echo-state-networks

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#echo-state-networks

Free-Probability Kernels for Zero-Rollout Hyperparameter Selection in Reservoir Computing

arXiv cs.LG · yesterday Cached

This paper introduces a deterministic hyperparameter selection method for reservoir computing using free-probability kernels, which eliminates the need for resource-intensive rollouts and achieves performance similar to exhaustive search with significantly lower cost.

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Scalable Perturbation Learning for Online Self-Supervised Echo State Networks

arXiv cs.LG · 2026-07-08 Cached

Proposes a perturbation-based learning rule for online self-supervised learning in echo state networks that avoids reservoir-size-dependent variance growth by decomposing the learning cost and perturbing only the input-dependent component.

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#echo-state-networks

Frequency Domain Reservoir Computing

arXiv cs.LG · 2026-06-25 Cached

This paper introduces FRESCO, an Echo State Network architecture operating entirely in the frequency domain to achieve O(N) complexity for dense recurrent updates, matching state-of-the-art performance on benchmarks while reducing computational costs.

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Evolutionary Algorithm for Reservoir Learning and Yielding

arXiv cs.AI · 2026-06-01 Cached

Introduces EARLY, an evolutionary framework for evolving multi-reservoir Echo State Networks that outperforms random search on temporal learning tasks and exhibits task-dependent structural differences.

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