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Vehicle Type Recognition in WSN Based on ITESP Algorithm

机译:基于ITESP算法的WSN车辆类型识别。

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摘要

Vehicle type recognition is a demanding application of wireless sensor networks (WSN). In context of applying the sound recognition technology on the vehicle type recognition, in this study, a new feature extraction method is proposed based on the improved time encoded signal processing (ITESP) algorithm. The conventional TESP algorithm, which is effective for the speech signal feature extraction, however, is not suitable for the vehicle sound signal which is more complex. To solve this problem, we design an extensional symbol table with 40 characters according to the characteristic features of the vehicle sound signal, and then construct the one-dimensional S-matrix and the two-dimensional A-matrix respectively based on the symbol stream which is encoded by the symbol table. After that, support vector machine (SVM) is used as the classifier to recognize different vehicle types. The simulation results indicate that the vehicle type recognition systems with ITESP features give better performance compared with the conventional TESP based features.
机译:车辆类型识别是无线传感器网络(WSN)的苛刻应用。在将声音识别技术应用于车辆类型识别的背景下,本研究提出了一种基于改进的时间编码信号处理算法的特征提取方法。然而,对于语音信号特征提取有效的常规TESP算法不适用于更复杂的车辆声音信号。为了解决这个问题,我们根据车辆声音信号的特征,设计了一个40个字符的扩展符号表,然后根据符号流分别构造一维S矩阵和二维A矩阵。由符号表编码。之后,使用支持向量机(SVM)作为分类器来识别不同的车辆类型。仿真结果表明,与传统的基于TESP的特征相比,具有ITESP特征的车辆类型识别系统具有更好的性能。

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