2020
DOI: 10.1109/access.2020.2993270
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Research and Experiment of Radar Signal Support Vector Clustering Sorting Based on Feature Extraction and Feature Selection

Abstract: The result of radar signal sorting directly affects the performance of electronic reconnaissance equipment. Sorting method based on intra-pulse features has become a research focus in recent years. However, as the number of extracted features increases, the dimension of the feature vector becomes higher and higher. And too many dimensional feature vectors would make the complexity of the sorting algorithm increase geometrically. In this way, feature selection becomes more and more necessary. Combining the late… Show more

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Cited by 24 publications
(10 citation statements)
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“…In the process of integrating red education resources, the remote scheduling principle of teaching information is integrated into the feature vector extraction of red education resources [11,12], the feature variance contribution rate of red education resources is calculated, the observable random vector of the features of red education resources is given, and the feature vector of red education resources is decomposed by extracting the number of main factors of the feature vector of red education resources [13]. e specific process is as follows:…”
Section: Extracting Feature Vectors Of Red Education Resourcesmentioning
confidence: 99%
“…In the process of integrating red education resources, the remote scheduling principle of teaching information is integrated into the feature vector extraction of red education resources [11,12], the feature variance contribution rate of red education resources is calculated, the observable random vector of the features of red education resources is given, and the feature vector of red education resources is decomposed by extracting the number of main factors of the feature vector of red education resources [13]. e specific process is as follows:…”
Section: Extracting Feature Vectors Of Red Education Resourcesmentioning
confidence: 99%
“…SVM is one of the most widely used kernel learning algorithms, and has achieved good results in the classification of signal, image, biology, and other fields [ 43 ]. The support vector machine performs classification by finding the optimal hyperplane in a given sample set.…”
Section: Proposed Msjr Learning Frameworkmentioning
confidence: 99%
“…Data fusion technologies ensure close connectivity and timely communication between each unit of these systems and the acquisition center, highly contributing to the SSA. Based on the relative research on data fusion [62][63][64], the process primarily consists of data collection, signal conversion, preprocessing, feature extraction, and fusion algorithms [65,66]. The detailed process of data fusion is shown in the Figure 2.…”
Section: Data Fusionmentioning
confidence: 99%