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A Computational Imaging Target Specific Detectivity Metric

机译:一种计算成像目标的特定检测率指标

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Due to the large quantity of low-cost, high-speed computational processing available today, computational imaging (CI) systems are expected to have a major role for next generation multifunctional cameras. The purpose of this work is to quantify the performance of theses CI systems in a standardized manner. Due to the diversity of CI system designs that are available today or proposed in the near future, significant challenges in modeling and calculating a standardized detection signal-to-noise ratio (SNR) to measure the performance of these systems. In this paper, we developed a path forward for a standardized detectivity metric for CI systems. The detectivity metric is designed to evaluate the performance of a CI system searching for a specific known target or signal of interest, and is defined as the optimal linear matched filter SNR, similar to the Hotelling SNR, calculated in computational space with special considerations for standardization. Therefore, the detectivity metric is designed to be flexible, in order to handle various types of CI systems and specific targets, while keeping the complexity and assumptions of the systems to a minimum.
机译:由于当今可用的大量低成本,高速计算处理,计算成像(CI)系统有望在下一代多功能相机中发挥重要作用。这项工作的目的是以标准化的方式量化这些CI系统的性能。由于当今可用的或即将在不久的将来提出的CI系统设计的多样性,在建模和计算标准化的检测信噪比(SNR)以测量这些系统的性能方面面临着重大挑战。在本文中,我们为CI系统的标准化探测性度量开发了一条道路。探测性度量旨在评估CI系统搜索特定的已知目标或感兴趣信号的性能,并定义为最佳线性匹配滤波器SNR,类似于Hotelling SNR,是在计算空间中计算的,并特别考虑了标准化问题。因此,探测性度量被设计为灵活的,以便处理各种类型的CI系统和特定目标,同时将系统的复杂性和假设保持在最低限度。

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