基于临界点的维纳滤波语音增强

Meihui Lu, Xuan Zhou, N. Jaber, Kun Hua, Mahdi Ali
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引用次数: 0

摘要

提出了一种基于蓝牙技术的语音通信降噪新方法。在文献中,几位作者使用模拟数据比较了不同滤波技术的性能,例如众所周知的谱减法(SS)和维纳滤波(WF),而本研究使用的是从处于不同声级噪声环境中的汽车中收集的实时数据样本,以寻找最佳解决方案。这些车以不同的速度行驶,窗户和风扇设置为不同的配置。对试验结果进行了主客观分析。所提出的算法基于两种优越的语音检测和噪声估计技术,即对数能量语音活动检测(VAD)和先进先出(FIFO),与VAD和FIFO算法相比,它在音频质量方面表现出相当大的改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Speech enhancement using a critical point based Wiener Filter
This paper presents an new approach to noise reduction for voice communication over Bluetooth technology. In the literature, several authors have compared the performance of different filtering techniques, such as the well-known Spectral Subtraction (SS), and Wiener Filter (WF) using simulated data, whereas this research uses real-time data samples collected from cars subjected to a noisy environment with varying sound levels in search of an optimal solution. The cars were driven at different speeds with the windows and fan set to different configurations. The tests were analyzed both subjectively and objectively. The proposed algorithm is based on two superior voice detection and noise estimation techniques, namely Log-Energy Voice Activity Detection (VAD) and First-in First-out (FIFO), and it has shown a considerable improvement in audio quality over the VAD and FIFO only algorithms.
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