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NACH

Description: The package includes the python code of the NACH algorithm for Robust Semi-Supervised Learning when Not All Classes have Labels. [1].

References:
[1] Lan-Zhe Guo∗, Yi-Ge Zhang∗, Zhi-Fan Wu, Jie-Jing Shao, Yu-Feng Li. Robust Semi-Supervised Learning when Not All Classes have Labels. In: Advances in Neural Information Processing Systems 35 (NeurIPS 2022), New Orleans, LA, 2022.

ATTN: This package is free for academic usage. You can run it at your own risk. For other purposes, please contact .

ATTN2: This package was developed by , , and . For any problem concerning the code, please feel free to contact any of the authors.

Requirement: The package was developed with Python.

Download: [code] (406.00MB)
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