Word2vec Word Similarities on IBM's TrueNorth Neurosynaptic System

Daniel R. Mendat, A. Cassidy, Guido Zarrella, A. Andreou
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引用次数: 5

Abstract

Word2vec, like other ways of creating word embed-dings from a text corpus, has shown that interesting mathematical properties exist between the resulting word vectors. Word similarities as well as relationships can be discovered by determining which words are nearby in vector space and performing simple vector operations. In this work, IBM's TrueNorth Neurosynaptic System was used to implement massively-parallel word similarity computations using a large network of hardware spiking neurons. A 4-bit vector-matrix multiplication engine was implemented on TrueNorth in order to accommodate a word vector dictionary of 95,000 words trained on Wikipedia text, and it successfully performs word similarity searches using that dictionary while utilizing 3,991 cores out of the 4,096 available on TrueNorth and consuming less than 70 mW of power.
IBM trunorth神经突触系统中的Word2vec单词相似度
Word2vec,像其他从文本语料库中创建词嵌入的方法一样,已经显示出结果词向量之间存在有趣的数学属性。通过确定哪些单词在向量空间附近并执行简单的向量操作,可以发现单词的相似性和关系。在这项工作中,IBM的TrueNorth神经突触系统使用一个大型硬件尖峰神经元网络来实现大规模并行的单词相似度计算。在TrueNorth上实现了一个4位向量矩阵乘法引擎,以适应在维基百科文本上训练的95,000个单词的单词向量字典,它成功地使用该字典执行单词相似度搜索,同时使用TrueNorth上可用的4,096个内核中的3,991个内核,消耗不到70兆瓦的功率。
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