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Jun, 2023
基于部分超网络的持续学习
Partial Hypernetworks for Continual Learning
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Hamed Hemati, Vincenzo Lomonaco, Davide Bacciu, Damian Borth
TL;DR
本研究提出了部分权重生成的超网络,针对连续学习中忘记问题进行了实验,发现与激活重演方法相比,部分超网络保持了先前经验的准确性,并提供了计算和最终测试准确性之间有效的平衡。
Abstract
hypernetworks
mitigate forgetting in
continual learning
(CL) by generating task-dependent weights and penalizing weight changes at a meta-model level. Unfortunately, generating all weights is not only computation
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