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污点分析×静态应用程序安全测试×
领域密码学密码学
方法族Machine learningMachine learning
起源年份20052000s
提出者James NewsomeVarious researchers
类型data flow tracking techniquesource code vulnerability detection
开创性文献Newsome, J., & Song, D. X. (2005). Dynamic taint analysis for automatic detection, analysis, and signature generation of exploits on commodity software. In Network and Distributed System Security Symposium (NDSS 2005). link ↗Chess, B., & West, J. (2007). Secure Programming with Static Analysis. Addison-Wesley Professional. ISBN: 978-0321424778
别名taint analysis, information flow, data taintingSAST, white-box testing, source code analysis
相关33
摘要Taint analysis is a data flow analysis technique that tracks how untrusted (tainted) input flows through a program to identify vulnerabilities where tainted data reaches dangerous operations (sinks). Formalized by Newsome and Song in 2005, taint analysis marks input data as tainted and propagates taint labels through the program, alerting when tainted data reaches sensitive operations like SQL queries or system calls. Taint analysis is fundamental to detecting injection vulnerabilities and is widely used in dynamic analysis tools and security monitoring systems.Static Application Security Testing (SAST) is a security analysis technique that examines source code or compiled binaries without executing the program to identify vulnerabilities, code quality issues, and security flaws. Developed in the 2000s, SAST analyzes code structure, data flow, and control flow to detect potential bugs such as SQL injection, buffer overflows, and insecure cryptographic usage. SAST is widely integrated into development workflows as a shift-left security practice, enabling early detection of vulnerabilities before code reaches production.
ScholarGate数据集
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  3. PUBLISHED

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ScholarGate方法对比: Taint Analysis · Static Application Security Testing. 于 2026-06-15 检索自 https://scholargate.app/zh/compare