Dynamic Robustness Verification against Weak Memory
Roy David Margalit, Michalis Kokologiannakis, Shachar Itzhaky, Ori Lahav
摘要
Dynamic race detection is a highly effective runtime verification technique for identifying data races by instrumenting and monitoring concurrent program runs. However, standard dynamic race detection is incompatible with practical weak memory models; the added instrumentation introduces extra synchronization, which masks weakly consistent behaviors and inherently misses certain data races. In response, we propose to dynamically verify program robustness —a property ensuring that a program exhibits only strongly consistent behaviors. Building on an existing static decision procedure, we develop an algorithm for dynamic robustness verification under a C11-style memory model. The algorithm is based on “location clocks”, a variant of vector clocks used in standard race detection. It allows effective and easy-to-apply defense against weak memory on a per-program basis, which can be combined with race detection that assumes strong consistency. We implement our algorithm in a tool, called RSan, and evaluate it across various settings. To our knowledge, this work is the first to propose and develop dynamic verification of robustness against weak memory models.
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它引用的顶会 Paper7
- Fast, sound, and effectively complete dynamic race predictionAndreas PavlogiannisPOPL 2020 · 被引用 46 次
- VSync: push-button verification and optimization for synchronization primitives on weak memory modelsJonas Oberhauser, Rafael Lourenco de Lima Chehab, Diogo Behrens, Ming Fu 等ASPLOS 2021 · 被引用 40 次
- The Complexity of Dynamic Data Race PredictionUmang Mathur, Andreas Pavlogiannis, Mahesh ViswanathanLICS 2020 · 被引用 27 次
- C11Tester: a race detector for C/C++ atomicsWeiyu Luo, Brian DemskyASPLOS 2021 · 被引用 26 次
- Verifying observational robustness against a c11-style memory modelRoy David Margalit, Ori LahavPOPL 2021 · 被引用 22 次
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