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- W3136128850 abstract "Epistasis is a challenge in prediction, classification, and suspicion of human genetic diseases. Many technologies, methods, and tools have been developed for epistasis detection. Multifactor dimensionality reduction (MDR) is the method commonly used in epistasis detection. It uses two class groups-high risk and low risk-in human genetic disease and complex genetic traits. However, it cannot handle uncertainties from genetic information. This chapter describes the fuzzy sigmoid membership-based MDR (FSMDR) method of epistasis detection. The algorithmic steps in FSMDR are also elaborated with simulated data generated from GAMETES and a real coronary artery disease patient epistasis data set obtained from the Wellcome Trust Case Control Consortium (WTCCC). Moreover, a belief degree-associated fuzzy MDR framework is also proposed for epistasis detection, which can overcome the uncertainties of MDR-based methods. This framework improves the detection efficiency. It works like fuzzy set-based MDR methods. Simulated epistasis data sets are used to compare different MDR-based methods. Belief degree-associated fuzzy MDR was shown to gives good results by taking into account the uncertainly of the high/low risk classification." @default.
- W3136128850 created "2021-03-29" @default.
- W3136128850 creator A5029563650 @default.
- W3136128850 creator A5030015771 @default.
- W3136128850 date "2021-01-01" @default.
- W3136128850 modified "2023-09-27" @default.
- W3136128850 title "A Belief Degree–Associated Fuzzy Multifactor Dimensionality Reduction Framework for Epistasis Detection" @default.
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- W3136128850 doi "https://doi.org/10.1007/978-1-0716-0947-7_19" @default.
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