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Audio-based context awareness acoustic modeling and perceptual evaluation

机译:基于音频的上下文意识声学建模与感知评估

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Summary form only given. The paper concerns the development of a system for the recognition of a context or an environment based on acoustic information only. Our system uses Mel-frequency cepstral coefficients and their derivatives as features, and continuous density hidden Markov models (HMM) as acoustic models. We evaluate different model topologies and training methods for HMMs and show that discriminative training can yield a 10% reduction in error rate compared to maximum-likelihood training. A listening test is made to study the human accuracy in the task and to obtain a base-line for the assessment of the performance of the system. Direct comparison to human performance indicates that the system performs somewhat worse than human subjects do in the recognition of 18 everyday contexts and almost comparably in recognizing six higher level categories.
机译:仅给出摘要表格。 本文涉及仅基于声学信息识别上下文或环境的系统。 我们的系统使用熔融频率患者系数及其衍生物作为特征,以及作为声学模型的连续密度隐马尔可夫模型(HMM)。 我们评估了HMMS的不同模型拓扑和培训方法,并表明,与最大似然训练相比,判别培训可以产生10%的错误率降低。 聆听测试是为了研究任务中的人力准确性,并获得评估系统性能的基线。 与人类性能的直接比较表明,该系统在识别18日背景下的识别和识别六个更高级别的类别方面的识别方面的表现稍差。

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