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A modulation recognizer with ITD-based features

机译:具有基于ITD的功能的调制识别器

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This paper proposes a modulation recognizer based on the feature vectors obtained by Intrinsic Time-scale Decomposition(ITD) algorithm and Support Vector Machine(SVM). ITD is employed to extract time-frequency information of communication signals and the obtained feature vectors are transformed into lower-dimensional subspace according to Fisher analysis theory. Multiclass SVM is employed to modulation classification, including 7 types of digital modulation such as 2ASK, 4ASK, 2PSK, 4PSK, 16QAM, 2FSK and 4FSK. The ITD-based features can be directly obtained by means of waveform analysis, which not only has very low computational complexity, but also have good discriminability because of dimension reduce based on Fisher analysis. Simulation results show that the modulation recognizer can provide very high recognition accuracy with very low processing complexity.
机译:本文提出了一种基于特征向量的调制识别器,该特征向量是通过固有时间尺度分解(ITD)算法和支持向量机(SVM)获得的。利用ITD提取通信信号的时频信息,并根据Fisher分析理论将获得的特征向量转换为低维子空间。多类SVM用于调制分类,包括7种类型的数字调制,例如2ASK,4ASK,2PSK,4PSK,16QAM,2FSK和4FSK。基于ITD的特征可以通过波形分析直接获得,其不仅具有非常低的计算复杂度,而且由于基于Fisher分析的尺寸减小而具有良好的可分辨性。仿真结果表明,调制识别器可以以非常低的处理复杂度提供很高的识别精度。

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