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- W2484209594 abstract "In machine learning larger databases are usually associated with higher classification accuracy due to better generalization. This generalization may lead to non-optimal classifiers in some medical applications with highly variable expressions of pathologies. This paper presents a method for learning from a large training base by adaptively selecting optimal training samples for given input data. In this way heterogeneous databases are supported two-fold. First, by being able to deal with sparsely annotated data allows a quick inclusion of new data set and second, by training an input-dependent classifier. The proposed approach is evaluated using the SISS challenge. The proposed algorithm leads to a significant improvement of the classification accuracy." @default.
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- W2484209594 date "2016-01-01" @default.
- W2484209594 modified "2023-10-07" @default.
- W2484209594 title "Input Data Adaptive Learning (IDAL) for Sub-acute Ischemic Stroke Lesion Segmentation" @default.
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- W2484209594 doi "https://doi.org/10.1007/978-3-319-30858-6_25" @default.
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