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An expert Discrete Wavelet Adaptive Network Based Fuzzy Inference System for digital modulation recognition

机译:基于专家离散小波自适应网络的数字调制识别模糊推理系统

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摘要

This paper presents a comparative study of implementation of feature extraction and classification algorithms based on discrete wavelet decompositions and Adaptive Network Based Fuzzy Inference System (ANFIS) for digital modulation recognition. Here, in first stage, 20 different feature extraction methods are generated by separately using Daubechies, Biorthogonal, Coiflets, Symlets wavelet families. In second stage, the performance comparison of these feature extraction methods is performed by using a new Expert Discrete Wavelet Adaptive Network Based Fuzzy Inference System (EDWANFIS). The digital modulated signals used in this experimental study are ASK8, FSK8, PSK8, QASK8. EDWANFIS structure consists of two parts. The first part is Discrete Wavelet Transform (DWT)-adaptive wavelet entropy and Adaptive Network Based Fuzzy Inference System for Automatic Digital Modulation Recognition (ADMR). The performance of this comparison system is evaluated by using total 800 digital modulated signals for each of these feature extraction methods. The performance comparison of these features extraction methods and the advantages and disadvantages of the methods are examined.
机译:本文对基于离散小波分解和基于自适应网络的模糊推理系统(ANFIS)进行数字调制识别的特征提取和分类算法实现的比较研究。在第一阶段,通过分别使用Daubechies,Biorthogonal,Coiflets,Symlets小波族分别生成20种不同的特征提取方法。在第二阶段,通过使用新的基于专家离散小波自适应网络的模糊推理系统(EDWANFIS)对这些特征提取方法进行性能比较。本实验研究中使用的数字调制信号是ASK8,FSK8,PSK8,QASK8。 EDWANFIS结构由两部分组成。第一部分是离散小波变换(DWT)自适应小波熵和基于自适应网络的自动数字调制识别(ADMR)模糊推理系统。通过对每种特征提取方法使用总计800个数字调制信号来评估此比较系统的性能。研究了这些特征提取方法的性能比较以及该方法的优缺点。

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