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Updated: Dec 21, 2025

A Psychophysics Paradigm for the Collection and Analysis of Similarity Judgments
Published on: March 1, 2022
Model-Free Cluster Analysis of Physical Property Data using Information Maximizing Self-Argument Training
Ryohto Sawada1, Yuma Iwasaki2,3, Masahiko Ishida2
1System Platform Research Laboratories, NEC Corporation, Tsukuba, 305-8501, Japan. sawada49@atto.t.u-tokyo.ac.jp.
Abstract:
We present semi-supervised information maximizing self-argument training (IMSAT), a neural network-based classification method that works without the preparation of labeled data. Semi-supervised IMSAT can amplify specific differences and avoid undesirable misclassification in accordance with the purpose. We demonstrate that semi-supervised IMSAT has a comparable performance with existing methods for semi-supervised learning of image classification and can also classify real experimental data (X-ray diffraction patterns and thermoelectric hysteresis curves) in the same way even though their shape and dimensions are different. Our algorithm will contribute to the automation of big data processing and artificial intelligence-driven material development.
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