Leveraging Textual Specifications for Grammar-based Fuzzing of Network Protocols

October 10, 2018 Β· Declared Dead Β· πŸ› AAAI Conference on Artificial Intelligence

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Authors Samuel Jero, Maria Leonor Pacheco, Dan Goldwasser, Cristina Nita-Rotaru arXiv ID 1810.04755 Category cs.CR: Cryptography & Security Cross-listed cs.CL, cs.NI Citations 27 Venue AAAI Conference on Artificial Intelligence Last Checked 5 months ago
Abstract
Grammar-based fuzzing is a technique used to find software vulnerabilities by injecting well-formed inputs generated following rules that encode application semantics. Most grammar-based fuzzers for network protocols rely on human experts to manually specify these rules. In this work we study automated learning of protocol rules from textual specifications (i.e. RFCs). We evaluate the automatically extracted protocol rules by applying them to a state-of-the-art fuzzer for transport protocols and show that it leads to a smaller number of test cases while finding the same attacks as the system that uses manually specified rules.
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