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Parametric models for helicopter identification using ANN

机译:使用ANN进行直升机识别的参数模型

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摘要

An artificial neural network (ANN) based helicopter identification system is proposed. The feature vectors are based on both the tonal and the broadband spectrum of the helicopter signal, ANN pattern classifiers are trained using various parametric spectral representation techniques. Specifically, linear prediction, reflection coefficients, cepstrum, and line spectral frequencies (LSF) are compared in terms of recognition accuracy and robustness against additive noise. Finally, an 8-helicopter ANN classifier is evaluated. It is also shown that the classifier performance is dramatically improved if it is trained using both clean data and data corrupted with additive noise.
机译:提出了一种基于人工神经网络的直升机识别系统。特征向量基于直升机信号的音调和宽带频谱,使用各种参数频谱表示技术训练ANN模式分类器。具体而言,就识别精度和针对加性噪声的鲁棒性而言,比较了线性预测,反射系数,倒谱和线谱频率(LSF)。最后,评估了8直升机ANN分类器。还表明,如果使用干净数据和因加性噪声破坏的数据进行训练,分类器的性能将得到显着提高。

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