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Comparison of Three Smart Camera Architectures for Real-time Machine Vision System

机译:实时机器视觉系统的三种智能相机架构比较

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摘要

This paper presents a machine vision system for real-time computation of distance and angle of a camera from a set of reference points located on a target board. Three different smart camera architectures were explored to compare performance parameters such as power consumption, frame speed and latency.  Architecture 1 consists of hardware machine vision modules modeled at Register Transfer (RT) level and a soft-core processor on a single FPGA chip. Architecture 2 is commercially available software based smart camera, Matrox Iris GT. Architecture 3 is a two-chip solution composed of hardware machine vision modules on FPGA and an external micro-controller. Results from a performance comparison show that Architecture 2 has higher latency and consumes much more power than Architecture 1 and 3. However, Architecture 2 benefits from an easy programming model. Smart camera system with FPGA and external microcontroller has lower latency and consumes less power as compared to single FPGA chip having hardware modules and soft-core processor.
机译:本文提出了一种机器视觉系统,用于根据目标板上的一组参考点实时计算摄像机的距离和角度。探索了三种不同的智能相机架构,以比较性能参数,例如功耗,帧速和延迟。架构1由在寄存器传输(RT)级别建模的硬件机器视觉模块和单个FPGA芯片上的软核处理器组成。 Architecture 2是基于商业软件的智能相机Matrox Iris GT。架构3是一个两芯片解决方案,由FPGA上的硬件机器视觉模块和一个外部微控制器组成。性能比较的结果表明,与架构1和3相比,架构2具有更高的延迟,并且功耗更高。但是,架构2受益于简单的编程模型。与具有硬件模块和软核处理器的单个FPGA芯片相比,具有FPGA和外部微控制器的智能相机系统具有更低的延迟和更低的功耗。

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