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Scalable and accurate detection of semantic clones

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dc.contributor.author Agarwal, Navdha
dc.contributor.author Purandare, Rahul (Advisor)
dc.date.accessioned 2021-05-21T16:18:57Z
dc.date.available 2021-05-21T16:18:57Z
dc.date.issued 2020-06-03
dc.identifier.uri http://repository.iiitd.edu.in/xmlui/handle/123456789/908
dc.description.abstract Code clone detection plays an important role in software maintenance and evolution. There are many new applications emerging that rely on clones detected across software systems, and hence to address this, many code clone detection tools are being developed. However only a few of them target semantic clones. With deep learning taking a new turn today, extensive work has started to leverage these models to detect clones. These models use lexical information and syntactic structures like the abstract syntax trees to detect the clones, however, these methods do not take into account the available structural and semantic information that the codes offer and this limits the capabilities of such methods. Using Program Dependence Graphs and attention based learning, we want to fully leverage the structured syntactic and semantic information and develop a tool which can be used to detect the clone which might differ syntactically but yield the same semantics. en_US
dc.language.iso en_US en_US
dc.publisher IIIT-Delhi en_US
dc.subject Clone Detection, Benchmarks, Program Dependence Graph, Abstract Trees, Control Flow Graphs en_US
dc.title Scalable and accurate detection of semantic clones en_US
dc.type Other en_US


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