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Focal plane array folding for efficient information extraction and tracking

机译:焦平面阵列折叠可有效提取和跟踪信息

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We develop a novel compressive sensing based approach for detecting point sources in images and tracking of moving point sources across temporal images. One application is the muzzle flash detection and tracking problem. We pursue the concept of lower-dimension signal representation from structured sparse matrices, which is in contrast to the use of random sparse matrices described in common compressive sensing algorithms. The primary motivation is that an approach using structured sparse matrices can lead to efficient hardware implementations and a scheme that we term folding in the focal plane array. This method “bins” pixels modulo a pair of specified numbers across the pixel plane in both the horizontal and vertical directions. Under this paradigm, a significant reduction in the amount of pixel samples is required, which enable high speed target acquisition and tracking while reducing the number of A/D's. Folding is used to acquire a pair of significantly smaller images, in which two different folded images provide the necessary redundancy to uniquely extract location information. We detect the centroid of point sources in each of the two folded images and use the Chinese remainder theorem (CRT) to determine the location of the point sources in the original image. In our work, we successfully demonstrated the correctness of this algorithm through simulation and showed the algorithm is capable of detecting and tracking multiple muzzle flashes in multiple temporal frames. We present both initial results and improvements to the algorithm's robustness, based on robust Chinese remainder theorem (rCRT) in the presence of noise.
机译:我们开发了一种新颖的基于压缩感知的方法,用于检测图像中的点源并跟踪时间图像中的移动点源。一种应用是枪口闪光检测和跟踪问题。我们从结构化的稀疏矩阵中追求低维信号表示的概念,这与常见压缩感知算法中描述的随机稀疏矩阵的使用形成了对比。主要动机是使用结构化稀疏矩阵的方法可以导致高效的硬件实现,以及我们称之为在焦平面阵列中折叠的方案。该方法在水平和垂直方向上跨像素平面以模数形式对一对指定像素进行“装箱”。在这种范式下,需要大大减少像素样本的数量,这可以在减少A / D数量的同时实现高速目标采集和跟踪。折叠用于获取一对明显较小的图像,其中两个不同的折叠图像提供必要的冗余以唯一地提取位置信息。我们在两个折叠图像的每一个中检测点源的质心,并使用中文余数定理(CRT)确定点源在原始图像中的位置。在我们的工作中,我们通过仿真成功地证明了该算法的正确性,并表明该算法能够检测和跟踪多个时间帧中的多个枪口闪光。我们基于存在噪声的鲁棒中文余量定理(rCRT),给出了初步结果和对算法鲁棒性的改进。

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