg0.c_str());
} else if (command == "cr") { } else if (command == "cr") {
calibrateRC(); calibrateRC();
} else if (command == "ca") { } else if (command == "ca") {
@@ -174,6 +189,8 @@ void doCommand(String str, bool echo = false) {
print("Temperature: %.1f °C\n", temperatureRead()); print("Temperature: %.1f °C\n", temperatureRead());
print("Total RAM: %d KB\n", ESP.getHeapSize() / 1024); print("Total RAM: %d KB\n", ESP.getHeapSize() / 1024);
print("Free heap: %d KB\n", ESP.getFreeHeap() / 1024); print("Free heap: %d KB\n", ESP.getFreeHeap() / 1024);
print("PSRAM: %d KB\n", ESP.getPsramSize() / 1024);
print("Free PSRAM: %d KB\n", ESP.getFreePsram() / 1024);
print("Firmware: " __DATE__ " " __TIME__ "\n"); print("Firmware: " __DATE__ " " __TIME__ "\n");
// Print tasks table // Print tasks table
print("Num Task MinSt Prio Core CPU%%\n"); print("Num Task MinSt Prio Core CPU%%\n");
+1 -1
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@@ -6,7 +6,7 @@
#include "vector.h" #include "vector.h"
#include "quaternion.h" #include "quaternion.h"
#include "pid.h" #include "pid.h"
#include "lpf.h" #include "filter.h"
#include "util.h" #include "util.h"
#define PITCHRATE_P 0.05 #define PITCHRATE_P 0.05
+8 -1
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@@ -5,7 +5,7 @@
#include "quaternion.h" #include "quaternion.h"
#include "vector.h" #include "vector.h"
#include "lpf.h" #include "filter.h"
#include "util.h" #include "util.h"
Vector rates; // estimated angular rates, rad/s Vector rates; // estimated angular rates, rad/s
@@ -15,6 +15,12 @@ bool landed;
float accWeight = 0.003; float accWeight = 0.003;
float levelWeight = 0.0002; float levelWeight = 0.0002;
LowPassFilter<Vector> ratesFilter(0.2); // cutoff frequency ~ 40 Hz LowPassFilter<Vector> ratesFilter(0.2); // cutoff frequency ~ 40 Hz
NotchFilter<Vector> ratesNotch(382, 40);
void setupEstimate() {
print("Setup estimation\n");
ratesNotch.reset();
}
void estimate() { void estimate() {
applyGyro(); applyGyro();
@@ -25,6 +31,7 @@ void estimate() {
void applyGyro() { void applyGyro() {
// filter gyro to get angular rates // filter gyro to get angular rates
rates = ratesFilter.update(gyro); rates = ratesFilter.update(gyro);
rates = ratesNotch.update(rates);
// apply rates to attitude // apply rates to attitude
attitude = Quaternion::rotate(attitude, Quaternion::fromRotationVector(rates * dt)); attitude = Quaternion::rotate(attitude, Quaternion::fromRotationVector(rates * dt));
+98
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@@ -0,0 +1,98 @@
// Copyright (c) 2023 Oleg Kalachev <okalachev@gmail.com>
// Repository: https://github.com/okalachev/flix
// Low pass and notch filters
#pragma once
template <typename T> // Using template to make the filter usable for scalar and vector values
class LowPassFilter {
public:
float alpha; // smoothing constant, 1 means filter disabled
T output;
LowPassFilter(float alpha): alpha(alpha) {};
T update(const T input) {
if (!init) {
init = true;
return output = input;
}
return output += alpha * (input - output);
}
void setCutOffFrequency(float cutOffFreq, float dt) {
alpha = 1 - exp(-2 * PI * cutOffFreq * dt);
}
void reset() {
init = false;
}
private:
bool init = false;
};
template <typename T>
class NotchFilter {
public:
float frequency;
float bandwidth;
T output;
NotchFilter(float frequency, float bandwidth): frequency(frequency), bandwidth(bandwidth) {
reset();
};
T update(const T input) {
if (frequency <= 0 || bandwidth <= 0) return input;
if (!init) {
init = true;
x1 = x2 = input;
y1 = y2 = input;
return output = input;
}
output = b0 * input + b1 * x1 + b2 * x2 - a1 * y1 - a2 * y2;
x2 = x1;
x1 = input;
y2 = y1;
y1 = output;
return output;
}
void reset() {
const float dt = 0.001f;
float f = frequency;
float bw = bandwidth;
if (f < 0) f = 0;
if (bw < 1e-6f) bw = 1e-6f;
float q = f / bw;
if (q < 1e-3f) q = 1e-3f;
const float w0 = 2.0f * PI * f * dt;
const float c = cos(w0);
const float s = sin(w0);
const float alpha = s / (2.0f * q);
const float a0 = 1.0f + alpha;
const float invA0 = 1.0f / a0;
b0 = 1.0f * invA0;
b1 = -2.0f * c * invA0;
b2 = 1.0f * invA0;
a1 = -2.0f * c * invA0;
a2 = (1.0f - alpha) * invA0;
init = false;
}
private:
float b0, b1, b2, a1, a2;
T x1, x2, y1, y2;
bool init = false;
};
+3 -1
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@@ -26,6 +26,8 @@ void setup() {
setupWiFi(); setupWiFi();
setupIMU(); setupIMU();
setupRC(); setupRC();
setupEstimate();
setupLog();
setLED(false); setLED(false);
print("Initializing complete\n"); print("Initializing complete\n");
} }
@@ -40,6 +42,6 @@ void loop() {
handleInput(); handleInput();
processMavlink(); processMavlink();
readVoltage(); readVoltage();
logData(); loopLog();
syncParameters(); syncParameters();
} }
+1 -1
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@@ -6,7 +6,7 @@
#include <SPI.h> #include <SPI.h>
#include <FlixPeriph.h> #include <FlixPeriph.h>
#include "vector.h" #include "vector.h"
#include "lpf.h" #include "filter.h"
#include "util.h" #include "util.h"
MPU9250 imu(SPI); MPU9250 imu(SPI);
+236 -41
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@@ -1,77 +1,272 @@
// Copyright (c) 2023 Oleg Kalachev <okalachev@gmail.com> // Copyright (c) 2023 Oleg Kalachev <okalachev@gmail.com>
// Repository: https://github.com/okalachev/flix // Repository: https://github.com/okalachev/flix
// In-RAM logging // Logging subsystem
#include "vector.h" #include "vector.h"
#include "util.h" #include "util.h"
#define LOG_RATE 100 int logMemory = 0; // 0 - RAM, 1 - PSRAM, -1 - disabled
#define LOG_DURATION 10 float logUsage = 0.5; // fraction of free memory to use for log
#define LOG_SIZE LOG_DURATION * LOG_RATE
Vector attitudeEuler; struct LogValue {
Vector attitudeTargetEuler;
struct LogEntry {
const char *name; const char *name;
float *value; Value value;
float lastValue = NAN;
bool logged = true; // if false, use only for triggering log update
LogValue() : name(nullptr), value() {}; // empty value constructor
template <typename T>
LogValue(const char *name, T value, bool logged = true) : name(name), value(value), logged(logged) {};
}; };
LogEntry logEntries[] = { struct LogTopic {
{"t", &t}, LogValue values[10];
int length = 0; // number of logged values
float throttle; // max update rate, Hz
float lastUpdate = -INFINITY;
LogTopic(float throttle, LogValue v0, LogValue v1 = {}, LogValue v2 = {}, LogValue v3 = {}, LogValue v4 = {}, LogValue v5 = {}, LogValue v6 = {}, LogValue v7 = {}, LogValue v8 = {}, LogValue v9 = {}) :
throttle(throttle), values{v0, v1, v2, v3, v4, v5, v6, v7, v8, v9} {
// Count logged values
for (auto& v : values) {
if (v.name == nullptr) break;
if (v.logged) length++;
}
};
LogTopic(LogValue v0, LogValue v1 = {}, LogValue v2 = {}, LogValue v3 = {}, LogValue v4 = {}, LogValue v5 = {}, LogValue v6 = {}, LogValue v7 = {}, LogValue v8 = {}, LogValue v9 = {}) :
LogTopic(INFINITY, v0, v1, v2, v3, v4, v5, v6, v7, v8, v9) {};
};
LogTopic logTopics[] = {
// time
LogTopic({"t", &t}), // must be the first topic
LogTopic(1, {"loopRate", &loopRate}),
// imu
LogTopic(
{"gyro.x", &gyro.x},
{"gyro.y", &gyro.y},
{"gyro.z", &gyro.z}),
LogTopic(50,
{"acc.x", &acc.x},
{"acc.y", &acc.y},
{"acc.z", &acc.z}),
LogTopic(10,
{"gyroBias.x", &gyroBias.x},
{"gyroBias.y", &gyroBias.y},
{"gyroBias.z", &gyroBias.z}),
// estimation
LogTopic(50,
{"rates.x", &rates.x}, {"rates.x", &rates.x},
{"rates.y", &rates.y}, {"rates.y", &rates.y},
{"rates.z", &rates.z}, {"rates.z", &rates.z},
{"attitude.roll", []() { return attitude.getRoll(); }},
{"attitude.pitch", []() { return attitude.getPitch(); }},
{"attitude.yaw", []() { return attitude.getYaw(); }}),
// rc
LogTopic(10,
{"controlTime", &controlTime, false}, // trigger value
{"controlRoll", &controlRoll},
{"controlPitch", &controlPitch},
{"controlYaw", &controlYaw},
{"controlThrottle", &controlThrottle}),
// control
LogTopic({"armed", &armed}),
LogTopic({"mode", &mode}),
LogTopic(10,
{"ratesTarget.x", &ratesTarget.x}, {"ratesTarget.x", &ratesTarget.x},
{"ratesTarget.y", &ratesTarget.y}, {"ratesTarget.y", &ratesTarget.y},
{"ratesTarget.z", &ratesTarget.z}, {"ratesTarget.z", &ratesTarget.z},
{"attitude.x", &attitudeEuler.x}, {"attitudeTarget.roll", []() { return attitudeTarget.getRoll(); }},
{"attitude.y", &attitudeEuler.y}, {"attitudeTarget.pitch", []() { return attitudeTarget.getPitch(); }},
{"attitude.z", &attitudeEuler.z}, {"attitudeTarget.yaw", []() { return attitudeTarget.getYaw(); }},
{"attitudeTarget.x", &attitudeTargetEuler.x}, {"thrustTarget", &thrustTarget}),
{"attitudeTarget.y", &attitudeTargetEuler.y},
{"attitudeTarget.z", &attitudeTargetEuler.z}, // motors
{"thrustTarget", &thrustTarget} LogTopic(
{"motors[0]", &motors[0]},
{"motors[1]", &motors[1]},
{"motors[2]", &motors[2]},
{"motors[3]", &motors[3]}),
// misc
LogTopic(5,
{"voltage", &voltage},
{"temp", &temperatureRead},
{"imuTemp", []() { return imu.getTemp(); }}),
}; };
const int logColumns = sizeof(logEntries) / sizeof(logEntries[0]); void *logBuffer; // buffer for log data
float logBuffer[LOG_SIZE][logColumns]; size_t logCapacity;
size_t logCursor = 0;
size_t logLength = 0;
LogValue *logExposed = nullptr; // log values exposed to telemetry
void prepareLogData() { void setupLog() {
attitudeEuler = attitude.toEuler(); print("Setup log\n");
attitudeTargetEuler = attitudeTarget.toEuler();
free(logBuffer); // when reconfiguring
logBuffer = nullptr;
logCursor = 0;
logLength = 0;
if (logMemory == 0) {
logCapacity = ESP.getFreeHeap() * logUsage;
logBuffer = (uint8_t *)calloc(logCapacity, 1);
} else if (logMemory == 1) {
logCapacity = ESP.getFreePsram() * logUsage;
logBuffer = (uint8_t *)heap_caps_calloc(logCapacity, 1, MALLOC_CAP_SPIRAM | MALLOC_CAP_8BIT);
}
} }
void logData() { void loopLog() {
if (!armed) return; if (logBuffer == nullptr || !armed) return;
static int logPointer = 0;
static Rate period(LOG_RATE);
if (!period) return;
prepareLogData(); if (!logLength) resetLog(); // reset state on first log write
for (int i = 0; i < logColumns; i++) { static Rate sync(2);
logBuffer[logPointer][i] = *logEntries[i].value; if (sync) {
const uint8_t marker[] = {0x1A, 0x91, 0x4F, 0xF6, 0x7F};
writeLog(&marker, sizeof(marker)); // write sync marker
} }
logPointer++; for (uint8_t i = 0; i < sizeof(logTopics) / sizeof(logTopics[0]); i++) {
if (logPointer >= LOG_SIZE) { LogTopic& topic = logTopics[i];
logPointer = 0; if (t - topic.lastUpdate < 1 / topic.throttle) continue; // throttle topic
if (!isTopicUpdated(i)) continue; // skip if topic was't updated
topic.lastUpdate = t;
writeLog(&i, sizeof(i)); // write topic index
for (auto& value : topic.values) {
if (value.name == nullptr) break;
if (!value.logged) continue;
value.lastValue = value.value.get();
writeLog(&value.lastValue, sizeof(float)); // write value
} }
}
}
void resetLog() {
for (auto& topic : logTopics) {
topic.lastUpdate = -INFINITY;
for (auto& value : topic.values) {
value.lastValue = NAN;
}
}
logCursor = 0;
logLength = 0;
}
void writeLog(const void *data, size_t size) {
size_t first = min(size, logCapacity - logCursor);
size_t second = size - first;
memcpy(logBuffer + logCursor, data, first);
logCursor = (logCursor + first) % logCapacity;
if (second > 0) {
memcpy(logBuffer + logCursor, data + first, second);
logCursor = (logCursor + second) % logCapacity;
}
logLength = min(logLength + size, logCapacity);
}
void readLog(void *data, size_t position, size_t size) {
if (logLength == logCapacity) {
position = (logCursor + position) % logCapacity;
}
size_t first = min(size, logCapacity - position);
size_t second = size - first;
memcpy(data, logBuffer + position, first);
if (second > 0) {
memcpy(data + first, logBuffer, second);
}
}
bool isTopicUpdated(const uint8_t topic) {
LogTopic& logTopic = logTopics[topic];
bool updated = false;
for (auto& value : logTopic.values) {
if (value.name == nullptr) break;
float v = value.value.get();
if (!floatEquals(value.lastValue, v)) {
value.lastValue = v;
updated = true;
}
}
return updated;
}
void printLogInfo() {
if (logMemory == -1) return print("Log: disabled\n");
print("Memory: %s\n", logMemory == 0 ? "RAM" : "PSRAM");
print("Usage: %.f%%\n", logUsage * 100);
print("Capacity: %u bytes\n", (unsigned)logCapacity);
print("Used: %u bytes\n", (unsigned)logLength);
print("Estimated duration: %d seconds\n", estimateLogDuration());
}
int estimateLogDuration() {
float bandwidth = 0;
for (LogTopic& topic : logTopics) {
float rate = isinf(topic.throttle) ? loopRate : topic.throttle;
bandwidth += rate * topic.length * sizeof(float);
}
return logCapacity / bandwidth;
} }
void printLogHeader() { void printLogHeader() {
for (int i = 0; i < logColumns; i++) { int i = 0;
print("%s%s", logEntries[i].name, i < logColumns - 1 ? "," : "\n"); for (auto& topic : logTopics) {
print("Topic #%d (%g Hz):\n", i++, topic.throttle);
for (auto& value : topic.values) {
if (value.name == nullptr) break;
print(" %s%s\n", value.name, value.logged ?"" : " (not logged)");
}
} }
} }
void printLogData() { void printLogValues(const char *filter) {
for (int i = 0; i < LOG_SIZE; i++) { for (LogTopic& topic : logTopics) {
if (logBuffer[i][0] == 0) continue; // skip empty records for (LogValue& value : topic.values) {
for (int j = 0; j < logColumns; j++) { if (value.name == nullptr) break;
print("%g%s", logBuffer[i][j], j < logColumns - 1 ? "," : "\n"); if (strncasecmp(value.name, filter, strlen(filter))) continue;
print("%s = %g\n", value.name, value.value.get());
} }
} }
} }
void configLogThrottle(const char *name, float throttle) {
for (LogTopic& topic : logTopics) {
for (LogValue& value : topic.values) {
if (value.name == nullptr) break;
if (strcasecmp(value.name, name) != 0) continue;
topic.throttle = throttle;
print("Log throttle for %s set to %.1f Hz\n", name, throttle);
return;
}
}
print("Log value not found: %s\n", name);
}
void exposeLogValue(const char *name) {
for (int i = 0; i < sizeof(logTopics) / sizeof(logTopics[0]); i++) {
LogTopic& topic = logTopics[i];
for (LogValue& value : topic.values) {
if (value.name == nullptr) break;
if (strcasecmp(value.name, name) != 0) continue;
logExposed = &value;
print("Log value %s exposed\n", name);
return;
}
}
print("Log value not found: %s\n", name);
}
-34
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@@ -1,34 +0,0 @@
// Copyright (c) 2023 Oleg Kalachev <okalachev@gmail.com>
// Repository: https://github.com/okalachev/flix
// Low pass filter implementation
#pragma once
template <typename T> // Using template to make the filter usable for scalar and vector values
class LowPassFilter {
public:
float alpha; // smoothing constant, 1 means filter disabled
T output;
LowPassFilter(float alpha): alpha(alpha) {};
T update(const T input) {
if (!init) {
init = true;
return output = input;
}
return output += alpha * (input - output);
}
void setCutOffFrequency(float cutOffFreq, float dt) {
alpha = 1 - exp(-2 * PI * cutOffFreq * dt);
}
void reset() {
init = false;
}
private:
bool init = false;
};
+44 -6
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@@ -16,6 +16,7 @@ Rate telemetryAttitude(20);
Rate telemetryRC(10); Rate telemetryRC(10);
Rate telemetryMotors(10); Rate telemetryMotors(10);
Rate telemetryIMU(15); Rate telemetryIMU(15);
Rate telemetryTopic(10);
bool mavlinkConnected = false; bool mavlinkConnected = false;
String mavlinkPrintBuffer; String mavlinkPrintBuffer;
@@ -84,6 +85,12 @@ void sendMavlink() {
0, 0, 0, 0); 0, 0, 0, 0);
sendMessage(&msg); sendMessage(&msg);
} }
if (telemetryTopic && logExposed != nullptr) {
mavlink_msg_named_value_float_pack(mavlinkSysId, MAV_COMP_ID_AUTOPILOT1, &msg,
time, logExposed->name, logExposed->value.get());
sendMessage(&msg);
}
} }
void sendMessage(const void *msg) { void sendMessage(const void *msg) {
@@ -92,6 +99,26 @@ void sendMessage(const void *msg) {
sendWiFi(buf, len); sendWiFi(buf, len);
} }
static uint8_t mavlinkBatch[ESP_NOW_MAX_DATA_LEN_V2];
static int mavlinkBatchSize = 0;
void batchMessage(const void *msg) {
uint8_t buf[MAVLINK_MAX_PACKET_LEN];
int len = mavlink_msg_to_send_buffer(buf, (mavlink_message_t *)msg);
if (mavlinkBatchSize + len > sizeof(mavlinkBatch)) {
sendWiFi(mavlinkBatch, mavlinkBatchSize);
mavlinkBatchSize = 0;
}
memcpy(mavlinkBatch + mavlinkBatchSize, buf, len);
mavlinkBatchSize += len;
}
void flushBatchMessages() {
sendWiFi(mavlinkBatch, mavlinkBatchSize);
mavlinkBatchSize = 0;
}
void receiveMavlink() { void receiveMavlink() {
uint8_t buf[MAVLINK_MAX_PACKET_LEN]; uint8_t buf[MAVLINK_MAX_PACKET_LEN];
int len = receiveWiFi(buf, MAVLINK_MAX_PACKET_LEN); int len = receiveWiFi(buf, MAVLINK_MAX_PACKET_LEN);
@@ -225,18 +252,29 @@ void handleMavlink(const void *_msg) {
armed = motors[0] > 0 || motors[1] > 0 || motors[2] > 0 || motors[3] > 0; armed = motors[0] > 0 || motors[1] > 0 || motors[2] > 0 || motors[3] > 0;
} }
if (msg.msgid == MAVLINK_MSG_ID_LOG_REQUEST_LIST) {
const uint32_t qgcEpoch = 1262304000; // qgc accepts only timestamps after 2010-01-01
mavlink_message_t response;
mavlink_msg_log_entry_pack(mavlinkSysId, MAV_COMP_ID_AUTOPILOT1, &response,
0, 1, 0, qgcEpoch + t * 60, logLength); // put fake unique date to make qgc happy with saving logs
sendMessage(&response);
}
if (msg.msgid == MAVLINK_MSG_ID_LOG_REQUEST_DATA) { if (msg.msgid == MAVLINK_MSG_ID_LOG_REQUEST_DATA) {
mavlink_log_request_data_t m; mavlink_log_request_data_t m;
mavlink_msg_log_request_data_decode(&msg, &m); mavlink_msg_log_request_data_decode(&msg, &m);
if (m.target_system && m.target_system != mavlinkSysId) return; if (m.target_system && m.target_system != mavlinkSysId) return;
// Send all log records for (int i = 0; i < m.count; i += MAVLINK_MSG_LOG_DATA_FIELD_DATA_LEN) {
for (int i = 0; i < sizeof(logBuffer) / sizeof(logBuffer[0]); i++) { int chunkSize = min(MAVLINK_MSG_LOG_DATA_FIELD_DATA_LEN, (int)(m.count - i));
mavlink_message_t msg; mavlink_message_t response;
mavlink_msg_log_data_pack(mavlinkSysId, MAV_COMP_ID_AUTOPILOT1, &msg, 0, i, uint8_t data[MAVLINK_MSG_LOG_DATA_FIELD_DATA_LEN];
sizeof(logBuffer[0]), (uint8_t *)logBuffer[i]); readLog(data, m.ofs + i, chunkSize);
sendMessage(&msg); mavlink_msg_log_data_pack(mavlinkSysId, MAV_COMP_ID_AUTOPILOT1, &response,
m.id, m.ofs + i, chunkSize, data);
batchMessage(&response);
} }
flushBatchMessages();
} }
// Handle commands // Handle commands
+18
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@@ -74,6 +74,8 @@ Parameter parameters[] = {
{"EST_ACC_WEIGHT", &accWeight}, {"EST_ACC_WEIGHT", &accWeight},
{"EST_LVL_WEIGHT", &levelWeight}, {"EST_LVL_WEIGHT", &levelWeight},
{"EST_RATES_LPF_A", &ratesFilter.alpha}, {"EST_RATES_LPF_A", &ratesFilter.alpha},
{"EST_RATES_NF_F", &ratesNotch.frequency, setupEstimate},
{"EST_RATES_NF_BW", &ratesNotch.bandwidth, setupEstimate},
// motors // motors
{"MOT_PIN_FL", &motorPins[MOTOR_FRONT_LEFT], setupMotors}, {"MOT_PIN_FL", &motorPins[MOTOR_FRONT_LEFT], setupMotors},
{"MOT_PIN_FR", &motorPins[MOTOR_FRONT_RIGHT], setupMotors}, {"MOT_PIN_FR", &motorPins[MOTOR_FRONT_RIGHT], setupMotors},
@@ -121,6 +123,22 @@ Parameter parameters[] = {
{"MAV_RATE_RC", &telemetryRC.rate}, {"MAV_RATE_RC", &telemetryRC.rate},
{"MAV_RATE_MOT", &telemetryMotors.rate}, {"MAV_RATE_MOT", &telemetryMotors.rate},
{"MAV_RATE_IMU", &telemetryIMU.rate}, {"MAV_RATE_IMU", &telemetryIMU.rate},
{"MAV_RATE_TOPIC", &telemetryTopic.rate},
// log
{"LOG_MEMORY", &logMemory, setupLog},
{"LOG_USAGE", &logUsage, setupLog},
{"LOG_RATE_000", &logTopics[0].throttle},
{"LOG_RATE_001", &logTopics[1].throttle},
{"LOG_RATE_002", &logTopics[2].throttle},
{"LOG_RATE_003", &logTopics[3].throttle},
{"LOG_RATE_004", &logTopics[4].throttle},
{"LOG_RATE_005", &logTopics[5].throttle},
{"LOG_RATE_006", &logTopics[6].throttle},
{"LOG_RATE_007", &logTopics[7].throttle},
{"LOG_RATE_008", &logTopics[8].throttle},
{"LOG_RATE_009", &logTopics[9].throttle},
{"LOG_RATE_010", &logTopics[10].throttle},
{"LOG_RATE_011", &logTopics[11].throttle},
// power // power
{"PWR_VOLT_PIN", &voltagePin, setupPower}, {"PWR_VOLT_PIN", &voltagePin, setupPower},
{"PWR_VOLT_SCALE", &voltageScale}, {"PWR_VOLT_SCALE", &voltageScale},
+1 -1
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@@ -5,7 +5,7 @@
#pragma once #pragma once
#include "lpf.h" #include "filter.h"
class PID { class PID {
public: public:
+1 -1
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@@ -5,7 +5,7 @@
#include <soc/soc.h> #include <soc/soc.h>
#include <soc/rtc_cntl_reg.h> #include <soc/rtc_cntl_reg.h>
#include "lpf.h" #include "filter.h"
#include "util.h" #include "util.h"
float voltage = NAN; float voltage = NAN;
+43
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@@ -64,6 +64,49 @@ public:
} }
}; };
// Simple variant type for logging and parameters
struct Value {
enum { EMPTY, FLOAT, INT, BOOL, FLOAT_FN, INT_FN, BOOL_FN } type;
union {
void *pointer;
float *_float;
int *_int;
bool *_bool;
float (*floatFn)();
int (*intFn)();
bool (*boolFn)();
};
Value() : type(EMPTY), pointer(nullptr) {};
Value(float *pt) : type(FLOAT), _float(pt) {};
Value(int *pt) : type(INT), _int(pt) {};
Value(bool *pt) : type(BOOL), _bool(pt) {};
Value(float (*fn)()) : type(FLOAT_FN), floatFn(fn) {};
Value(int (*fn)()) : type(INT_FN), intFn(fn) {};
Value(bool (*fn)()) : type(BOOL_FN), boolFn(fn) {};
float get() const {
switch (type) {
case FLOAT: return *_float;
case INT: return *_int;
case BOOL: return *_bool ? 1 : 0;
case FLOAT_FN: return floatFn();
case INT_FN: return intFn();
case BOOL_FN: return boolFn() ? 1 : 0;
default: return NAN;
}
};
void set(float value) const {
switch (type) {
case FLOAT: *_float = value; break;
case INT: *_int = value; break;
case BOOL: *_bool = (value != 0); break;
default: break;
}
};
};
// Rate limiter // Rate limiter
class Rate { class Rate {
public: public:
+1
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@@ -156,6 +156,7 @@ HardwareSerial Serial, Serial1, Serial2;
class EspClass { class EspClass {
public: public:
void restart() { Serial.println("Ignore reboot in simulation"); } void restart() { Serial.println("Ignore reboot in simulation"); }
uint32_t getFreeHeap() { return 300 * 1024; } // assume 300 KB free heap
} ESP; } ESP;
unsigned long __delayTime = 0; unsigned long __delayTime = 0;
+11 -2
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@@ -9,7 +9,7 @@
#include "quaternion.h" #include "quaternion.h"
#include "Arduino.h" #include "Arduino.h"
#include "wifi.h" #include "wifi.h"
#include "lpf.h" #include "filter.h"
extern float t, dt; extern float t, dt;
extern float controlRoll, controlPitch, controlYaw, controlThrottle, controlMode; extern float controlRoll, controlPitch, controlYaw, controlThrottle, controlMode;
@@ -48,8 +48,17 @@ void normalizeRC();
void calibrateRC(); void calibrateRC();
void calibrateRCChannel(int*, uint16_t[16], uint16_t[16], const char*); void calibrateRCChannel(int*, uint16_t[16], uint16_t[16], const char*);
void printRCCalibration(); void printRCCalibration();
void loopLog();
void resetLog();
void writeLog(const void *data, size_t size);
void readLog(void *data, size_t position, size_t size);
bool isTopicUpdated(const uint8_t topic);
void printLogInfo();
int estimateLogDuration();
void printLogHeader(); void printLogHeader();
void printLogData(); void printLogValues(const char *filter);
void configLogThrottle(const char *name, float throttle);
void exposeLogValue(const char *name);
void processMavlink(); void processMavlink();
void sendMavlink(); void sendMavlink();
void sendMessage(const void *msg); void sendMessage(const void *msg);
+2 -1
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@@ -23,7 +23,7 @@
#include "estimate.ino" #include "estimate.ino"
#include "safety.ino" #include "safety.ino"
#include "log.ino" #include "log.ino"
#include "lpf.h" #include "filter.h"
#include "mavlink.ino" #include "mavlink.ino"
#include "motors.ino" #include "motors.ino"
#include "parameters.ino" #include "parameters.ino"
@@ -55,6 +55,7 @@ public:
initNode(); initNode();
Serial.begin(0); Serial.begin(0);
setupParameters(); setupParameters();
setupLog();
gzmsg << "Flix plugin loaded" << endl; gzmsg << "Flix plugin loaded" << endl;
} }
+10 -1
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@@ -9,6 +9,7 @@ Usage:
import csv import csv
import json import json
import docopt import docopt
import math
from mcap.writer import Writer from mcap.writer import Writer
args = docopt.docopt(__doc__) args = docopt.docopt(__doc__)
@@ -39,7 +40,15 @@ channel_id = writer.register_channel(
) )
for row in csv_reader: for row in csv_reader:
data = {key: float(value) for key, value in zip(header, row)} if row[0] == '': continue
data = {}
for key, value in zip(header, row):
if value == '' or math.isnan(float(value)):
data[key] = None
else:
data[key] = float(value)
data = {key: float(value) if value != '' else None for key, value in zip(header, row)}
timestamp = round(float(row[0]) * 1e9) timestamp = round(float(row[0]) * 1e9)
writer.add_message(channel_id=channel_id, log_time=timestamp, data=json.dumps(data).encode(), publish_time=timestamp,) writer.add_message(channel_id=channel_id, log_time=timestamp, data=json.dumps(data).encode(), publish_time=timestamp,)
+76
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@@ -0,0 +1,76 @@
#!/usr/bin/env python3
"""Convert flight from Flix format to CSV
Usage:
log_to_csv.py <input_file>
"""
import os
from pyflix import Flix
import docopt
import struct
import csv
DIR = os.path.dirname(os.path.realpath(__file__))
HEADER_FILE = os.path.join(DIR, 'log/log_header.txt')
# Read log header
try:
# read from file
header = open(HEADER_FILE, 'r').read()
except FileNotFoundError:
flix = Flix()
header = flix.cli('log header') # receive the log schema
open(HEADER_FILE, 'w').write(header) # save to file
# Parse log header
topics = []
for line in header.splitlines():
if not line.startswith(' '):
topics.append([])
elif 'not logged' not in line:
topics[-1].append(line.strip())
# Read log file
args = docopt.docopt(__doc__)
input_file = args['<input_file>']
outfile_file = input_file + '.csv'
data = open(input_file, 'rb').read()
# Search for sync marker
SYNC_MARKER = bytes.fromhex('1A 91 4F F6 7F')
sync_offset = data.find(SYNC_MARKER)
if sync_offset == -1:
raise ValueError('Sync marker not found in log file')
data = data[sync_offset + len(SYNC_MARKER):]
data = data.replace(SYNC_MARKER, b'') # remove all other sync markers
header_row = [f'{value}' for topic in topics for value in topic]
rows = []
offset = 0
while offset < len(data):
try:
topic = struct.unpack_from('B', data, offset)[0]
offset += 1
if topic >= len(topics):
raise ValueError(f'Invalid topic {topic} at offset {offset}')
if topic == 0 or not rows:
rows.append({})
for name in topics[topic]:
value = struct.unpack_from('<f', data, offset)[0]
offset += 4
rows[-1][name] = value
except struct.error as e:
break
# Write CSV file
with open(outfile_file, 'w', newline='') as f:
writer = csv.DictWriter(f, fieldnames=header_row, extrasaction='ignore')
writer.writeheader()
rows = filter(lambda row: float(row.get('t', 0)), rows)
writer.writerows(rows)