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Paper Citation Record · LEDGER

A Variational Framework for the Complexity of PDE Solutions

As of 9 August 2026, this Paper Citation Record lists 49 of 49 outbound references and 1 inbound Pith citation observation for arXiv:2510.21290.

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pith.paper-citation-record.v1
2510.21290 v3

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measured 49 of 49 reference resolution

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measured 50 of 50 standing notices

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measured 1 of 1 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-08-04T09:40:32.886359Z

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49 of 49 outbound references displayed

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Outbound references

Observation 7cb581b1-2b9e-42a9-9400-2d9f6c987b61 · outbound

This paper cites On computable numbers, with an application to the entscheidungsproblem.J.

A Variational Framework for the Complexity of PDE Solutions On computable numbers, with an application to the entscheidungsproblem.J

Reference 1

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Observation c48c8a78-690e-4df7-99a6-677eddecadfe · outbound

This paper cites Monte carlo solution of partial differential equations using a hybrid computer.IEEE Trans.

A Variational Framework for the Complexity of PDE Solutions Monte carlo solution of partial differential equations using a hybrid computer.IEEE Trans

Reference 2

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This paper cites The wave equation with computable ini- tial data whose unique solution is nowhere computable.MLQ Math.

A Variational Framework for the Complexity of PDE Solutions The wave equation with computable ini- tial data whose unique solution is nowhere computable.MLQ Math

Reference 3

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Observation 72bfc2ea-77fa-4325-9b1f-a7cafa4471c6 · outbound

This paper cites Computing schr¨ odinger propagators on type-2 turing machines.J.

A Variational Framework for the Complexity of PDE Solutions Computing schr¨ odinger propagators on type-2 turing machines.J

Reference 4

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Observation 90576eee-2616-4fc9-a630-34318159796a · outbound

This paper cites Complexity blowup for solutions of the laplace and the diffusion equation, 2023.

A Variational Framework for the Complexity of PDE Solutions Complexity blowup for solutions of the laplace and the diffusion equation, 2023

Reference 5

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This paper cites American Mathematical Society, Providence, RI, March 2022.

A Variational Framework for the Complexity of PDE Solutions American Mathematical Society, Providence, RI, March 2022

Reference 6

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This paper cites Soft- ware, environments, tools.

A Variational Framework for the Complexity of PDE Solutions Soft- ware, environments, tools

Reference 7

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Observation cdcabe87-f751-4f42-b3c4-da6cc683c6d9 · outbound

This paper cites Least- squares space-time formulation for advection-diffusion problem with efficient adaptive solver based on matrix compression.

A Variational Framework for the Complexity of PDE Solutions Least- squares space-time formulation for advection-diffusion problem with efficient adaptive solver based on matrix compression

Reference 8

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Observation 01230a5e-03f9-4e40-9dd2-28f7b385867c · outbound

This paper cites Deep least-squares methods: An unsupervised learning-based numerical method for solving elliptic PDEs.J.

A Variational Framework for the Complexity of PDE Solutions Deep least-squares methods: An unsupervised learning-based numerical method for solving elliptic PDEs.J

Reference 9

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Observation 07f7587c-b52c-41ec-a046-c09bd0d8979e · outbound

This paper cites Tackling the curse of dimensionality with physics-informed neural networks.

A Variational Framework for the Complexity of PDE Solutions Tackling the curse of dimensionality with physics-informed neural networks

Reference 10

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Observation 22bd4767-de64-4781-9402-962219c08172 · outbound

This paper cites Polynomial differentiation decreases the training time complexity of physics-informed neural networks and strengthens their approximation power.Mach.

A Variational Framework for the Complexity of PDE Solutions Polynomial differentiation decreases the training time complexity of physics-informed neural networks and strengthens their approximation power.Mach

Reference 11

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Observation f32dcc43-5ee3-4d23-b5d9-d3db5c9bc712 · outbound

This paper cites Dissertation, Technische Universit¨ at Dresden, June 2025.

A Variational Framework for the Complexity of PDE Solutions Dissertation, Technische Universit¨ at Dresden, June 2025

Reference 12

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Observation 3195eee4-64b2-4c4d-ba49-6f14ef287a3e · outbound

This paper cites A variational principle for gradient flows.Math.

A Variational Framework for the Complexity of PDE Solutions A variational principle for gradient flows.Math

Reference 13

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This paper cites Lectures in Mathematics.

A Variational Framework for the Complexity of PDE Solutions Lectures in Mathematics

Reference 14

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This paper cites Cambridge University Press, Cambridge, England, June 2012.

A Variational Framework for the Complexity of PDE Solutions Cambridge University Press, Cambridge, England, June 2012

Reference 16

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This paper cites Noncomputability in analysis and physics: A complete determination of the class of noncomputable linear operators.

A Variational Framework for the Complexity of PDE Solutions Noncomputability in analysis and physics: A complete determination of the class of noncomputable linear operators

Reference 17

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This paper cites Turing meets circuit theory: Not every continuous- time LTI system can be simulated on a digital computer.IEEE Trans.

A Variational Framework for the Complexity of PDE Solutions Turing meets circuit theory: Not every continuous- time LTI system can be simulated on a digital computer.IEEE Trans

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This paper cites Is the linear schr¨ odinger propagator turing computable? InComputability and Complexity in Analysis, Lecture notes in computer science, pages 369–377.

A Variational Framework for the Complexity of PDE Solutions Is the linear schr¨ odinger propagator turing computable? InComputability and Complexity in Analysis, Lecture notes in computer science, pages 369–377

Reference 19

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Observation 26d836d0-98cd-4d3f-bbe2-23aed5efb3f1 · outbound

This paper cites On the computational complexity of the dirichlet problem for poisson’s equation.Math.

A Variational Framework for the Complexity of PDE Solutions On the computational complexity of the dirichlet problem for poisson’s equation.Math

Reference 20

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Observation cf8f4967-de12-4e61-8a12-ec6f6c18fac1 · outbound

This paper cites Bit- complexity of solving systems of linear evolutionary partial differential equations.

A Variational Framework for the Complexity of PDE Solutions Bit- complexity of solving systems of linear evolutionary partial differential equations

Reference 21

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This paper cites Cambridge University Press, Cambridge, England, April 2009.

A Variational Framework for the Complexity of PDE Solutions Cambridge University Press, Cambridge, England, April 2009

Reference 22

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This paper cites Negative order sobolev cubatures: preconditioners of partial differential equation learning tasks circumventing numerical stiffness.Mach.

A Variational Framework for the Complexity of PDE Solutions Negative order sobolev cubatures: preconditioners of partial differential equation learning tasks circumventing numerical stiffness.Mach

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Observation 6716d341-b06c-4387-9c0b-4b5cfe5d0352 · outbound

This paper cites Linear convergence of gra- dient and proximal-gradient methods under the Polyak- Lojasiewicz condition.

A Variational Framework for the Complexity of PDE Solutions Linear convergence of gra- dient and proximal-gradient methods under the Polyak- Lojasiewicz condition

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Observation d6c8f735-fc84-4043-9b51-0b66172ccffb · outbound

This paper cites Linear convergence of gradient and proximal-gradient methods under the polyak- lojasiewicz condition, 2020.

A Variational Framework for the Complexity of PDE Solutions Linear convergence of gradient and proximal-gradient methods under the polyak- lojasiewicz condition, 2020

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This paper cites Trefethen.Approximation theory and approximation practice, volume.

A Variational Framework for the Complexity of PDE Solutions Trefethen.Approximation theory and approximation practice, volume

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A Variational Framework for the Complexity of PDE Solutions Unresolved cited work

Reference 27

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This paper cites Multivariate polynomial approximation in the hypercube.

A Variational Framework for the Complexity of PDE Solutions Multivariate polynomial approximation in the hypercube

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This paper cites High-order integration on regular triangulated manifolds reaches super-algebraic approximation rates through cubical re-parameterizations, 2024.

A Variational Framework for the Complexity of PDE Solutions High-order integration on regular triangulated manifolds reaches super-algebraic approximation rates through cubical re-parameterizations, 2024

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This paper cites Calculation of gauss quadrature rules.Math.

A Variational Framework for the Complexity of PDE Solutions Calculation of gauss quadrature rules.Math

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This paper cites Perspectives in Mathematical Logic.

A Variational Framework for the Complexity of PDE Solutions Perspectives in Mathematical Logic

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A Variational Framework for the Complexity of PDE Solutions On the definitions of computable real continuous functions

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A Variational Framework for the Complexity of PDE Solutions McGraw-Hill series in higher mathematics

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This paper cites The direct method in the calculus of variations.

A Variational Framework for the Complexity of PDE Solutions The direct method in the calculus of variations

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A Variational Framework for the Complexity of PDE Solutions Springer, 2011

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A Variational Framework for the Complexity of PDE Solutions Applied mathematical sciences

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A Variational Framework for the Complexity of PDE Solutions Compatibility conditions for dirichlet and neumann problems of poisson’s equation on a rectangle.J

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A Variational Framework for the Complexity of PDE Solutions Analysis of fractional differential equations.J

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A Variational Framework for the Complexity of PDE Solutions Hypoelliptic operators

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Observation 8967d73e-f437-41b8-913e-f77b0a0fb48a · outbound

This paper cites Singularities of solutions of the eikonal equation.Differ.

A Variational Framework for the Complexity of PDE Solutions Singularities of solutions of the eikonal equation.Differ

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Observation 87f92392-cfa3-4597-9394-3469d05242f5 · outbound

This paper cites Revisiting subgradient method: Complexity and convergence beyond lipschitz continuity.

A Variational Framework for the Complexity of PDE Solutions Revisiting subgradient method: Complexity and convergence beyond lipschitz continuity

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Observation bcdaf464-76ed-48ff-b707-cc9c4e5f587a · outbound

This paper cites Springer International Publishing, 2015 edition, January 2014.

A Variational Framework for the Complexity of PDE Solutions Springer International Publishing, 2015 edition, January 2014

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Observation a364f81a-88be-44d0-8745-029eefc510ae · outbound

This paper cites Golub and John H.

A Variational Framework for the Complexity of PDE Solutions Golub and John H

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Observation e9033be1-ae08-41fd-b940-38362600eade · outbound

This paper cites Fast and accurate computation of Gauss– Legendre and Gauss–Jacobi quadrature nodes and weights.SIAM J.

A Variational Framework for the Complexity of PDE Solutions Fast and accurate computation of Gauss– Legendre and Gauss–Jacobi quadrature nodes and weights.SIAM J

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Observation 99a1cead-1a75-4859-9a5e-fe5f7dd1b935 · outbound

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A Variational Framework for the Complexity of PDE Solutions On the computation of the Gauss–Legendre quadrature formula with a given precision.J

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Observation 6e886cc2-54a8-459d-b08b-a13b14fb959b · outbound

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A Variational Framework for the Complexity of PDE Solutions Unresolved cited work

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Observation 57abfa14-0eb8-4d16-98b7-41ed6839b564 · outbound

This paper cites More special functions.

A Variational Framework for the Complexity of PDE Solutions More special functions

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Observation bd0929b9-0cf7-4f39-a514-14eda05d916d · outbound

This paper cites Springer monographs in mathematics.

A Variational Framework for the Complexity of PDE Solutions Springer monographs in mathematics

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Observation c6425992-120d-4ed0-b987-36b96b4cafc9 · outbound

This paper cites Traces of sobolev functions on fractal type sets and characterization of extension domains.Journal of Functional Analysis, 143(1):221–246, 1997.

A Variational Framework for the Complexity of PDE Solutions Traces of sobolev functions on fractal type sets and characterization of extension domains.Journal of Functional Analysis, 143(1):221–246, 1997

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Observation 12d5bb62-a5c9-4e87-b97c-441b4f2484c6 · outbound

This paper cites Birkh¨ auser Boston, Boston, MA, 1993.

A Variational Framework for the Complexity of PDE Solutions Birkh¨ auser Boston, Boston, MA, 1993

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Pith citing papers

Observation b34e6494-1782-458d-b8f4-d73f1dbdad7b · inbound

The Push-Forward Transform for Continuous and Robust Comparison of Dynamic Shapes cites this paper.

The Push-Forward Transform for Continuous and Robust Comparison of Dynamic Shapes A Variational Framework for the Complexity of PDE Solutions

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