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Focal-plane processing architectures for real-time hyperspectral image processing

机译:用于实时高光谱图像处理的焦平面处理架构

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Real-time image processing requires high computational and I/O throughputs obtained by use of optoelectronic system solutions. A novel architecture that uses focal-plane optoelectronic-area I/O with a fine-grain, low-memory, single-instruction-multiple-data (SIMD) processor array is presented as an efficient computational solution for real-time hyperspectral image processing. The architecture is evaluated by use of realistic workloads to determine data throughputs, processing demands, and storage requirements. We show that traditional store-and-process system performance is inadequate for this application domain, whereas the focal-plane SIMD architecture is capable of supporting real-time performances with sustained operation throughputs of 500-1500 gigaoperations/s. The focal-plane architecture exploits the direct coupling between sensor and parallel-processor arrays to alleviate databandwidth requirements, allowing computation to be performed in a stream-parallel computation model, while data arrive from the sensors.
机译:实时图像处理需要通过使用光电系统解决方案来获得较高的计算和I / O吞吐量。提出了一种新颖的架构,该架构使用焦平面光电区域I / O和细粒度,低内存,单指令多数据(SIMD)处理器阵列,作为实时高光谱图像处理的高效计算解决方案。通过使用实际工作负载来评估该体系结构,以确定数据吞吐量,处理需求和存储需求。我们表明,传统的存储和处理系统性能不足以满足该应用领域的需求,而焦平面SIMD架构能够以500-1500 gigaoperations / s的持续操作吞吐量支持实时性能。焦平面架构利用传感器和并行处理器阵列之间的直接耦合来减轻数据带宽要求,从而允许在流并行计算模型中执行计算,同时数据从传感器到达。

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