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Author

Oliver Sieberling

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#artificial intelligence Preprint Oct 2026

Retrieval-Centric Deep Learning in Growing Nonparametric Neural Networks

We investigate a general-purpose layer for deep learning that, instead of compressing arbitrary-size training data into fixed-size weight matrices, stores a new pair of key-value representations for every data point during training, and retrieves and recombines these representations through an attention mechanism at in...

Maximilian Schlegel, Rajai Nasser, Seijin Kobayashi et al. · 0 citations
#machine learning Preprint Sep 2026

Triadic Linear Attention: Three-Dimensional Recurrent States for Long-Context Sequence Modeling

Recurrent neural networks (RNNs) compress the historical context into a memory state of fixed size, thus allowing for constant-time inference. The memory state size is a crucial factor in their performance, as exemplified by the strong performance and resurgence of linear attention, which extends the vector-valued hidd...

Oliver Sieberling, Bharat Runwal, David Jin et al. · 0 citations

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