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FPGA Implementation of a Pipelined Gaussian Calculation for HMM-Based Large Vocabulary Speech Recognition

机译:基于HMM的大词汇语音识别的流水线高斯计算的FPGA实现

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A scalable large vocabulary, speaker independent speech recognition system is being developed using Hidden Markov Models (HMMs) for acoustic modeling and a Weighted Finite State Transducer (WFST) to compile sentence, word, and phoneme models. The system comprises a software backend search and an FPGA-based Gaussian calculation which are covered here. In this paper, we present an efficient pipelined design implemented both as an embedded peripheral and as a scalable, parallel hardware accelerator. Both architectures have been implemented on an Alpha Data XRC-5T1, reconfigurable computer housing a Virtex 5 SX95T FPGA. The core has been tested and is capable of calculating a full set of Gaussian results from 3825 acoustic models in 9.03 ms which coupled with a backend search of 5000 words has provided an accuracy of over 80%. Parallel implementations have been designed with up to 32 cores and have been successfully implemented with a clock frequency of 133 MHz.
机译:正在开发一种可扩展的大词汇量,独立于说话者的语音识别系统,该系统使用隐马尔可夫模型(HMM)进行声学建模,并使用加权有限状态换能器(WFST)来编译句子,单词和音素模型。该系统包括一个软件后端搜索和一个基于FPGA的高斯计算,这里将进行介绍。在本文中,我们提出了一种有效的流水线设计,既可作为嵌入式外围设备又可作为可扩展的并行硬件加速器来实现。两种架构均已在装有Virtex 5 SX95T FPGA的Alpha Data XRC-5T1可重配置计算机上实现。该内核已经过测试,能够在9.03毫秒内从3825个声学模型计算出完整的高斯结果,再加上5000个单词的后端搜索,提供了80%以上的准确性。并行实现被设计为具有多达32个内核,并且已经成功实现了133 MHz的时钟频率。

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    Electronics, Communications and Information Technology (ECIT), Queens University Belfast, Northern Ireland Science Park,Belfast BT3 9DT, UK;

    Electronics, Communications and Information Technology (ECIT), Queens University Belfast, Northern Ireland Science Park,Belfast BT3 9DT, UK;

    Electronics, Communications and Information Technology (ECIT), Queens University Belfast, Northern Ireland Science Park,Belfast BT3 9DT, UK;

    Electronics, Communications and Information Technology (ECIT), Queens University Belfast, Northern Ireland Science Park,Belfast BT3 9DT, UK;

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