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一种用于实时运动处理的并行硬件上的皮质架构。

A cortical architecture on parallel hardware for motion processing in real time.

作者信息

Pauwels Karl, Krüger Norbert, Lappe Markus, Wörgötter Florentin, Van Hulle Marc M

机构信息

Laboratorium voor Neuro- en Psychofysiologie, K.U. Leuven, Leuven, Belgium.

出版信息

J Vis. 2010 Aug 18;10(10):18. doi: 10.1167/10.10.18.

Abstract

Walking through a crowd or driving on a busy street requires monitoring your own movement and that of others. The segmentation of these other, independently moving, objects is one of the most challenging tasks in vision as it requires fast and accurate computations for the disentangling of independent motion from egomotion, often in cluttered scenes. This is accomplished in our brain by the dorsal visual stream relying on heavy parallel-hierarchical processing across many areas. This study is the first to utilize the potential of such design in an artificial vision system. We emulate large parts of the dorsal stream in an abstract way and implement an architecture with six interdependent feature extraction stages (e.g., edges, stereo, optical flow, etc.). The computationally highly demanding combination of these features is used to reliably extract moving objects in real time. This way-utilizing the advantages of parallel-hierarchical design-we arrive at a novel and powerful artificial vision system that approaches richness, speed, and accuracy of visual processing in biological systems.

摘要

在人群中行走或在繁忙的街道上开车需要监控自己和他人的动作。对这些独立移动的其他物体进行分割是视觉领域最具挑战性的任务之一,因为它需要快速且准确的计算,以便在通常杂乱的场景中从自身运动中分离出独立运动。在我们的大脑中,这是通过背侧视觉通路完成的,该通路依赖于多个区域的大量并行分层处理。本研究首次在人工视觉系统中利用这种设计的潜力。我们以一种抽象的方式模拟背侧通路的大部分,并实现了一个具有六个相互依赖的特征提取阶段(例如边缘、立体视觉、光流等)的架构。这些特征的高计算需求组合被用于实时可靠地提取移动物体。通过这种方式——利用并行分层设计的优势——我们得到了一个新颖且强大的人工视觉系统,该系统在视觉处理的丰富性、速度和准确性方面接近生物系统。

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