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Image Based HTM Word Recognizer for Language Processing

机译:基于图像的HTM文字识别器用于语言处理

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The hardware implementation of neuro-inspired machine learning algorithms for near sensor processing on edge devices is an open problem. In this work, we propose a solution to written word recognition problem related to sequence learning tasks with images. Applying a theoretical framework of neocortex functionality as a sequence learning algorithm on a hardware implementation of Hierarchical Temporal Memory (HTM), we test the potential use of HTM in near-sensor on-chip natural language processing for text/symbol recognition.
机译:在边缘设备上进行近传感器处理的神经启发式机器学习算法的硬件实现是一个未解决的问题。在这项工作中,我们提出了一种解决与图像序列学习任务相关的书面单词识别问题的方法。在层级时间记忆(HTM)的硬件实现上将新皮质功能的理论框架用作序列学习算法,我们测试了HTM在近传感器片上自然语言处理中对文本/符号识别的潜在用途。

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