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A quantitative real time data analysis in vehicular speech environment with varying SNR

机译:信噪比变化的车载语音环境中的实时定量数据分析

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The purpose of this paper is to compare the performance of two common filters operating on noisy speech recorded in automobiles travelling at various speeds. The filters are based on Spectral Subtraction (SS) and Kalman Filtering (KF). The literature contains studies based on simulated data whereas this paper uses real time data collected in car's in search of an optimal solution. The comparisons were based on real recorded samples containing noisy speech signals with durations of approximately 2 minutes each. Different cases of noise levels which represent the most common situations experienced by drivers were created. The different settings used include varying car speeds (e.g., 40 mph, 70 mph), varying fan power, and window positions settings. The study was carried out using three different car models. The measured noisy voice signals were filtered using the different filtering techniques and the resulting filtered signals were compared in the time domain and the frequency domain, both quantitatively and psychometrically. Furthermore, the quantitative analysis approach was applied to the results for more accurate interpretation. Results show that SS outperforms KF in noise reduction, and with much less speech distortion at the different Signal to Noise Ratios (SNRs) tested. The audio test results subjected to human listening are comparable with the simulation results. Overall, SS showed superior performance over KF in vehicular hands-free speech applications.
机译:本文的目的是比较两种常见的滤波器的性能,这些滤波器对以各种速度行驶的汽车记录的嘈杂语音进行操作。滤波器基于频谱减法(SS)和卡尔曼滤波(KF)。文献中包含基于模拟数据的研究,而本文使用在汽车中收集的实时数据来寻找最佳解决方案。比较是基于实际记录的样本,其中包含有噪声的语音信号,每个样本的持续时间大约为2分钟。产生了代表驾驶员所经历的最常见情况的噪声级的不同情况。所使用的不同设置包括变化的汽车速度(例如40 mph,70 mph),变化的风扇功率以及车窗位置设置。该研究是使用三种不同的汽车模型进行的。使用不同的滤波技术对测得的嘈杂语音信号进行滤波,并在时域和频域中定量和心理地比较所得的滤波信号。此外,将定量分析方法应用于结果以进行更准确的解释。结果表明,在测试的不同信噪比下,SS的性能优于KF,并且语音失真小得多。经过人类聆听的音频测试结果与模拟结果相当。总体而言,SS在车载免提语音应用中表现出优于KF的性能。

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