Publication | Closed Access
Training data debugging for the fairness of machine learning software
47
Citations
30
References
2022
Year
Artificial IntelligenceEngineeringMachine LearningMachine Learning ToolVerificationAi SafetySoftware EngineeringSoftware AnalysisData ScienceData MiningBiasMachine Learning SoftwareFair Data PrincipleAlgorithmic BiasComputer ScienceDebuggerSoftware BehaviorProgram AnalysisSoftware TestingAlgorithmic FairnessMl Software
With the widespread application of machine learning (ML) software, especially in high-risk tasks, the concern about their unfairness has been raised towards both developers and users of ML software. The unfairness of ML software indicates the software behavior affected by the sensitive features (e.g., sex), which leads to biased and illegal decisions and has become a worthy problem for the whole software engineering community.
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