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Source: paper_references, paper_reference_links, observed 2026-08-05T12:50:04.201305Z
Paper Citation Record · LEDGER
As of 8 August 2026, this Paper Citation Record lists 64 of 64 outbound references and 0 inbound Pith citation observations for arXiv:2509.01234.
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Source: paper_references, paper_reference_links, observed 2026-08-05T12:50:04.201305Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00
Pith citing papers itemized under the disclosed page cap.
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Source: cited_works
64 of 64 outbound references displayed
External citation measurements
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Observation 6c6296a4-5ca4-41aa-af01-3b362cc1a1ed · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Highly accurate protein structure prediction with alphafold
Reference 1
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Prob- abilistic weather forecasting with machine learning
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Observation 0f9af946-bf81-4171-a1e2-4f96d6136c7c · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Denoising diffusion probabilistic models
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Observation f8080c4a-ca3d-4dfe-9270-97a7de2ee367 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Operator learning for predicting multiscale bubble growth dynamics
Reference 4
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Observation 8a97fe3b-50fe-452b-b1ea-b8f1a3ca691d · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Systems biology informed deep learning for inferring parameters and hidden dynamics
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Promising directions of machine learning for partial differential equations
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Artifi- cial intelligence for partial differential equations in computational mechanics: A review
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Observation ea72d19b-6b6e-4ab0-a416-d82ebcb007ee · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Neural operator prediction of linear instability waves in high-speed boundary layers
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Observation b4e0a869-fab1-4d7d-86da-deb8b4df0606 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Identifying heterogeneous micromechanical properties of biological tissues via physics-informed neural networks
Reference 9
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Observation 43227ff2-6733-4829-b810-a1dbe71577b8 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations A noninvasive method for determining elastic parameters of valve tissue using physics-informed neural networks
Reference 10
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Neural-operator element method: Efficient and scalable finite element method enabled by reusable neural operators
Reference 11
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Data-driven iden- tification of parametric partial differential equations
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Data-driven deep learning of partial differential equations in modal space
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Observation 17b88dd0-2fc6-464b-a60c-6e2630bd2306 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Data driven approximation of parametrized PDEs by reduced basis and neural networks
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Observation 652bbe71-1b0a-47bb-b91b-9da1f6aea301 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Physics-informed neural networks: A deep learning framework for solving forward and inverse problems involving nonlinear partial differential equations
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Observation 1b523307-53ce-42f3-b766-eea5ac7c4259 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations DeepXDE: A deep learning library for solving differential equations
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Observation 4b8d8f13-39b2-462f-8b17-b1a0670fcaf7 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Physics-informed machine learning
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Observation 5a621549-4d72-485c-8019-5541f9b4b362 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Scientific machine learning through physics–informed neural networks: Where we are and what’s next
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Physics-informed neural networks for inverse problems in nano-optics and metamaterials
Reference 19
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations PINNacle: A comprehensive benchmark of physics- informed neural networks for solving PDEs
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Automatic differentiation in PyTorch
Reference 21
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Observation 16663ee8-c1d5-436e-96e8-e8b17477b8f1 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations fPINNs: Fractional physics-informed neural networks
Reference 22
Source-reported events for the cited work
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Quantifying total uncertainty in physics-informed neural networks for solving forward and inverse stochastic problems
Reference 23
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Observation 26f65e6f-e05d-492c-bbff-c491ee5cbe9d · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Physics-informed neural networks with hard constraints for inverse design
Reference 24
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Observation 1eb2ba94-68e3-4460-bbd9-62f728a06851 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Dive into Deep Learning
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Physics-informed multi-LSTM networks for meta- modeling of nonlinear structures
Reference 26
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Observation 0030afd3-7c3b-454a-8853-ac8d73055a22 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Approximation theory of the MLP model in neural networks
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Observation c71d73ac-fb97-42d5-90f6-177d35093a72 · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Learning nonlinear operators via DeepONet based on the universal approximation theorem of operators
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Koop- man neural operator as a mesh-free solver of non-linear partial differential equations
Reference 29
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Approximations of continuous functionals by neural networks with application to dynamic systems
Reference 30
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Observation 59a2bc01-9961-4f48-9e69-1aa69c0aa85c · outbound
RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations A comprehensive and fair comparison of two neural operators (with practical extensions) based on F AIR data.Computer Methods in Applied Mechanics and Engineering, 393:114778, 2022
Reference 31
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Multifidelity deep neural operators for efficient learning of partial differential equations with application to fast inverse design of nanoscale heat transport
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Fourier-DeepONet: Fourier-enhanced deep operator networks for full waveform inversion with improved accuracy, generalizability, and robustness
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations A scalable framework for learning the geometry-dependent solution operators of partial differential equations
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Stochastic operator network: A stochastic maximum principle based approach to operator learning
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Fundiff: Diffusion models over function spaces for physics-informed generative modeling
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Fourier Neural Operator for Parametric Partial Differential Equations
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Wavelet neural operator for solving parametric partial differential equations in computational mechanics problems
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Laplace neural operator for solving differential equations
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Efficient training of physics-informed neural networks via importance sampling
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Gradient-enhanced physics- informed neural networks for forward and inverse pde problems
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations A comprehensive study of non-adaptive and residual-based adaptive sampling for physics-informed neural networks
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Residual-based adaptivity for two-phase flow simulation in porous media using physics-informed neural networks
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Mitigating Propagation Failures in Physics-informed Neural Networks using Retain-Resample-Release (R3) Sampling
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RAMS: Residual-based adversarial-gradient moving sample method for scientific machine learning in solving partial differential equations Global stabilization of two dimensional viscous Burg- ers’ equation by nonlinear Neumann boundary feedback control and its finite element analysis
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Reference 64
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No inbound Pith citation observations are available.