The Fun in Fuzzing

Q3 Computer Science
Queue Pub Date : 2022-12-31 DOI:10.1145/3580504
Stefan Nagy, P. Alvaro
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引用次数: 1

Abstract

Stefan Nagy, an assistant professor in the Kahlert School of Computing at the University of Utah, takes us on a tour of recent research in software fuzzing, or the systematic testing of programs via the generation of novel or unexpected inputs. The first paper he discusses extends the state of the art in coverage-guided fuzzing with the semantic notion of "likely invariants," inferred via techniques from property-based testing. The second explores encoding domain-specific knowledge about certain bug classes into test-case generation. His last selection takes us through the looking glass, randomly generating entire C programs and using differential analysis to compare traces of optimized and unoptimized executions, in order to find bugs in the compilers themselves.
模糊测试的乐趣
犹他大学Kahlert计算学院的助理教授Stefan Nagy带我们参观了软件模糊化的最新研究,即通过生成新颖或意外输入对程序进行系统测试。他讨论的第一篇论文通过基于属性的测试技术推断出“可能不变量”的语义概念,扩展了覆盖引导模糊化的最新技术。第二个探索将关于某些bug类的领域特定知识编码到测试用例生成中。他的最后一个选择带我们走进了观察镜,随机生成整个C程序,并使用差分分析来比较优化和未优化执行的痕迹,以发现编译器本身的错误。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Queue
Queue Computer Science-Computer Science (all)
CiteScore
1.80
自引率
0.00%
发文量
23
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