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A New Approach for Concealed Information Identification Based on ERP Assessment
Authors:Min Zhao  Chongxun Zheng  Chunlin Zhao
Affiliation:1. Key laboratory of Biomedical Information Engineering of Education Ministry, Xi’an Jiaotong University, No.28, Xianning West Road, Xi’an, 710049, China
2. Engineering College of Armed Police Force, Xi’an, 710049, China
Abstract:Recently, numerous concealed information test (CIT) studies have been done with event related potential (ERP) for its sufficient validity in applied use. In this study, a new approach based on wavelet coefficients (WCs) and kernel learning algorithm is proposed to identify concealed information. Totally 16 subjects went through the designed CIT paradigm and the multichannel electroencephalogram (EEG) signals were recorded. Then, the high-dimensional WCs of ERP in delta, theta, alpha and beta rhythms were extracted. For the analysis of the data, kernel principle component analysis (KPCA) and a support vector machines (SVM) classifier are implemented. The results show that WCs features are significant differences between concealed information and irrelevant information (P?
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