基于贝叶斯信息准则的非目标区域信息挖掘置信度度量

Cong Liu, Yu Hu, Xiong-Guo Lei, Zhiguo Wang, Lirong Dai, Ren-Hua Wang
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引用次数: 0

摘要

本文分别在所谓目标区域和非目标区域研究了汉语命令词识别的适当置信度度量。这里的目标区是指被识别的命令词的语音部分,非目标区是指被识别的沉默部分。研究表明,利用非目标区域的额外信息可以有效地补充传统的基于目标区域的遗传算法。此外,在对非目标区域进行更理论化的分析时,利用贝叶斯信息准则(BIC)在非目标区域定位更精确的边界,得到了更大的改进。在两种不同的普通话电话命令词任务中,均获得了20%以上的等错误率相对降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploiting Non-Target Region Information for Confidence Measure Based on Bayesian Information Criterion
In this paper appropriate confidence measures (CMs) are investigated for Mandarin command word recognition, both in the so-called target region and non-target region, respectively. Here the target region refers to the recognized speech part of command word while the non-target region refers to the recognized silence part. It shows that exploiting extra information in the non-target region can effectively complement the traditional CM which usually focus on the target region. Furthermore, when analyzing the non-target region in a more theoretical way, where Bayesian information criterion (BIC) is employed to locate more precise boundary in the non-target region, even more improvement is achieved. In two different Mandarin telephone command word tasks, more than 20% relative reduction of equal error rate (EER) is obtained.
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