首页> 外文期刊>International Journal of Wavelets, Multiresolution and Information Processing >IDENTIFICATION OF ACOUSTIC SIGNATURES FOR VEHICLES VIA REDUCTION OF DIMENSIONALITY
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IDENTIFICATION OF ACOUSTIC SIGNATURES FOR VEHICLES VIA REDUCTION OF DIMENSIONALITY

机译:通过减少维数来识别车辆的声学特征

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摘要

In this paper we propose a robust algorithm that solves two related problems: (1) Classification of acoustic signals emitted by different moving vehicles. The recorded signals have to be identified to which pre-existing group they belong to independently of the recording surrounding conditions. (2) Detection of the presence of a vehicle in a certain class via analysis of its acoustic signature against the existing database of recorded and processed acoustic signals. To achieve this detection with minimal false alarms we construct the acoustic signature of a certain vehicle using the distribution of the energies among blocks which consist of coefficients of multiscale local cosine transform (LCT) applied in the frequency domain of the acoustic signal. The proposed algorithm is robust even under severe noise and diverse rough surrounding conditions. This is a generic technology, which has many algorithmic variations, can be used to solve wide range of classification and detection problems which are based on a unique derivation of signatures.
机译:在本文中,我们提出了一种鲁棒的算法,可以解决两个相关的问题:(1)不同移动车辆发出的声信号的分类。所记录的信号必须独立于记录周围条件而被标识为它们属于哪个预先存在的组。 (2)通过针对已记录和已处理的声学信号的现有数据库分析其声学特征来检测某类车辆的存在。为了用最少的错误警报来实现这种检测,我们使用能量在块之间的分布来构造某种车辆的声学特征,这些能量的分布由应用于声信号频域的多尺度局部余弦变换(LCT)系数组成。所提出的算法即使在严重的噪声和各种各样的恶劣环境下也具有鲁棒性。这是一种通用技术,具有很多算法上的变化,可用于解决基于签名唯一派生的广泛分类和检测问题。

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