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Superposition of many models into one

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abstract

We present a method for storing multiple models within a single set of parameters. Models can coexist in superposition and still be retrieved individually. In experiments with neural networks, we show that a surprisingly large number of models can be effectively stored within a single parameter instance. Furthermore, each of these models can undergo thousands of training steps without significantly interfering with other models within the superposition. This approach may be viewed as the online complement of compression: rather than reducing the size of a network after training, we make use of the unrealized capacity of a network during training.

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cs.NE 1

years

2026 1

verdicts

UNVERDICTED 1

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Distilling a Modular Reservoir Through a Genomic Bottleneck

cs.NE · 2026-06-20 · unverdicted · novelty 7.0

Hypernetworks distill modular reservoir connectivity via a genomic bottleneck to generate sparse recurrent networks solving difficult temporal tasks with minimal training and maintained robustness.

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  • Distilling a Modular Reservoir Through a Genomic Bottleneck cs.NE · 2026-06-20 · unverdicted · none · ref 5 · internal anchor

    Hypernetworks distill modular reservoir connectivity via a genomic bottleneck to generate sparse recurrent networks solving difficult temporal tasks with minimal training and maintained robustness.