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Source: paper_references, paper_reference_links, observed 2026-08-06T13:21:59.302552Z
Paper Citation Record · LEDGER
As of 7 August 2026, this Paper Citation Record lists 100 of 142 outbound references and 0 inbound Pith citation observations for arXiv:2507.20853.
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Source: paper_references, paper_reference_links, observed 2026-08-06T13:21:59.302552Z
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Pith citing papers itemized under the disclosed page cap.
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100 of 142 outbound references displayed
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces The neural tangent kernel in high dimensions: Triple descent and a multi-scale theory of generalization
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Agrachev and Yu
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Akametalu, Shahab Kaynama, Jaime Fern \'a ndez Fisac, Melanie Nicole Zeilinger, Jeremy H
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces A convergence theory for deep learning via over-parameterization
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Analytic Manifold Learning: Unifying and Evaluating Representations for Continuous Control
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Robust locally-linear controllable embedding
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Dynamic programming and optimal control: Volume I, volume 4
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Model Predictive Control and Reinforcement Learning: A Unified Framework Based on Dynamic Programming
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces An introduction to aspects of geometric control theory
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces An introduction to differentiable manifolds and Riemannian geometry
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Wilkinson
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces OpenAI Gym
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Geometric Deep Learning: Grids, Groups, Graphs, Geodesics, and Gauges
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Deep Networks and the Multiple Manifold Problem
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Geometric control of mechanical systems: modeling, analysis, and design for simple mechanical control systems, volume 49
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Manifold embeddings for model-based reinforcement learning under partial observability
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Cai, Zhuoran Yang, Jason Lee, and Zhaoran Wang
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Lee, and Zhaoran Wang
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Carlsson, T
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Nonparametric Regression on Low-Dimensional Manifolds using Deep ReLU Networks : Function Approximation and Statistical Recovery
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Stochastic gradient and langevin processes
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces A deep network construction that adapts to intrinsic dimensionality beyond the domain
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Pilco: A model-based and data-efficient approach to policy search
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Gradient Descent Finds Global Minima of Deep Neural Networks
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Panangaden, and Doina Precup
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Deep learning versus kernel learning: an empirical study of loss landscape geometry and the time evolution of the neural tangent kernel
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Reinforcement Learning with Competitive Ensembles of Information-Constrained Primitives
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces A contraction theory approach to stochastic incremental stability
Reference 94
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Unresolved cited work
Reference 95
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Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Unresolved cited work
Reference 96
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Observation 1b2b0728-c285-496d-ba1a-44a16968fe52 · outbound
Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Unresolved cited work
Reference 97
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Observation c3516e98-bfa9-44e0-b99f-e3f188c2edb1 · outbound
Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Controllability of dynamical systems with constraints
Reference 98
Source-reported events for the cited work
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Observation 2d7c6e26-645a-4788-837b-44e5e543e107 · outbound
Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Robbin, Uw Madison, and Dietmar A
Reference 99
Source-reported events for the cited work
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Observation fca51baf-0015-4f99-9521-56001d4c9882 · outbound
Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Deep ReLU network approximation of functions on a manifold
Reference 100
Source-reported events for the cited work
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Observation 9ea839da-ea4b-45eb-b3c9-9d34e1dd3306 · outbound
Geometry of Neural Reinforcement Learning in Continuous State and Action Spaces Trust Region Policy Optimization
Reference 101
Source-reported events for the cited work
Unavailable: canonical work link unavailable.
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