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Signal-to-string conversion based on high likelihood regions using embedded dynamic programming

机译:使用嵌入式动态编程基于高似然区域的信号到字符串的转换

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摘要

A method of signal-to-string conversion based on embedded dynamic programming (DP) which can adapt its search to the variation of the input signal is proposed. The optimizing process is guided by high-valued portions of the likelihood function of symbols composing the string and is solved by two embedded dynamic programming processes. Algorithms in a Pascal-like language relating to the solution are given. When applied to continuous speech recognition on a 100-word vocabulary using the phoneme as the basic recognition unit, the method is shown to achieve a 4% improvement in the recognition rate compared to a classical DP-based method.
机译:提出了一种基于嵌入式动态编程(DP)的信号到字符串转换方法,该方法可以使搜索适应输入信号的变化。优化过程由组成字符串的符号的似然函数的高价值部分指导,并由两个嵌入式动态编程过程解决。给出了与解决方案有关的类似Pascal语言的算法。当应用到使用音素作为基本识别单元的100个单词的词汇上的连续语音识别时,与传统的基于DP的方法相比,该方法的识别率提高了4%。

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