Applied Mathematics and Nonlinear Sciences
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Journal

Applied Mathematics and Nonlinear Sciences


Volume
& Issue

Volume 6, Issue 2


Published
on

December 13, 2021


Pages

739-750


DOI

Article

Comparison of compression estimations under the penalty functions of different violent crimes on campus through deep learning and linear spatial autoregressive models


Authors

Huiping Hu Affiliation:
Department of English Education, Shangrao Preschool Education College, Shangrao 334000, China
, Xinqun Huang Affiliation:
Department of English Education, Shangrao Preschool Education College, Shangrao 334000, China
, Majed Ahmad Suhaim Affiliation:
Department of Information Technology, Faculty of Computing and Information Technology, King Abdulaziz University, Jeddah, Saudi Arabia
and Hui Zhang Affiliation:
Department of English Education, Shangrao Preschool Education College, Shangrao 334000, China


Abstract

To reduce the probability of violent crimes, the deep learning (DL) technology and linear spatial autoregressive models (ARMs) are utilised to estimate the model parameters through different penalty functions. In addition, under a determinate space, the influences of environmental factors on violent crimes are discussed. By taking campus violence cases as examples, the major influencing factors of violent crimes are found through data analysis. The results show that campus violence cases are usually caused by the complex surrounding environments and persons. Also, campus security measures only cover a small range, and the security management is difficult. In the meantime, due to the younger ages and lack of self-protection awareness, students may easily become the targets of criminals. Therefore, the results have a positive significance for authorities to analyse the crime rates in a determinate area and take preventive measures against violent crimes.


Keywords

deep learning, campus violence, autoregression, penalty function, parameter estimation, 62J05


Citation

Hu, H., Huang, X., Suhaim, M. A., & Zhang, H. (2021). Comparison of compression estimations under the penalty functions of different violent crimes on campus through deep learning and linear spatial autoregressive models. Applied Mathematics and Nonlinear Sciences, 6(2), 739–750. https://doi.org/10.2478/amns.2021.2.00064
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