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11 Pith papers cite this work. Polarity classification is still indexing.

11 Pith papers citing it

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2026 10 2025 1

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UNVERDICTED 11

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representative citing papers

Decision-Aligned Evaluation of Uncertainty Quantification

cs.LG · 2026-06-25 · unverdicted · novelty 6.0

Introduces decision-alignment to evaluate uncertainty metrics against downstream decision utilities and proposes prior-weighted proper scoring rules that align better in benchmarks and case studies.

Optimizing Multidimensional Scaling in Gini Metric Spaces

cs.LG · 2026-05-24 · unverdicted · novelty 4.0

Gini MDS replaces Euclidean distance in multidimensional scaling with a rank-and-value-based pseudo-distance controlled by a hyperparameter, claimed to yield more robust embeddings on noisy data than standard MDS.

Neuromorphic computing with optomechanical oscillators

cond-mat.mes-hall · 2026-04-13 · unverdicted · novelty 4.0

A network of optomechanical oscillators is modeled as a platform for neuromorphic computing, with a demonstration that five nodes in all-to-all coupling can implement an XOR gate.

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Showing 3 of 3 citing papers after filters.

  • Decision-Aligned Evaluation of Uncertainty Quantification cs.LG · 2026-06-25 · unverdicted · none · ref 84

    Introduces decision-alignment to evaluate uncertainty metrics against downstream decision utilities and proposes prior-weighted proper scoring rules that align better in benchmarks and case studies.

  • What changes after deployment? A survey on On-device Learning in TinyML cs.LG · 2026-05-29 · unverdicted · none · ref 30

    A survey of on-device learning in TinyML organized by distribution change regimes, highlighting influences on applications, hardware, and solutions plus a gap between benchmarks and deployments.

  • Optimizing Multidimensional Scaling in Gini Metric Spaces cs.LG · 2026-05-24 · unverdicted · none · ref 35

    Gini MDS replaces Euclidean distance in multidimensional scaling with a rank-and-value-based pseudo-distance controlled by a hyperparameter, claimed to yield more robust embeddings on noisy data than standard MDS.