A minimum size AI depth learning board based on the NVIDIA TX2 module. The interface board is connected to the TX2 core module using a connector. The compact design and small form factor bring deep learning to more and more applications. This interface board is compatible with the TX1 and TX2 core modules.
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Can be equipped with 4G communication module
Can be equipped with wife and bluetooth modules
Support 4k × 2k 30Hz encoding (HEVC), 4k × 2k 60Hz decoding (10-bit)
Support linux operating system
Support TCP, RTSP network protocol
Board configuration
NVIDIA Pascal GUP, 256 NVIDIA CUDA cores
Dual-core Denver 2, quad-core ARM Cortex-A57 processor
8G Bytes 128bit LPDDR4
32G Bytes eMMC
Peripheral interface
1 way Micro HDMI output
2-way USB 3.0 interface (Type-A)
1-way Micro USB 2.0 interface
1 way 10/100/1000MBPS Ethernet interface
1 channel mini PCIe interface, can be connected to 4G communication module
1 channel UART debug serial port
1 way JTAG debug interface
Physical characteristics
Size: with core plate 87mm*53mm*22mm, with core plate + fan 85mm*50mm*40mm
Weight: 40g, with fan 125g, TX2 core board 90g
Environmental adaptability
Working temperature: -20 ° C ~ +60 ° C
Working humidity: 10% to 80%
Electrical characteristics
DC power supply, voltage +12V@3A
Power consumption: ≤20W
Embedded industrial machine vision system
Embedded medical image recognition system
Analysis of traffic statistics, face recognition and abnormal behavior in shopping malls
Customs intelligent inspection system: HD face capture
Intelligent parking management system: intelligent image recognition, accurate license plate recognition
Urban Road Monitoring System: Road illegal driving behavior
ADAS system: lane departure, obstacle detection, vehicle detection, and subsequent development of panoramic stereo imagery surveillance system
Forest fire prevention: dynamic monitoring, fire warning