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A Review of Differentiable Simulators

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arxiv 2407.05560 v1 pith:WQQA6UNJ submitted 2024-07-08 cs.RO

classification cs.RO
keywords differentiablesimulatorsreviewphysicsacrosscomputationalcurrentdesign
verification ladder T0 review T1 audit T2 compute T3 formal
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Differentiable simulators continue to push the state of the art across a range of domains including computational physics, robotics, and machine learning. Their main value is the ability to compute gradients of physical processes, which allows differentiable simulators to be readily integrated into commonly employed gradient-based optimization schemes. To achieve this, a number of design decisions need to be considered representing trade-offs in versatility, computational speed, and accuracy of the gradients obtained. This paper presents an in-depth review of the evolving landscape of differentiable physics simulators. We introduce the foundations and core components of differentiable simulators alongside common design choices. This is followed by a practical guide and overview of open-source differentiable simulators that have been used across past research. Finally, we review and contextualize prominent applications of differentiable simulation. By offering a comprehensive review of the current state-of-the-art in differentiable simulation, this work aims to serve as a resource for researchers and practitioners looking to understand and integrate differentiable physics within their research. We conclude by highlighting current limitations as well as providing insights into future directions for the field.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. First Demonstration of a Hybrid Cherenkov and Scintillation Detector in a Proof-of-Principle Axion Search at a Beam Dump

    hep-ex 2026-07 conditional novelty 7.0 of 10

    First event-by-event Cherenkov separation from sub-MeV electrons in liquid argon enables a proof-of-principle ALP search excluding new parameter space despite no observed excess.

  2. Variational Inference Using a Differentiable Multigrid Linear Solver

    math.NA 2026-08 conditional novelty 5.0 of 10

    A hand-coded adjoint multigrid solver, wrapped in JAX, enables memory-efficient variational inference for a 3D tissue-imaging inverse problem.

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