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Batch Inverse-Variance Weighting: Deep Heteroscedastic Regression

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DataCite Commons2024-12-16 更新2025-04-16 收录
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https://service.tib.eu/ldmservice/dataset/cedda1d8-6c5f-4ec8-b963-2658dfbba8d7
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Heteroscedastic regression is the task of supervised learning where each label is subject to noise from a different distribution. This noise can be caused by the labelling process, and impacts negatively the performance of the learning algorithm as it violates the i.i.d. assumptions. In many situations however, the labelling process is able to estimate the variance of such distribution for each label, which can be used as an additional information to mitigate this impact.
提供机构:
TIB
创建时间:
2024-12-16
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