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Survey on Memory-Augmented Neural Networks: Cognitive Insights to AI Applications

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arxiv 2312.06141 v2 pith:KCH433NI submitted 2023-12-11 cs.AI

classification cs.AI
keywords memoryneuralmannsnetworkstheyapplicationsinsightsmemory-augmented
verification ladder T0 review T1 audit T2 compute T3 formal
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This paper explores Memory-Augmented Neural Networks (MANNs), delving into how they blend human-like memory processes into AI. It covers different memory types, like sensory, short-term, and long-term memory, linking psychological theories with AI applications. The study investigates advanced architectures such as Hopfield Networks, Neural Turing Machines, Correlation Matrix Memories, Memformer, and Neural Attention Memory, explaining how they work and where they excel. It dives into real-world uses of MANNs across Natural Language Processing, Computer Vision, Multimodal Learning, and Retrieval Models, showing how memory boosters enhance accuracy, efficiency, and reliability in AI tasks. Overall, this survey provides a comprehensive view of MANNs, offering insights for future research in memory-based AI systems.

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