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APPLICATION OF FUZZY-INTEGRATION-BASED MULTIPLE-INFORMATION AGGREGATION IN AUTOMATIC SPEECH RECOGNITION

机译:基于模糊积分的多信息融合技术在自动语音识别中的应用

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摘要

Many real-world problems can be cast into a multiple-information aggregation framework where preliminary evaluations of separate information sources are combined to produce more accurate and reliable evaluation than would otherwise be the case. In this paper we describe a syllable-proximity evaluation problem in automatic speech recognition that fits well into this aggregation framework. A fuzzy-integration-based approach is adopted as the aggregation operator and a gradient-based algorithm is described for learning parameters automatically from training data. Experiments using spontaneous speech material demonstrate that the fuzzy-integration-based aggregation approach has many advantages over other techniques in terms of both performance and interpretability of the system.
机译:许多现实世界中的问题都可以植入多信息汇总框架中,在该框架中,将对单独信息源的初步评估进行组合,以产生比其他情况更准确,可靠的评估。在本文中,我们描述了自动语音识别中的音节临近评估问题,该问题非常适合此聚合框架。采用基于模糊积分的方法作为聚合算子,并描述了一种基于梯度的算法来从训练数据中自动学习参数。使用自发语音材料的实验表明,基于模糊集成的聚合方法在系统的性能和可解释性方面都比其他技术具有许多优势。

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