A Cognitive Architecture for Object Recognition in Video

J. Príncipe
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Abstract

This talk describes our efforts to abstract from the animal visual system the computational principles to explain images in video. We develop a hierarchical, distributed architecture of dynamical systems that self-organizes to explain the input imagery using an empirical Bayes criterion with sparseness constraints and dual state estimation. The interpretation of the images is mediated through causes that flow top down and change the priors for the bottom up processing. We will present preliminary results in several data sets.
视频中对象识别的认知体系结构
这个演讲描述了我们从动物视觉系统中抽象出计算原理来解释视频图像的努力。我们开发了一种自组织的动态系统的分层分布式架构,使用具有稀疏约束和对偶状态估计的经验贝叶斯准则来解释输入图像。对图像的解释是通过自上而下流动的原因来调解的,并改变了自下而上处理的先验。我们将介绍几个数据集的初步结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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