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Perceptual validation of virtual room acoustics: Sound localisation and speech understanding

机译:虚拟房间声学的感知验证:声音定位和语音理解

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摘要

The reliability of algorithms for room acoustic simulations has often been confirmed on the basis of the verification of predicted room acoustical parameters. This paper presents a complementary perceptual validation procedure consisting of two experiments, respectively dealing with speech intelligibility, and with sound source front-back localisation. The evaluated simulation algorithm, implemented in software ODEON~®, is a hybrid method that is based on an image source algorithm for the prediction of early sound reflection and on ray-tracing for the later part, using a stochastic scattering process with secondary sources. The binaural room impulse response (BRIR) is calculated from a simulated room impulse response where information about the arriving time, intensity and spatial direction of each sound reflection is collected and convolved with a measured Head Related Transfer Function (HRTF). The listening stimuli for the speech intelligibility and localisation tests are auralised convolutions of anechoic sound samples with measured and simulated BRIRs. Perception tests were performed with human subjects in two acoustical environments, i.e. an anechoic and reverberant room, by presenting the stimuli to subjects in a natural way, and via headphones by using two non-individualized HRTFs (artificial head and hearing aids placed on the ears of the artificial head) of both a simulated and a real room. Very good correspondence is found between the results obtained with simulated and measured BRIRs, both for speech intelligibility in the presence of noise and for sound source localisation tests. In the anechoic room an increase in speech intelligibility is observed when noise and signal are presented from sources located at different angles. This improvement is not so evident in the reverberant room, with the sound sources at 1-m distance from the listener. Interestingly, the performance of people for front-back localisation is better in the reverberant room than in the anechoic room. The correlation between people's ability for sound source localisation on one hand, and their ability for recognition of binaurally received speech in reverberation on the other hand, is found to be weak.
机译:通常基于对预测的房间声学参数的验证来确认用于房间声学模拟的算法的可靠性。本文提出了一个互补的感知验证程序,该程序包括两个实验,分别处理语音清晰度和声源前后定位。在软件ODEON®中实现的经过评估的仿真算法是一种混合方法,该方法基于图像源算法,用于预测早期声音反射,并针对后期声光跟踪,使用带有辅助源的随机散射过程。从模拟的房间脉冲响应中计算双耳房间的脉冲响应(BRIR),其中收集有关每个声音反射的到达时间,强度和空间方向的信息,并与测量的头部相关传递函数(HRTF)进行卷积。语音清晰度和本地化测试的听觉刺激是带有测量和模拟BRIR的无回声声音样本的听觉卷积。通过在自然环境中对受试者进行刺激,并通过耳机使用两个非个性化的HRTF(人工头和放在耳朵上的助听器),在两种声学环境(即消声和混响室)中对人类受试者进行知觉测试。模拟房间和真实房间的人工头部的大小)。在有噪声的情况下语音清晰度和声源定位测试方面,在模拟和测量的BRIR所获得的结果之间都发现了很好的对应关系。在消声室中,当来自不同角度的信号源发出的噪声和信号时,语音清晰度会提高。这种改善在混响室中不是很明显,因为声源距听众1米。有趣的是,在混响室中,人们进行前后定位的性能要比在消声室中更好。人们发现,一方面人们的声源定位能力与另一方面他们对混响中双耳接收到的语音的识别能力之间的相关性很弱。

著录项

  • 来源
    《Applied Acoustics》 |2011年第4期|p.196-204|共9页
  • 作者单位

    K.U. Leuven, Laboratory of Acoustics and Thermal Physics, Celestijnenlaan 200D, 3001 Heverlee, Belgium,STU Bratislava, Faculty of Civil Engineering, Dept. of Building Constructions, Radlinskeho 11, 81108 Bratislava, Slovakia,K.U. Leuven, Laboratory of Acoustics and Thermal Physics, Celestijnenlaan 200D, 3001 Heverlee, Belgium;

    K.U. Leuven, Exp. ORL, Dept. Neurosciences, OSfN2, Herestraat 49, 3000 Leuven, Belgium;

    K.U. Leuven, Laboratory of Building Physics, Celestijnenlaan 200D, 3001 Heverlee, Belgium;

    K.U. Leuven, Exp. ORL, Dept. Neurosciences, OSfN2, Herestraat 49, 3000 Leuven, Belgium;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    room acoustics; binaural room impulse response; simulations; sound source localisation; front-back confusion; speech intelligibility; hearing aids;

    机译:室内声学双耳室冲动反应模拟;声源定位;前后混乱;语音清晰度助听器;
  • 入库时间 2022-08-17 13:30:34

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