Matches in SemOpenAlex for { <https://semopenalex.org/work/W4323348775> ?p ?o ?g. }
- W4323348775 abstract "Abstract Protein–protein interactions (PPIs) carry out the cellular processes of all living organisms. Experimental methods for PPI detection suffer from high cost and false-positive rate, hence efficient computational methods are highly desirable for facilitating PPI detection. In recent years, benefiting from the enormous amount of protein data produced by advanced high-throughput technologies, machine learning models have been well developed in the field of PPI prediction. In this paper, we present a comprehensive survey of the recently proposed machine learning-based prediction methods. The machine learning models applied in these methods and details of protein data representation are also outlined. To understand the potential improvements in PPI prediction, we discuss the trend in the development of machine learning-based methods. Finally, we highlight potential directions in PPI prediction, such as the use of computationally predicted protein structures to extend the data source for machine learning models. This review is supposed to serve as a companion for further improvements in this field." @default.
- W4323348775 created "2023-03-08" @default.
- W4323348775 creator A5014264612 @default.
- W4323348775 creator A5018620403 @default.
- W4323348775 creator A5027286013 @default.
- W4323348775 creator A5035414166 @default.
- W4323348775 creator A5055065911 @default.
- W4323348775 creator A5065713846 @default.
- W4323348775 creator A5079911106 @default.
- W4323348775 date "2023-03-01" @default.
- W4323348775 modified "2023-10-15" @default.
- W4323348775 title "Machine learning on protein–protein interaction prediction: models, challenges and trends" @default.
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