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OOPSLA2021顶会

Making pointer analysis more precise by unleashing the power of selective context sensitivity

Tian Tan, Yue Li, Xiaoxing Ma, Chang Xu, Yannis Smaragdakis

2021年份
39被引次数
16顶会引用

摘要

Traditional context-sensitive pointer analysis is hard to scale for large and complex Java programs. To address this issue, a series of selective context-sensitivity approaches have been proposed and exhibit promising results. In this work, we move one step further towards producing highly-precise pointer analyses for hard-to-analyze Java programs by presenting the Unity-Relay framework, which takes selective context sensitivity to the next level. Briefly, Unity-Relay is a one-two punch: given a set of different selective context-sensitivity approaches, say 𝑆 = 𝑆 1 , . . . , 𝑆 𝑛 , Unity-Relay first provides a mechanism (called Unity) to combine and maximize the precision of all components of 𝑆. When Unity fails to scale, Unity-Relay offers a scheme (called Relay) to pass and accumulate the precision from one approach 𝑆 𝑖 in 𝑆 to the next, 𝑆 𝑖+1 , leading to an analysis that is more precise than all approaches in 𝑆.

As a proof-of-concept, we instantiate Unity-Relay into a tool called Baton and extensively evaluate it on a set of hard-to-analyze Java programs, using general precision metrics and popular clients. Compared with the state of the art, Baton achieves the best precision for all metrics and clients for all evaluated programs. The difference in precision is often dramaticÐup to 71% of alias pairs reported by previously-best algorithms are found to be spurious and eliminated.

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