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ΠεδίοΚρυπτογραφίαΚρυπτογραφία
ΟικογένειαMachine learningMachine learning
Έτος προέλευσης19901976
ΔημιουργόςBarton MillerJames C. King
Τύποςrandom input-based testing techniqueformal verification technique
Θεμελιώδης πηγήMiller, B. P., Fredriksen, L., & So, B. (1990). An empirical study of the reliability of UNIX utilities. Communications of the ACM, 33(12), 32-44. DOI ↗King, J. C. (1976). Symbolic execution and program testing. Communications of the ACM, 19(7), 385-394. DOI ↗
Εναλλακτικές ονομασίεςfuzz testing, fuzzer, mutation testingsymbolic execution, symbolic analysis, concolic execution
Συναφείς33
ΣύνοψηFuzzing is a software testing technique that inputs large numbers of random or semi-random test cases to a program to find bugs, crashes, and security vulnerabilities. Pioneered by Barton Miller in 1990, fuzzing has become a primary method for discovering zero-day vulnerabilities in complex software. Modern fuzzing tools like libFuzzer, AFL, and HoneyPot combine coverage-guided mutation with instrumentation to efficiently explore program paths and trigger vulnerabilities. Fuzzing has discovered thousands of critical vulnerabilities in major software including browsers, compilers, and cryptographic libraries.Symbolic execution is a program analysis technique that executes programs using symbolic (non-concrete) values instead of actual inputs, tracking how symbolic values flow through the program. Introduced by James C. King in 1976, symbolic execution builds mathematical constraints on program variables and can determine which inputs cause specific program behaviors, enabling automatic test generation and vulnerability detection. Modern symbolic execution tools like KLEE, S2E, and Z3 have become powerful instruments for finding subtle bugs and security vulnerabilities.
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ScholarGateΣύγκριση μεθόδων: Fuzzing · Symbolic Execution. Ανακτήθηκε στις 2026-06-17 από https://scholargate.app/el/compare