使用空间分割的位置相关串扰消除

Ki-Seung Lee
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引用次数: 3

摘要

目前的研究测试了一种新的立体声回放系统,该系统可以有效地消除任意收听位置的串音信号。这种重放系统通过集成听者位置跟踪技术和串声消除技术来实现。将整个监听空间划分为多个互不重叠的单元,并为每个单元分配一个串扰消除滤波器。通过最大化平均信道分离比(CSR)来构造监听空间分区和相应的串扰消除滤波器。由于所提出的方法采用基于小区的串扰对消,因此不需要估计听者的确切位置。相反,只需要确定侦听器所在的单元。这是通过简单地采用人工神经网络(ANN)来实现的,其中每对麦克风的时间延迟作为人工神经网络输入,人工神经网络输出对应于细胞的指数。实验结果表明,当簇数超过12个时,95%以上的实验聆听空间的CSR≥10 dB。在此条件下,虚拟声源真实方向与被试识别方向的相关性大于0.9。
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Position-Dependent Crosstalk Cancellation Using Space Partitioning
The present study tested a new stereo playback system that effectively cancels cross-talk signals at an arbitrary listening position. Such a playback system was implemented by integrating listener position tracking techniques and crosstalk cancellation techniques. The entire listening space was partitioned into a number of non-overlapped cells and a crosstalk cancellation filter was assigned to each cell. The listening space partitions and the corresponding crosstalk cancellation filters were constructed by maximizing the average channel separation ratio (CSR). Since the proposed method employed cell-based crosstalk cancellation, estimation of the exact position of the listener was not necessary. Instead, it was only necessary to determine the cell in which the listener was located. This was achieved by simply employing an artificial neural network (ANN) where the time delay to each pair of microphones was used as the ANN input and the ANN output corresponded to the index of cells. The experimental results showed that more than 95% of the experimental listening space had a CSR ≥ 10 dB when the number of clusters exceeded 12. Under these conditions, the correlation between the true directions of the virtual sound sources and the directions recognized by the subjects was greater than 0.9.
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来源期刊
IEEE Transactions on Audio Speech and Language Processing
IEEE Transactions on Audio Speech and Language Processing 工程技术-工程:电子与电气
自引率
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审稿时长
24.0 months
期刊介绍: The IEEE Transactions on Audio, Speech and Language Processing covers the sciences, technologies and applications relating to the analysis, coding, enhancement, recognition and synthesis of audio, music, speech and language. In particular, audio processing also covers auditory modeling, acoustic modeling and source separation. Speech processing also covers speech production and perception, adaptation, lexical modeling and speaker recognition. Language processing also covers spoken language understanding, translation, summarization, mining, general language modeling, as well as spoken dialog systems.
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