activity
20192022
most citedFuzzing Hardware Like Software

30 citations · 56 across the 5 of their papers we have counts for

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5 papers · 1 filter

cs.CR202222 cited

Same Coverage, Less Bloat: Accelerating Binary-only Fuzzing with Coverage-preserving Coverage-guided Tracing

Stefan Nagy, Anh Nguyen-Tuong, Jason D. Hiser +2

Coverage-guided fuzzing's aggressive, high-volume testing has helped reveal tens of thousands of software security flaws. While executing billions of test cases mandates fast code…

cs.CR2020

Silicon Dating

Harrison Williams, Alexander Lind, Kishankumar Parikh +1

In order to service an ever-growing base of legacy electronics, both government and industry customers must turn to third-party brokers for components in short supply or discontinu…

cs.CR20192 cited

An Extensible Framework for Quantifying the Coverage of Defenses Against Untrusted Foundries

Timothy Trippel, Kang G. Shin, Kevin B. Bush +1

The transistors used to construct Integrated Circuits (ICs) continue to shrink. While this shrinkage improves performance and density, it also reduces trust: the price to build lea…

cs.CR2019

T-TER: Defeating A2 Trojans with Targeted Tamper-Evident Routing

Timothy Trippel, Kang G. Shin, Kevin B. Bush +1

Since the inception of the Integrated Circuit (IC), the size of the transistors used to construct them has continually shrunk. While this advancement significantly improves computi…

cs.CR20192 cited

Full-speed Fuzzing: Reducing Fuzzing Overhead through Coverage-guided Tracing

Stefan Nagy, Matthew Hicks

Of coverage-guided fuzzing's three main components: (1) testcase generation, (2) code coverage tracing, and (3) crash triage, code coverage tracing is a dominant source of overhead…