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Using Spatial Pooler of Hierarchical Temporal Memory to classify noisy videos with predefined complexity

机译:使用分层时间记忆的空间池来对具有预定义复杂度的嘈杂视频进行分类

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摘要

This paper examines the performance of a Spatial Pooler (SP) of a Hierarchical Temporal Memory (HTM) in the task of noisy object recognition. To address this challenge, a dedicated custom-designed system based on the SP, histogram calculation module and SVM classifier was implemented. In addition to implementing their own version of HTM, the authors also designed a profiler which is capable of tracing all of the key parameters of the system. This was necessary, since an analysis and monitoring of the system performance turned out to be extremely difficult using conventional testing and debugging tools.
机译:本文研究了噪声对象识别任务中分层时间记忆(HTM)的空间池(SP)的性能。为了应对这一挑战,基于SP,直方图计算模块和SVM分类器的专用定制系统得以实施。除了实现自己的HTM版本外,作者还设计了一个探查器,该探查器能够跟踪系统的所有关键参数。这是必要的,因为使用传统的测试和调试工具对系统性能进行分析和监视非常困难。

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