Construction of a Security Vulnerability Identification System Based on Machine Learning

In recent years, the frequent outbreak of information security incidents caused by information security vulnerabilities has brought huge losses to countries and enterprises. Therefore, the research related to information security vulnerability has attracted many scholars, especially the research on...

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Main Authors: Kebin Shi, Yonghui Dai, Jing Xu
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Journal of Sensors
Online Access:http://dx.doi.org/10.1155/2020/7358692
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spelling doaj-ae21bc6f909f46c88110e144bf5b9eb42020-11-25T03:36:02ZengHindawi LimitedJournal of Sensors1687-725X1687-72682020-01-01202010.1155/2020/73586927358692Construction of a Security Vulnerability Identification System Based on Machine LearningKebin Shi0Yonghui Dai1Jing Xu2Advisory Department, Shanghai Information Investment Consulting Co., Ltd., Shanghai 200081, ChinaManagement School, Shanghai University of International Business and Economics, Shanghai 201620, ChinaSchool of Information Management and Engineering, Shanghai University of Finance and Economics, Shanghai 200433, ChinaIn recent years, the frequent outbreak of information security incidents caused by information security vulnerabilities has brought huge losses to countries and enterprises. Therefore, the research related to information security vulnerability has attracted many scholars, especially the research on the identification of information security vulnerabilities. Although some organizations have established information description databases for information security vulnerabilities, the differences in their descriptions and understandings of vulnerabilities have increased the difficulty of information security precautions. This paper studies the construction of a security vulnerability identification system, summarizes the system requirements, and establishes a vulnerability text classifier based on machine learning. It introduces the word segmentation, feature extraction, classification, and verification processing of vulnerability description text. The contribution of this paper is mainly in two aspects: One is to standardize the unified description of vulnerability information, which lays a solid foundation for vulnerability analysis. The other is to explore the research methods of a vulnerability identification system for information security and establish a vulnerability text classifier based on machine learning, which can provide reference for the research of similar systems in the future.http://dx.doi.org/10.1155/2020/7358692
collection DOAJ
language English
format Article
sources DOAJ
author Kebin Shi
Yonghui Dai
Jing Xu
spellingShingle Kebin Shi
Yonghui Dai
Jing Xu
Construction of a Security Vulnerability Identification System Based on Machine Learning
Journal of Sensors
author_facet Kebin Shi
Yonghui Dai
Jing Xu
author_sort Kebin Shi
title Construction of a Security Vulnerability Identification System Based on Machine Learning
title_short Construction of a Security Vulnerability Identification System Based on Machine Learning
title_full Construction of a Security Vulnerability Identification System Based on Machine Learning
title_fullStr Construction of a Security Vulnerability Identification System Based on Machine Learning
title_full_unstemmed Construction of a Security Vulnerability Identification System Based on Machine Learning
title_sort construction of a security vulnerability identification system based on machine learning
publisher Hindawi Limited
series Journal of Sensors
issn 1687-725X
1687-7268
publishDate 2020-01-01
description In recent years, the frequent outbreak of information security incidents caused by information security vulnerabilities has brought huge losses to countries and enterprises. Therefore, the research related to information security vulnerability has attracted many scholars, especially the research on the identification of information security vulnerabilities. Although some organizations have established information description databases for information security vulnerabilities, the differences in their descriptions and understandings of vulnerabilities have increased the difficulty of information security precautions. This paper studies the construction of a security vulnerability identification system, summarizes the system requirements, and establishes a vulnerability text classifier based on machine learning. It introduces the word segmentation, feature extraction, classification, and verification processing of vulnerability description text. The contribution of this paper is mainly in two aspects: One is to standardize the unified description of vulnerability information, which lays a solid foundation for vulnerability analysis. The other is to explore the research methods of a vulnerability identification system for information security and establish a vulnerability text classifier based on machine learning, which can provide reference for the research of similar systems in the future.
url http://dx.doi.org/10.1155/2020/7358692
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AT yonghuidai constructionofasecurityvulnerabilityidentificationsystembasedonmachinelearning
AT jingxu constructionofasecurityvulnerabilityidentificationsystembasedonmachinelearning
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