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Fast algorithms for phone classification and recognition using segment-based models

机译:使用基于细分的模型进行电话分类和识别的快速算法

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摘要

Methods for reducing the computation requirements of joint segmentation and recognition of phones using the stochastic segment model are presented. The approach uses a fast segment classification method that reduces computation by a factor of two to four, depending on the confidence of choosing the most probable model. A split-and-merge segmentation algorithm is proposed as an alternative to the typical dynamic programming solution of the segmentation and recognition problem, with computation savings increasing proportionally with model complexity. Although the current recognizer uses context-independent phone models, the results reported for the TIMIT database for speaker-independent joint segmentation and recognition are comparable to those of systems that use context information.
机译:提出了使用随机分段模型降低电话联合分段和识别的计算需求的方法。该方法使用快速段分类方法,根据选择最可能的模型的置信度,该方法将计算量减少了2到4倍。提出了一种拆分合并分割算法,作为分割和识别问题的典型动态规划解决方案的替代方法,其计算节省与模型复杂度成正比。尽管当前的识别器使用的是上下文无关的电话模型,但TIMIT数据库报告的用于说话人无关的关节分割和识别的结果与使用上下文信息的系统的结果是可比的。

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