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A Sequential Approach to Sparse Component Analysis

机译:稀疏分量分析的顺序方法

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A sequential approach to sparse component analysis (SeqTIF) is proposed in this paper. Although SeqTIF employs the estimation process of the simultaneous TIFROM algorithm, a source cancellation and deflation technique are also incorporated to sequentially estimate speech signals in the mixture. Results indicate that SeqTIF's separation performance shows a clear improvement upon the simultaneous TIFROM approach, due to the less restrictive assumptions it places upon the signals in the mixture. In particular, the analysis indicates SeqTIF's data efficiency is high, enabling the sequential approach to track a time-varying mixture with much greater accuracy than the simultaneous algorithm. Furthermore, SeqTIF is a more flexible approach, free from the constraints that a simultaneous approach places upon the mixing system
机译:本文提出了一种循环分量分析(SEQTIF)的顺序方法。 尽管SEQTIF采用同时TiFrom算法的估计过程,但也结合了源消除和放气技术以顺序估计混合物中的语音信号。 结果表明,由于其在混合物中的信号上的限制假设较少,SEQTIF的分离性能显示出同时的TiFrom方法的清晰改善。 特别地,分析表示SEQTIF的数据效率高,使得顺序方法以比同时算法更大的精度跟踪时变的混合物。 此外,SEQTIF是一种更灵活的方法,不包括在混合系统上同时接近的约束

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