具有片上学习能力的嵌入式概率神经网络

Jen-Huo Wang, K. Tang, Hsin Chen
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引用次数: 4

摘要

在生物医学应用中,能够可靠识别生物医学信号的嵌入式系统对于融合便携式或可植入微系统的传感数据非常重要。本文提出了一种概率神经网络的数字VLSI实现,称为连续受限玻尔兹曼机(CRBM),它能够对电子鼻的感官数据进行聚类或分类。CRBM的学习算法也在同一芯片上实现,使CRBM系统能够自动优化其参数,或通过在线学习来补偿感官漂移。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An embedded probabilistic neural network with on-chip learning capability
An embedded system capable of recognizing biomedical signals reliably is important for fusing sensory data of portable or implantable microsystems in biomedical applications. This paper presents the digital VLSI implementation of the probabilistic neural network, called the Continuous Restricted Boltzmann Machine (CRBM), which is able to cluster or to classify sensory data of an electronic nose. The learning algorithm of the CRBM is also realized on the same chip, such that the CRBM system is able to optimize its parameters automatically, or to compensate for sensory drifts by on-line learning.
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