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A multiresolution wavelet networks architecture and its application to pattern recognition

机译:多分辨率小波网络架构及其应用于模式识别

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AbstractThis paper aims at addressing a challenging research in both fields of the wavelet neural network theory and the pattern recognition. A novel architecture of the wavelet network based on the multiresolution analysis (MRWN) and a novel learning algorithm founded on the Fast Wavelet Transform (FWTLA) are proposed. FWTLA has numerous positive sides compared to the already existing algorithms. By exploiting this algorithm to learn the MRWN, we suggest a pattern recognition system (FWNPR). We show firstly its classification efficiency on many known benchmarks and then in many applications in the field of the pattern recognition. Extensive empirical experiments are performed to compare the proposed methods with other approaches.
机译:<标题>抽象 ara>本文旨在解决小波神经网络理论和模式识别的各个领域的具有挑战性的研究。 提出了一种基于多分辨率分析(MRWN)的小波网络的新架构和在快速小波变换(FWTLA)上创立的新型学习算法。 与已经现有的算法相比,FWTLA具有许多正面。 通过利用该算法来学习MRWN,我们建议一个模式识别系统(FWNPR)。 我们首先在许多已知的基准上显示其分类效率,然后在模式识别领域的许多应用中展示。 进行广泛的经验实验,以将提出的方法与其他方法进行比较。

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