Unlike AGVs that follow fixed magnetic strips or QR codes, AMRs navigate, avoid obstacles, and plan paths autonomously in dynamic environments. This demands:
2.1 Camera Input: 4× GMSL2 for Mobile Platforms
EA250Pro supports 4× USB 3.0, 4× GMSL2, 4× Gigabit Ethernet, or 4× MIPI CSI-2. For AMRs, GMSL2 is optimal:
Aetina’s AIE-VN34/44 uses a similar 4× GMSL2 configuration for AMR and industrial automation.
2.2 Computing Power: 157 TOPS for SLAM + Avoidance + Detection
Jetson Orin NX 16GB delivers up to 157 TOPS INT8, with an 8-core Cortex-A78AE CPU, 1024 CUDA cores, and 32 fourth-gen Tensor Cores. It can run simultaneously:
Axiomtek’s AIE510-ONX offers 100 TOPS on the same platform; EA250Pro provides higher headroom for more complex models.
2.3 Chassis Communication: CAN FD + RS485
Onboard: 1× isolated CAN FD + 1× isolated RS485/RS232. Via Y-series IO board: up to 2× CAN FD, 4× RS485, 16× DI, 8× DO, 2× GPI, 2× GPO.
Typical AMR use:
For 12–30 DOF robots, multi-CAN or EtherCAT is mainstream; 2× CAN FD is sufficient for most AMR platforms.
2.4 Wide Temperature and Vibration Resistance
One EA250Pro serves as the AMR’s “brain + nerve center.”
4.Selection Recommendations|
AMR Scenario |
Recommended Model |
Reason |
|
Simple (single-channel SLAM + avoidance) |
EA230Pro (67 TOPS) |
Sufficient, lower cost |
|
Multi-camera surround view + complex avoidance + AI detection |
EA250Pro (157 TOPS) |
4× GMSL2 + 157 TOPS for multi-task parallelism |
Camera selection:
IO recommendation:
Q1: Does EA250Pro need an extra MCU?
A: For most AMRs, no — CAN FD latency is in the microsecond range. For hard real-time control, an external MCU such as STM32 can be added.
Q2: EA250Pro vs. EA230Pro for AMR?
A: Simple AMR → EA230Pro (67 TOPS). Multi-camera + complex avoidance + AI detection → EA250Pro (157 TOPS).
Q3: Does it support ROS/ROS2?
A: Yes. Pre-installed Ubuntu 22.04 + JetPack 6.2.2, compatible with ROS/ROS2 and NVIDIA Isaac ROS.
Q4: Do GMSL2 cameras support multi-channel synchronization?
A: Yes. GMSL2 hardware sync enables microsecond-level timestamp alignment — critical for SLAM and stereo vision.
Q5: How is it powered on an AMR?
A: 12–24 V wide-voltage DC input, directly from the AMR battery. A voltage regulator is recommended for battery fluctuations.