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Paper Citation Record · LEDGER

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning

As of 21 August 2026, this Paper Citation Record lists 40 of 40 outbound references and 1 inbound Pith citation observation for arXiv:2507.14736.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2507.14736 v1

Coverage vector

measured 40 of 40 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-08-06T15:55:37.415084Z

measured 41 of 41 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-21T06:32:19.484+00:00

measured 1 of 1 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-05-18T13:00:27.749673Z

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: arxiv_reference, observed 2026-05-18T13:01:23.593607Z

Reference resolution

40 of 40 outbound references displayed

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External citation measurements

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Outbound references

Observation 1529e61d-3d56-4248-8900-dcff23ca077b · outbound

This paper cites write newline.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning write newline

Reference 1

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Observation 3ee09e3f-1378-462f-a12d-9b82fc8fbe43 · outbound

This paper cites Layer Normalization.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Layer Normalization

Reference 2

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source=arxiv_source observed=2026-08-06T15:55:33.474900Z digest=sha256:2871f0510f1a8cb5eb3f139c9653b05de54dfd588e7d35830d0e22e4a51df646

Observation adc39da1-4eab-472f-9971-8e69aba96167 · outbound

This paper cites Ball, Laura M.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Ball, Laura M

Reference 3

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Observation 35576cc5-837a-4b8a-9879-c25f2c00a829 · outbound

This paper cites Bellemare, Yavar Naddaf, J.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Bellemare, Yavar Naddaf, J

Reference 4

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Observation dcadcc2a-5089-4030-afa2-f807fe077336 · outbound

This paper cites Adaptive rational activations to boost deep reinforcement learning.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Adaptive rational activations to boost deep reinforcement learning

Reference 5

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Observation 44c2154d-020f-41ec-8d18-4d2d9f1919dc · outbound

This paper cites Sample-efficient reinforcement learning by breaking the replay ratio barrier.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Sample-efficient reinforcement learning by breaking the replay ratio barrier

Reference 6

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Observation 558e5c0e-9253-43d7-8bf9-fa01c162a910 · outbound

This paper cites Sample-efficient reinforcement learning by breaking the replay ratio barrier.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Sample-efficient reinforcement learning by breaking the replay ratio barrier

Reference 7

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Observation 1863f504-86c8-4d0a-96ed-2e2f4b653f6e · outbound

This paper cites Abbeel, and S.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Abbeel, and S

Reference 8

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Observation 1e127941-75c2-44b4-a79c-2706397dc9e0 · outbound

This paper cites Rainbow: Combining improvements in deep reinforcement learning.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Rainbow: Combining improvements in deep reinforcement learning

Reference 9

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This paper cites Neural tangent kernel: Convergence and generalization in neural networks.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Neural tangent kernel: Convergence and generalization in neural networks

Reference 10

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Observation cef2994e-e1ef-44d0-bf1b-526390a46469 · outbound

This paper cites Maintaining Plasticity in Continual Learning via Regenerative Regularization.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Maintaining Plasticity in Continual Learning via Regenerative Regularization

Reference 11

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Observation 4bfbcbc3-15a9-4769-8931-49954e548b15 · outbound

This paper cites SimBa: Simplicity Bias for Scaling Up Parameters in Deep Reinforcement Learning.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning SimBa: Simplicity Bias for Scaling Up Parameters in Deep Reinforcement Learning

Reference 12

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Unresolved cited work

Reference 13

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Unresolved cited work

Reference 14

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Unresolved cited work

Reference 15

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Observation 435a7330-03a4-4c59-992d-cf2d890c084d · outbound

This paper cites Functional regularization for reinforcement learning via learned fourier features.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Functional regularization for reinforcement learning via learned fourier features

Reference 16

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Observation a9c8ffdb-9a6b-41e7-a2b5-8bf457f1ff85 · outbound

This paper cites Understanding and preventing capacity loss in reinforcement learning.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Understanding and preventing capacity loss in reinforcement learning

Reference 17

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Understanding plasticity in neural networks

Reference 18

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Understanding plasticity in neural networks

Reference 19

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Frequency and Generalisation of Periodic Activation Functions in Reinforcement Learning

Reference 20

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Playing Atari with Deep Reinforcement Learning

Reference 21

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Human-level control through deep reinforcement learning

Reference 22

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Pad \' e activation units: End-to-end learning of flexible activation functions in deep networks

Reference 23

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Pad\'e Activation Units: End-to-end Learning of Flexible Activation Functions in Deep Networks

Reference 24

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This paper cites Overestimation, Overfitting, and Plasticity in Actor-Critic: the Bitter Lesson of Reinforcement Learning.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Overestimation, Overfitting, and Plasticity in Actor-Critic: the Bitter Lesson of Reinforcement Learning

Reference 25

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Observation 7b5582cd-c7f1-41cc-98de-d5323d930bd3 · outbound

This paper cites Bigger, Regularized, Optimistic: scaling for compute and sample-efficient continuous control.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Bigger, Regularized, Optimistic: scaling for compute and sample-efficient continuous control

Reference 26

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Courville

Reference 27

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning On the difficulty of training recurrent neural networks

Reference 28

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This paper cites Data-Efficient Reinforcement Learning with Self-Predictive Representations.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Data-Efficient Reinforcement Learning with Self-Predictive Representations

Reference 29

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Courville, Marc G

Reference 30

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This paper cites The Dormant Neuron Phenomenon in Deep Reinforcement Learning.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning The Dormant Neuron Phenomenon in Deep Reinforcement Learning

Reference 31

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning The dormant neuron phenomenon in deep reinforcement learning

Reference 32

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Srinivasan, B

Reference 33

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Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning DeepMind Control Suite

Reference 35

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source=arxiv_source observed=2026-08-06T15:55:36.701148Z digest=sha256:470344228ce051a1570c56fb4291f090a45155c42dafa8f29d974f6c99746a85

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This paper cites Overcoming the spectral bias of neural value approximation.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Overcoming the spectral bias of neural value approximation

Reference 36

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Observation 5a28ba70-d09d-4dd6-9af1-03ec846d98e7 · outbound

This paper cites Meta-world: A benchmark and evaluation for multi-task and meta reinforcement learning.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Meta-world: A benchmark and evaluation for multi-task and meta reinforcement learning

Reference 37

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-21T06:32:19.484+00:00.

source=arxiv_source observed=2026-08-06T15:55:36.911464Z digest=sha256:95e5bd92714bac806ebd72156f64b15cd8062d1b27dd5ae7bac2e2a3fb227650

Observation 0d035fc3-3f1e-4084-8484-0a04baf6e10c · outbound

This paper cites Meta-World: A Benchmark and Evaluation for Multi-Task and Meta Reinforcement Learning.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Meta-World: A Benchmark and Evaluation for Multi-Task and Meta Reinforcement Learning

Reference 38

Resolution
unresolved
no resolver link, observed 2026-08-06T15:55:36.985972Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation ecf2534e-7a8b-4eda-9ac2-6ab9a5a79cb1 · outbound

This paper cites @esa (Ref.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning @esa (Ref

Reference 39

Resolution
unresolved
no resolver link, observed 2026-08-06T15:55:37.089719Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation 7b7e0427-d2d3-4857-9674-499755d9faba · outbound

This paper cites an unresolved cited work.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Unresolved cited work

Reference 40

Resolution
unresolved
no resolver link, observed 2026-08-06T15:55:37.240762Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=arxiv_source observed=2026-08-06T15:55:37.240762Z digest=sha256:860fcbdf99f6d5fc2a8e6e4b9a29b8a745e42166d3b28ab161ae79c691f7fb83

Observation ed94b99e-8126-4a95-8dc9-b0283c482017 · outbound

This paper cites an unresolved cited work.

Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning Unresolved cited work

Reference 41

Resolution
malformed identifier
no resolver link, observed 2026-08-06T15:55:37.415084Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=arxiv_source observed=2026-08-06T15:55:37.415084Z digest=sha256:0dc27292299b5ccb5bf6f1bf0160fef72add0fcecaf2ab26c0c4adf089486ebc

Pith citing papers

Observation c1206dab-2e58-4eeb-a660-3add0f8b8c9b · inbound

Activation Function Design Sustains Plasticity in Continual Learning cites this paper.

Activation Function Design Sustains Plasticity in Continual Learning Balancing Expressivity and Robustness: Constrained Rational Activations for Reinforcement Learning

Reference 24

Resolution
verified exact
arxiv_id, observed 2026-05-18T13:01:23.595778Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-21T06:32:19.484+00:00.

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