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Bayesian network structures and inference techniques for automatic speech recognition

机译:自动语音识别的贝叶斯网络结构和推理技术

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This paper describes the theory and implementation of Bayesian networks in the context of automatic speech recognition. Bayesian networks provide a succinct and expressive graphical language for factoring joint probability distributions, and we begin by presenting the structures that are appropriate for doing speech recognition training and decoding. This approach is notable because it expresses all the details of a speech recognition system in a uniform way using only the concepts of random variables and conditional probabilities. A powerful set of computational routines complements the representational utility of Bayesian networks, and the second part of this paper describes these algorithms in detail. We present a novel view of inference in general networks ― where inference is done via a change-of-variables that renders the network tree-structured and amenable to a very simple form of inference. We present the technique in terms of straightforward dynamic programming recursions analogous to HMM α- β computation, and then extend it to handle deterministic constraints amongst variables in an extremely efficient manner. The paper concludes with a sequence of experimental results that show the range of effects that can be modeled, and that significant reductions in error-rate can be expected from intelligently factored state representations.
机译:本文介绍了自动语音识别环境下贝叶斯网络的理论和实现。贝叶斯网络为分解联合概率分布提供了简洁明了的图形语言,我们首先介绍适合进行语音识别训练和解码的结构。这种方法很显着,因为它仅使用随机变量和条件概率的概念以统一的方式表示语音识别系统的所有细节。一组功能强大的计算例程补充了贝叶斯网络的表示功能,本文的第二部分详细介绍了这些算法。我们在一般网络中提供了一种新颖的推理观点-推理是通过变量的变化来完成的,该变量的变化使网络树结构化并可以非常简单地进行推理。我们根据类似于HMMα-β计算的直接动态编程递归来介绍该技术,然后将其扩展为以极其有效的方式处理变量之间的确定性约束。本文以一系列实验结果作为结束,这些实验结果显示了可以建模的影响范围,并且可以从智能分解的状态表示形式中预期错误率的显着降低。

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