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ApexDrive

Robotics Actuator Control Engine, Inverter SDK & Simulation Suite
Field-Oriented Control (FOC) • Linux SocketCAN Transport • ros2_control System Interface • STM32G4 Embedded Target


1. Architecture Overview

ApexDrive is organized into four decoupled architectural layers to bridge high-level robotics orchestration with bare-metal inverter electronics:

+-----------------------------------------------------------------------------+
| 1. ROBOTICS ORCHESTRATION & HIGH-LEVEL APIS                                 |
|    - ROS 2 ros2_control SystemInterface Plugin (C++)                        |
|    - Python Client SDK (import apexdrive)                                   |
|    - Developer Diagnostic CLI (apexdrive scan / monitor / bench)            |
+--------------------------------------┬--------------------------------------+
                                       | 1 kHz CAN-FD (CAN-FD v2 Protocol)
+--------------------------------------v--------------------------------------+
| 2. HOST TRANSPORT & PROTOCOL LAYER                                          |
|    - Linux SocketCAN Driver (socket(PF_CAN, SOCK_RAW, CAN_RAW))             |
|    - Symmetric Q15 Fixed-Point Frame Serialization & CRC16 Validation       |
|    - Cross-Platform Deterministic Simulation Testbench (macOS / Linux)      |
+--------------------------------------┬--------------------------------------+
                                       | Bus Communication
+--------------------------------------v--------------------------------------+
| 3. CORE FOC VECTOR MATHEMATICS & SAFETY SUPERVISOR                          |
|    - Forward/Inverse Clarke & Park Transformations                          |
|    - Space Vector Modulation (SVPWM) with Min/Max Common-Mode Injection     |
|    - Vector-Space Voltage Limiter with Anti-Windup Back-Calculation         |
|    - Cross-Coupling Voltage Decoupling Feedforward                          |
|    - 256-Point Linear-Interpolated Anti-Cogging Harmonic Map                |
|    - Sliding Mode Observer (SMO) with Tracking Phase-Locked Loop (PLL)      |
|    - Continuous Salient PMSM Differential Dynamics Engine                   |
+--------------------------------------┬--------------------------------------+
                                       | Hardware Registers / DMA
+--------------------------------------v--------------------------------------+
| 4. BARE-METAL EMBEDDED FIRMWARE (firmware/stm32g4)                          |
|    - 25 kHz Injected ADC Conversion ISR (Phase Shunt Sampling)              |
|    - TIM1 Advanced Timer Center-Aligned Complementary PWM (120ns Dead-Time) |
|    - Hardware Safe Torque Off (STO) via TIM1 Break Input 1 (BKIN)           |
|    - SPI 14-Bit Magnetic Absolute Angle Encoder Driver (AS5047P / MA730)    |
+-----------------------------------------------------------------------------+

2. Core Capabilities

Unified FOC Core (apexdrive::FocEngine)

  • Zero dynamic memory allocation in control execution paths.
  • Decoupled cross-coupling feedforward: $$V_d^* = V_{d,\text{PI}} - \omega_e L_q I_q$$ $$V_q^* = V_{q,\text{PI}} + \omega_e (L_d I_d + \psi_f)$$
  • Vector-space voltage limiter ensuring $\sqrt{V_d^2 + V_q^2} \le V_{\max} = \frac{V_{\text{bus}}}{\sqrt{3}} \cdot 0.98$ with back-calculation anti-windup integration.
  • Shared single implementation across host simulation, hardware-in-the-loop (HIL) testing, and STM32 embedded firmware.

Multi-Tier Safety Architecture

  • Hardware STO: Direct analog comparator break input (TIM1_BDTR.BKE) tri-stating inverter gate drivers in $< 40\text{ ns}$ independently of software execution.
  • Software Safety Supervisor: Continuous verification of peak phase overcurrent, DC bus overvoltage, under-voltage lockout (UVLO), stator/inverter thermal limits, and $I^2t$ continuous energy accumulation.
  • Command Watchdog: Monotonic 25 ms heartbeat monitor requiring valid, CRC-verified frames to maintain torque generation.

Compliant Motion Control

  • Programmable virtual spring-damper impedance control law: $$\tau = K_p(\theta_d - \theta) + K_d(\dot{\theta}d - \dot{\theta}) + \tau{ff}$$
  • Designed for multi-axis synchronization in legged and humanoid robotics.

3. Building from Source

Prerequisites

  • C++20 compliant compiler (GCC 11+, Clang 14+, or Apple Clang)
  • CMake 3.20+
  • Linux with libsocketcan-dev (optional, required for physical CAN-FD bus communication)

Build Commands

# Clone the repository
git clone https://github.com/Himan-D/apexdrive.git
cd apexdrive

# Configure and compile
mkdir build && cd build
cmake -DCMAKE_BUILD_TYPE=Release ..
make -j$(nproc)

# Run test suites
./test_suite
./control_scenarios_test

4. CLI Reference

# Scan CAN bus for physical joint actuators (falls back to simulation mode if no CAN hardware is present)
./apexdrive scan --interface can0

# Synthesize current loop PI gains and anti-cogging feedforward map
./apexdrive tune --id 0x14

# Launch real-time terminal telemetry monitor
./apexdrive monitor --id 0x14

# Output forensic circular black-box buffer
./apexdrive dump-blackbox

# Execute host-side 1,000,000-cycle timing benchmark
./apexdrive bench

5. ROS 2 Integration (ros2_control)

The apexdrive_hardware package provides a standardized hardware_interface::SystemInterface plugin for ROS 2 Humble, Iron, and Jazzy.

URDF Configuration

<ros2_control name="ApexDriveSystem" type="system">
  <hardware>
    <plugin>apexdrive_hardware/ApexDriveHardware</plugin>
    <param name="can_interface">can0</param>
  </hardware>
  <joint name="joint_1">
    <param name="node_id">16</param>
    <command_interface name="position"/>
    <command_interface name="effort"/>
    <state_interface name="position"/>
    <state_interface name="velocity"/>
    <state_interface name="effort"/>
  </joint>
</ros2_control>

6. Python Client SDK

Install from PyPI:

pip install apexdrive

Usage Example:

import apexdrive

# Initialize actuator connection
joint = apexdrive.Actuator(interface="can0", node_id=0x14)
joint.arm()

# Stream 1 kHz compliant impedance commands
# pos_rad: target angle, kp: stiffness (Nm/rad), kd: damping (Nm*s/rad), tau_ff: feedforward (Nm)
joint.set_impedance(pos_rad=1.57, vel_rad_s=0.0, kp=45.0, kd=2.5, tau_ff=1.2)

# Read telemetry snapshot
state = joint.get_state()
print(f"Position: {state.position_rad:.4f} rad | Torque: {state.torque_nm:.2f} Nm | Bus: {state.v_bus_v:.1f} V")

7. License

Distributed under the Apache 2.0 License. See LICENSE for details.

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