Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T14:57:03.240329Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 64 of 64 outbound references and 1 inbound Pith citation observation for arXiv:2505.16971.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T14:57:03.240329Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-09T06:31:02.800959+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-05T18:15:11.184267Z
A source-named dated measurement, never combined with another source.
Source: pith, observed 2026-08-05T18:15:13.495302Z
64 of 64 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation b73b14ae-6408-4913-8a49-c1066c020cbd · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation A three-dimensional constitutive model for the large stretch behavior of rubber elastic materials
Reference 1
Source-reported events for the cited work
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Observation ebe5b3ee-f9bc-4e5c-9f31-f516bb6bc680 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation The material-point method for granular materials
Reference 2
Source-reported events for the cited work
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Observation 15e88814-059d-4465-a960-a8f361aa6d4b · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Combining differentiable pde solvers and graph neu- ral networks for fluid flow prediction
Reference 3
Source-reported events for the cited work
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Observation 60a97d16-333c-49e7-ad70-abb3377e982b · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation End-to- end object detection with transformers
Reference 4
Source-reported events for the cited work
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Observation 78fcc308-1ec5-47ce-9829-56bfbc1615fa · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Vir- tual elastic objects
Reference 5
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Observation e9dbf252-6862-4a8c-ac85-a0204aacf7d8 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Bubbles, drops, and particles in non- Newtonian fluids
Reference 6
Source-reported events for the cited work
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Observation 9a5c8421-4297-4e8d-8001-2ddec28e1da2 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation End-to-end differen- tiable physics for learning and control
Reference 7
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Observation e073cc38-f737-4d45-9fad-c992d05de1b9 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation A differentiable physics engine for deep learning in robotics
Reference 8
Source-reported events for the cited work
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Observation 091c0884-13f3-401f-9e8c-db1b75a0fd4d · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Functional optimization of flu- idic devices with differentiable stokes flow
Reference 9
Source-reported events for the cited work
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Observation 8bd1b8a8-7a6c-419a-8710-46a01604b9de · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Diffpd: Differentiable projective dynamics
Reference 10
Source-reported events for the cited work
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Observation a2d171b4-a62d-4db9-8f3d-9f76405f20a1 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Silly rubber: an implicit material point method for simulating non-equilibrated viscoelastic and elastoplastic solids
Reference 11
Source-reported events for the cited work
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Observation 900e43a7-c91a-4482-a8fe-e4154c5c7a94 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Elasticity of soft tissues in simple elongation
Reference 12
Source-reported events for the cited work
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Observation e0f8598a-2e8e-4afb-8a65-d736152b8e8a · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Add: Analytically differentiable dynamics for multi-body systems with frictional contact
Reference 13
Source-reported events for the cited work
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Observation 2337702f-bba4-477f-bbc8-21a0d0ceb33b · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Deformable part models are convolutional neural net- works
Reference 14
Source-reported events for the cited work
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Observation 2646b83a-417a-4a31-a926-e0cd4efa3234 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Forward flow for novel view synthesis of dynamic scenes
Reference 15
Source-reported events for the cited work
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Observation 8790edb1-8976-4101-a754-476e8a0d9209 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Real2sim: Visco-elastic parameter estimation from dynamic motion
Reference 16
Source-reported events for the cited work
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Learning Physics-Consistent Material Behavior from Dynamic Displacements
Reference 17
Source-reported events for the cited work
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Observation 8e715453-92a4-4fbe-bb32-5df64f84d835 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Chainqueen: A real-time differen- tiable physical simulator for soft robotics
Reference 18
Source-reported events for the cited work
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Observation 3933f260-b5fd-4cdf-88fa-3f049a270e97 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Difftaichi: Differentiable programming for physical simulation
Reference 19
Source-reported events for the cited work
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Observation 6963acb4-3707-4a4d-9780-75fc71f18a3b · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Learning constitutive relations from indirect observations us- ing deep neural networks.Journal of Computational Physics, 416, 2020
Reference 20
Source-reported events for the cited work
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Observation 29b7e8a2-e30a-4214-994c-56eff32edb9b · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Sc-gs: Sparse-controlled gaussian splatting for editable dynamic scenes
Reference 21
Source-reported events for the cited work
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Plasticinelab: A soft-body manipulation benchmark with differentiable physics
Reference 22
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Observation 7f2c31ef-99c8-479e-b9d9-a362427959bc · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation The affine particle-in-cell method
Reference 23
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Observation 20725c3f-da3b-4339-8211-0c106e36af87 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Learning category-specific mesh reconstruc- tion from image collections
Reference 24
Source-reported events for the cited work
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Physics-informed ma- chine learning
Reference 25
Source-reported events for the cited work
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Observation df7a1a55-641c-4d67-9e3a-7244ad95eac0 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation 3d gaussian splatting for real-time radiance field rendering
Reference 26
Source-reported events for the cited work
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Observation f3dcaa62-b0dc-4482-bef6-9ec265809210 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Segment any- thing
Reference 27
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Observation cdbf7069-d19c-466f-8bd1-6343f2b49af7 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Drucker-prager elastoplasticity for sand animation
Reference 28
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Observation fdbf39ad-d8e1-45c3-a331-47b7d7d59637 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Polyconvex anisotropic hy- perelasticity with neural networks
Reference 29
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Plasticitynet: Learning to simulate metal, sand, and snow for optimization time integration
Reference 30
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Pac-nerf: Physics augmented continuum neural ra- diance fields for geometry-agnostic system identification
Reference 31
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Observation ef17cddf-5b99-4699-bdb8-c543f618799c · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Dynibar: Neural dynamic image-based rendering
Reference 32
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Differen- tiable cloth simulation for inverse problems
Reference 33
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Observation d1ba87f6-d077-4958-81f5-56b6a7dc164f · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation A learning-based multiscale method and its application to inelastic impact problems
Reference 34
Source-reported events for the cited work
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Observation 54675fe2-a816-4803-947f-8711b70788e0 · outbound
UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Soft ras- terizer: A differentiable renderer for image-based 3d reason- ing
Reference 35
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Reference 36
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Diffaqua: A differentiable computational design pipeline for soft underwater swimmers with shape interpolation
Reference 37
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Risp: Rendering-invariant state pre- dictor with differentiable simulation and rendering for cross- domain parameter estimation
Reference 38
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Reference 39
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Nerf: Representing scenes as neural radiance fields for view syn- thesis
Reference 40
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Reference 41
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Hypernerf: A higher- dimensional representation for topologically varying neural radiance fields
Reference 42
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Learning mesh-based simulation with graph networks
Reference 43
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation D-nerf: Neural radiance fields for dynamic scenes
Reference 44
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Differentiable simulation of soft multi-body systems
Reference 45
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Reference 46
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Reference 47
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Reference 48
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation The elasticity of a network of long-chain molecules—ii
Reference 49
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation Sobolev training of thermodynamic-informed neural networks for interpretable elasto-plasticity models with level set hardening
Reference 50
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Reference 51
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Reference 52
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Reference 53
Source-reported events for the cited work
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Reference 54
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Reference 55
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Reference 56
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Reference 57
Source-reported events for the cited work
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Reference 58
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Reference 59
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Reference 60
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Reference 61
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation The ground truth state includes the position x, velocity v, affine velocity C, and deformation gradient F
Reference 62
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Reference 63
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UniPhy: Learning a Unified Constitutive Model for Inverse Physics Simulation In Material Point Method (MPM), each particle has a deformation gradient F which is projected on to the yield surface using a return mapping G
Reference 64
Source-reported events for the cited work
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Reference 29
Source-reported events for the cited work
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