Continual learning of context-dependent processing in neural networks

被引:2
|
作者
Guanxiong Zeng
Yang Chen
Bo Cui
Shan Yu
机构
[1] Chinese Academy of Sciences,Brainnetome Center and National Laboratory of Pattern Recognition, Institute of Automation
[2] University of Chinese Academy of Sciences,Center for Excellence in Brain Science and Intelligence Technology
[3] Chinese Academy of Sciences,undefined
来源
Nature Machine Intelligence | 2019年 / 1卷
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学科分类号
摘要
Deep neural networks are powerful tools in learning sophisticated but fixed mapping rules between inputs and outputs, thereby limiting their application in more complex and dynamic situations in which the mapping rules are not kept the same but change according to different contexts. To lift such limits, we developed an approach involving a learning algorithm, called orthogonal weights modification, with the addition of a context-dependent processing module. We demonstrated that with orthogonal weights modification to overcome catastrophic forgetting, and the context-dependent processing module to learn how to reuse a feature representation and a classifier for different contexts, a single network could acquire numerous context-dependent mapping rules in an online and continual manner, with as few as approximately ten samples to learn each. Our approach should enable highly compact systems to gradually learn myriad regularities of the real world and eventually behave appropriately within it.
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页码:364 / 372
页数:8
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