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Algorithms for speedy visual recognition and classification of patterns formed on rectangular imaging sensors

机译:快速视觉识别和分类在矩形成像传感器上形成的图案的算法

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摘要

We present a survey of conceptual and technological challenges facing the computer vision practitioners. The real-time tasks of image interpretation, pattern clustering, recognition and classification necessitate quick analysis of registered patterns. Current algorithms and technological approaches are slow and rigid. Within the evolutionary context, having performed the simulation of human visual cortex, we present a novel, biologically inspired solution to these problems, with aim to accelerate processing. Our massively parallel algorithms are applicable to patterns recorded on rectangular imaging arrays of arbitrary sizes and resolutions. The systems we propose are capable of continuous learning, as well as of selective forgetting less important facts, and so to maintain their adaptation to an environment evolving sufficiently slowly. A case study of visual signature recognition illustrates the presented ideas and concepts.
机译:我们对计算机视觉从业者面临的概念和技术挑战进行了调查。图像解释,模式聚类,识别和分类的实时任务需要对已注册模式进行快速分析。当前的算法和技术方法缓慢且僵化。在进化的背景下,我们已经完成了人类视觉皮层的模拟,我们提出了一种新颖的,受生物学启发的解决方案来解决这些问题,旨在加快处理速度。我们的大规模并行算法适用于记录在任意大小和分辨率的矩形成像阵列上的图案。我们提出的系统能够持续学习,并且能够选择性地遗忘不太重要的事实,从而保持它们对缓慢发展的环境的适应性。视觉签名识别的案例研究说明了所提出的思想和概念。

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