Neural Stored-program Memory
Hung Le, Truyen Tran, Svetha Venkatesh
摘要
Neural networks powered with external memory simulate computer behaviors. These models, which use the memory to store data for a neural controller, can learn algorithms and other complex tasks. In this paper, we introduce a new memory to store weights for the controller, analogous to the stored-program memory in modern computer architectures. The proposed model, dubbed Neural Stored-program Memory, augments current memory-augmented neural networks, creating differentiable machines that can switch programs through time, adapt to variable contexts and thus resemble the Universal Turing Machine. A wide range of experiments demonstrate that the resulting machines not only excel in classical algorithmic problems, but also have potential for compositional, continual, few-shot learning and question-answering tasks.
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引用它的顶会 Paper11
- Self-Attentive Associative MemoryHung Le, Truyen Tran, Svetha VenkateshICML 2020 · 被引用 61 次
- Content Addressable Memory Without Catastrophic Forgetting by Heteroassociation with a Fixed ScaffoldSugandha Sharma, Sarthak Chandra, Ila R. FieteICML 2022 · 被引用 27 次
- Learning to Rehearse in Long Sequence MemorizationZhu Zhang, Chang Zhou, Jianxin Ma, Zhijie Lin 等ICML 2021 · 被引用 12 次
- Neural Status RegistersLukas Faber, Roger WattenhoferICML 2023 · 被引用 9 次
- Neurocoder: General-Purpose Computation Using Stored Neural ProgramsHung Le, Svetha VenkateshICML 2022 · 被引用 7 次
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