硬件中语音的盲源分离

N. Hurley, N. Harte, C. Fearon, S. Rickard
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引用次数: 4

摘要

本文介绍了一种采用时频掩蔽方法的源分离算法的硬件实现的初步工作。DUET(简并解混估计技术)已经被证明可以在软件中实现出色的实时源分离。目前的工作是朝着DUET的硬件实现迈进,这将允许将算法集成到消费设备中。初始阶段包括调查在定点算法中实现DUET时的性能,并考虑算法更改以使DUET更适合在DSP处理器上实现。比较了浮点和定点实现的性能。加权k均值聚类算法被提出作为替代梯度下降方法的峰值跟踪,并被证明在不影响计算负载的情况下获得优异的性能。给出了在TMS320VC5510 DSK上实现的初步性能数据。
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Blind source separation of speech in hardware
This paper presents preliminary work on a hardware implementation of a source separation algorithm employing time-frequency masking methods. DUET (degenerate unmixing estimation technique) has previously been shown to achieve excellent source separation in real time in software. The current work is a move towards a hardware realization of DUET that will allow integration of the algorithm into consumer devices. Initial stages involve investigating the performance of DUET when implemented in fixed-point arithmetic and a consideration of algorithmic changes to make DUET more amenable to implementation on a DSP processor. Performance is compared for floating-point and fixed-point implementations. A weighted K-means clustering algorithm is presented as an alternative to gradient descent methods for peak tracking and demonstrated to achieve excellent performance without adversely affecting computational load. Preliminary performance figures are given for an implementation on a TMS320VC5510 DSK.
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