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Takuro Kutsuna

4 accepted papers

2024

Accuracy-Preserving Calibration via Statistical Modeling on Probability Simplex

AISTATS 2024poster

Classification models based on deep neural networks (DNNs) must be calibrated to measure the reliability of predictions. Some recent calibration methods have employed a probabilistic model on the probability simplex. However, these calibration methods cannot preserve the accuracy of pre-trained mode…

2019

Flow-based Image-to-Image Translation with Feature Disentanglement

NeurIPS 2019poster

Learning non-deterministic dynamics and intrinsic factors from images obtained through physical experiments is at the intersection of machine learning and material science. Disentangling the origins of uncertainties involved in microstructure growth, for example, is of great interest because future…

Cited by 15SourcePDFScholar