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- W2911876355 abstract "Abstract Multi-view learning aims to solve multi-view data set which consists of multiple instances with different views. Traditional multi-view learning approaches always encounter small-scale label-known multi-view instances problem and insufficient discriminant information problem. Although some label-unknown multi-view data set generation approaches are developed to enhance useful discriminant information, the weights of views and features are not considered. This paper proposes a weight-based label-unknown multi-view data set generation approach (WLM) to overcome such a disadvantage. The procedure of WLM consists of three main steps. First, get the weights of views and features. Second, get similar instances of each label-known instance. Third, generate and select feasible label-unknown instances which are applied to multi-view learning approaches along with the original label-known multi-view instances. Further, comparisons and analysis about classification performance, clustering performance, bipartite ranking performance, image retrieval performance, significance on some multi-view data sets with some multi-view learning approaches validate the usefulness of WLM." @default.
- W2911876355 created "2019-02-21" @default.
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- W2911876355 date "2019-06-01" @default.
- W2911876355 modified "2023-10-12" @default.
- W2911876355 title "Weight-based label-unknown multi-view data set generation approach" @default.
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- W2911876355 doi "https://doi.org/10.1016/j.ipl.2019.01.015" @default.
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