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- W3103646952 abstract "Deep sparse auto-encoders with mixed structure regularization (MSR) in addition to explicit sparsity regularization term and stochastic corruption of the input data with Gaussian noise have the potential to improve unsupervised abnormality detection. Unsupervised abnormality detection based on identifying outliers using deep sparse auto-encoders is a very appealing approach for medical computer aided detection systems as it requires only healthy data for training rather than expert annotated abnormality. In the task of detecting coronary artery disease from Coronary Computed Tomography Angiography (CCTA), our results suggests that the MSR has the potential to improve overall performance by 20-30% compared to deep sparse and denoising auto-encoders." @default.
- W3103646952 created "2020-11-23" @default.
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- W3103646952 date "2019-03-22" @default.
- W3103646952 modified "2023-10-16" @default.
- W3103646952 title "Unsupervised abnormality detection through mixed structure regularization ( <scp>MSR</scp> ) in deep sparse autoencoders" @default.
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- W3103646952 doi "https://doi.org/10.1002/mp.13464" @default.
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