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Paper Citation Record · LEDGER

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps

As of 17 August 2026, this Paper Citation Record lists 83 of 83 outbound references and 2 inbound Pith citation observations for arXiv:2505.00632.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2505.00632 v2

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measured 83 of 83 reference resolution

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measured 85 of 85 standing notices

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measured 2 of 2 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-07-12T01:14:24.457057Z

measured 0 of 1 external citation measurements

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Source: arxiv_reference, observed 2026-05-10T11:50:20.972718Z

Reference resolution

83 of 83 outbound references displayed

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Outbound references

Observation b2af9380-317d-41f0-b012-7b78ea6f09dc · outbound

This paper cites Weak Gravitational Lensing.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Weak Gravitational Lensing

Reference 1

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Observation b4287e1c-7856-413e-9ad0-303638ad8ad4 · outbound

This paper cites Cosmology with cosmic shear observations: a review.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Cosmology with cosmic shear observations: a review

Reference 2

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Observation 0ac84fb3-c5d4-48c2-b106-07ca117f24d3 · outbound

This paper cites KiDS-450: Cosmological parameter constraints from tomographic weak gravitational lensing.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps KiDS-450: Cosmological parameter constraints from tomographic weak gravitational lensing

Reference 3

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Observation cbbb018b-8c90-4d58-88aa-a4ec7a5a4eb5 · outbound

This paper cites CFHTLenS revisited: assessing concordance with Planck including astrophysical systematics.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps CFHTLenS revisited: assessing concordance with Planck including astrophysical systematics

Reference 4

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Observation 2a45e9e1-d2f5-4c6c-803d-d66923e27a2e · outbound

This paper cites Cosmology from cosmic shear power spectra with Subaru Hyper Suprime-Cam first-year data.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Cosmology from cosmic shear power spectra with Subaru Hyper Suprime-Cam first-year data

Reference 5

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Observation 2bb83883-600f-4963-99fa-7b623fa5b967 · outbound

This paper cites Cosmological constraints from cosmic shear two-point correlation functions with HSC survey first-year data.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Cosmological constraints from cosmic shear two-point correlation functions with HSC survey first-year data

Reference 6

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Observation 691c6207-174e-4eed-a652-a6cf0d9d13ca · outbound

This paper cites LSST: from Science Drivers to Reference Design and Anticipated Data Products.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps LSST: from Science Drivers to Reference Design and Anticipated Data Products

Reference 7

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Observation 32e57340-6f8b-4828-8336-a63673557e0a · outbound

This paper cites Euclid preparation: I. The Euclid Wide Survey.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Euclid preparation: I. The Euclid Wide Survey

Reference 8

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Observation 186051e8-a495-4501-ba7a-6a8ce50b2f99 · outbound

This paper cites Wide-Field InfrarRed Survey Telescope-Astrophysics Focused Telescope Assets WFIRST-AFTA 2015 Report.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Wide-Field InfrarRed Survey Telescope-Astrophysics Focused Telescope Assets WFIRST-AFTA 2015 Report

Reference 9

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Observation 3ce52e0b-8ffd-4995-96db-e755269596e2 · outbound

This paper cites The Limits of Cosmic Shear.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps The Limits of Cosmic Shear

Reference 10

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Observation 614c3f6c-313d-483e-aba2-14db4be72854 · outbound

This paper cites Three-Point Correlations in Weak Lensing Surveys: Model Predictions and Applications.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Three-Point Correlations in Weak Lensing Surveys: Model Predictions and Applications

Reference 11

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Observation 6231fd74-f688-4339-9e02-e3e1a49b2a40 · outbound

This paper cites Higher-order moments of the lensing shear and other spin two fields.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Higher-order moments of the lensing shear and other spin two fields

Reference 12

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Observation a73b4bce-2390-472b-98c5-bc872f7e5830 · outbound

This paper cites CFHTLenS: Cosmological constraints from a combination of cosmic shear two-point and three-point correlations.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps CFHTLenS: Cosmological constraints from a combination of cosmic shear two-point and three-point correlations

Reference 13

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Observation f25c9d18-c474-48b7-b366-fd81b68a880f · outbound

This paper cites Weak lensing from space: first cosmological constraints from three-point shear statistics.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Weak lensing from space: first cosmological constraints from three-point shear statistics

Reference 14

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Observation 321f196d-3048-49a8-b7e4-5facefe63c55 · outbound

This paper cites On the incompleteness of the moment and correlation function hierarchy as probes of the lognormal field.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps On the incompleteness of the moment and correlation function hierarchy as probes of the lognormal field

Reference 15

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Observation 9fa3919e-1642-42d6-a0da-d0f6d2f6cd70 · outbound

This paper cites Rejuvenating the matter power spectrum: restoring information with a logarithmic density mapping.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Rejuvenating the matter power spectrum: restoring information with a logarithmic density mapping

Reference 16

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Observation 0748adff-f189-4b79-b27e-f653385dc18d · outbound

This paper cites A marked correlation function for constraining modified gravity models.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps A marked correlation function for constraining modified gravity models

Reference 17

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Observation 08f380af-af44-444b-93b2-bfc15e4865b4 · outbound

This paper cites Statistics of Dark Matter Halos from Gravitational Lensing.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Statistics of Dark Matter Halos from Gravitational Lensing

Reference 18

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Observation 76d88496-288e-45e0-a54b-612ee90ac851 · outbound

This paper cites Probing Cosmology with Weak Lensing Peak Counts.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Probing Cosmology with Weak Lensing Peak Counts

Reference 19

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Observation f8c00d3d-6444-4718-8db5-1504ac73c956 · outbound

This paper cites Cosmic voids: a novel probe to shed light on our Universe.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Cosmic voids: a novel probe to shed light on our Universe

Reference 20

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Observation 0581a4c6-41ab-470b-b23e-fda1a4049df8 · outbound

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Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Robust Morphological Measures for Large-Scale Structure in the Universe

Reference 21

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Observation 036bc109-4b3c-46d7-8773-3a1587b84c42 · outbound

This paper cites Probing Cosmology with Weak Lensing Minkowski Functionals.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Probing Cosmology with Weak Lensing Minkowski Functionals

Reference 22

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Observation 27899b3d-506e-4b53-a610-b3a12fb7d1b7 · outbound

This paper cites Mallat, Group invariant scattering, Communications on Pure and Applied Mathematics 65 (2012) 1331 [ https://onlinelibrary.wiley.com/doi/pdf/10.1002/cpa.21413].

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Mallat, Group invariant scattering, Communications on Pure and Applied Mathematics 65 (2012) 1331 [ https://onlinelibrary.wiley.com/doi/pdf/10.1002/cpa.21413]

Reference 23

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This paper cites How to quantify fields or textures? A guide to the scattering transform.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps How to quantify fields or textures? A guide to the scattering transform

Reference 24

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Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Cheng, Y.-S

Reference 25

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Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Towards an Optimal Estimation of Cosmological Parameters with the Wavelet Scattering Transform

Reference 26

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Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps New Interpretable Statistics for Large Scale Structure Analysis and Generation

Reference 27

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Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Non-Gaussian information from weak lensing data via deep learning

Reference 28

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Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Lossless, Scalable Implicit Likelihood Inference for Cosmological Fields

Reference 29

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Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Simultaneously constraining cosmology and baryonic physics via deep learning from weak lensing

Reference 30

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Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Cosmological constraints from HSC survey first-year data using deep learning

Reference 31

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Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Automatic physical inference with information maximising neural networks

Reference 32

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This paper cites Makinen, C.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Makinen, C

Reference 33

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This paper cites Translation and Rotation Equivariant Normalizing Flow (TRENF) for Optimal Cosmological Analysis.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Translation and Rotation Equivariant Normalizing Flow (TRENF) for Optimal Cosmological Analysis

Reference 34

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This paper cites HIFlow: Generating Diverse HI Maps and Inferring Cosmology while Marginalizing over Astrophysics using Normalizing Flows.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps HIFlow: Generating Diverse HI Maps and Inferring Cosmology while Marginalizing over Astrophysics using Normalizing Flows

Reference 35

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This paper cites Modeling baryonic physics in future weak lensing surveys.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Modeling baryonic physics in future weak lensing surveys

Reference 36

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Observation b50ccee6-22db-445c-9c7d-d5cba6a53b80 · outbound

This paper cites Multifield Cosmology with Artificial Intelligence.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Multifield Cosmology with Artificial Intelligence

Reference 37

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source=pdf_text observed=2026-08-16T04:44:27.479571Z digest=sha256:80a0a64da35bec7fd57b3a2b32ad5951e686387fee1e013d9e977d1740f24f9f

Observation a6067395-8fb6-4785-bfba-ba31c3094093 · outbound

This paper cites Dai and U.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Dai and U

Reference 38

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source=pdf_text observed=2026-08-16T04:44:27.482136Z digest=sha256:169db572c13b0c1eb495ad09cdce4027f07c10f0217f2ae1e37d0380b22c34fb

Observation 19e6ebac-4eba-4b8d-a5f0-dbf8bbac3823 · outbound

This paper cites Asgari, C.-A.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Asgari, C.-A

Reference 39

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source=pdf_text observed=2026-08-16T04:44:27.485796Z digest=sha256:196775cbb2de2475dfc6b052f56e9e028087beac4c7b7a9295f54495ae30d068

Observation e553eb9a-550c-4ac0-aaae-ce3435a9dcd3 · outbound

This paper cites Secco, S.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Secco, S

Reference 40

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.489476Z digest=sha256:4150464567cbbd0a04945938d5fec51d0aa42316c9f263016c4d18b07f024b1b

Observation 2a6d9666-5445-47e3-bcd7-1e612b776263 · outbound

This paper cites an unresolved cited work.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Unresolved cited work

Reference 41

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.492286Z digest=sha256:7c56604e1447a9e231f1cbeb3d24e4a1bf93fd314dea5ed81397fbffec2c0457

Observation 0f2a2198-1fa8-4db8-a7b1-e05186bd7444 · outbound

This paper cites Sohl-Dickstein, E.A.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Sohl-Dickstein, E.A

Reference 42

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.496173Z digest=sha256:0026e050851b47be5bf7e64d98da6206296f3c30682f0eae5a631c1c010d8ffa

Observation 785fee58-5934-4ec2-9913-1920cf917ca8 · outbound

This paper cites an unresolved cited work.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Unresolved cited work

Reference 43

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.499760Z digest=sha256:df444735114e356aa637eaf7dddc90ef81aeae0f4644142076f15efa40316347

Observation e52dd402-a3df-4e2b-a67f-3432481769d5 · outbound

This paper cites an unresolved cited work.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Unresolved cited work

Reference 44

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.502004Z digest=sha256:ba0a2cc510b89a84b499dc8fa95114fe5422b8a5a75e349776b4082d994c0bd4

Observation e2dd1000-fc6f-433a-bc22-036f08ede298 · outbound

This paper cites Lipman, R.T.Q.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Lipman, R.T.Q

Reference 45

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raw_fallback, observed 2026-08-16T04:44:28.236117Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.505430Z digest=sha256:53c844c8e418462f44df3d228315b4c2ed7e60cde75381fc70b4063e36703abf

Observation f71e2a17-ef55-45f6-b1a3-30f933705750 · outbound

This paper cites Can Diffusion Model Conditionally Generate Astrophysical Images?.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Can Diffusion Model Conditionally Generate Astrophysical Images?

Reference 46

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no resolver link, observed 2026-08-16T04:44:27.508931Z

Source-reported events for the cited work

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source=pdf_text observed=2026-08-16T04:44:27.508931Z digest=sha256:66c63ac1772cd32c5df6fd27ba78e4c3d73214010adc3a710a8db4e271669c5c

Observation 97e4f896-2ff8-4201-9d60-18fb3fadbcae · outbound

This paper cites Stochastic Super-resolution of Cosmological Simulations with Denoising Diffusion Models.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Stochastic Super-resolution of Cosmological Simulations with Denoising Diffusion Models

Reference 47

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source=pdf_text observed=2026-08-16T04:44:27.512046Z digest=sha256:474f9a1c676b7ae1c271117c1fa32834699cadcaa1a4c3026c38034a46949479

Observation 7e670769-c4ea-4fb5-b1b1-0609e94bd92c · outbound

This paper cites Diffusion-based mass map reconstruction from weak lensing data.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Diffusion-based mass map reconstruction from weak lensing data

Reference 48

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source=pdf_text observed=2026-08-16T04:44:27.515220Z digest=sha256:8d891d1d65b48eca2ddb003d5494a57102b7598c66a1aeb75947c087013078f7

Observation b363413a-7f90-4ae7-812a-a5f8c7dcbb7d · outbound

This paper cites Tackling the Problem of Distributional Shifts: Correcting Misspecified, High-Dimensional Data-Driven Priors for Inverse Problems.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Tackling the Problem of Distributional Shifts: Correcting Misspecified, High-Dimensional Data-Driven Priors for Inverse Problems

Reference 49

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local_arxiv, observed 2026-08-16T04:44:27.741516Z

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.518230Z digest=sha256:ac27f52b40d613e34864d70daf5af38713b4cb42702a85551b68ef24f652d880

Observation 6b914e1b-5040-42d0-aac0-a33930f509fc · outbound

This paper cites Diffusion-HMC: Parameter Inference with Diffusion-model-driven Hamiltonian Monte Carlo.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Diffusion-HMC: Parameter Inference with Diffusion-model-driven Hamiltonian Monte Carlo

Reference 50

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source=pdf_text observed=2026-08-16T04:44:27.521509Z digest=sha256:a9eecec1bdd4d0ed302321d2be7b86cbd5ddc8b396ac7f547452932df10482e8

Observation 46dce813-2545-4051-9c71-5a77d614b863 · outbound

This paper cites Gelman, X.-L.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Gelman, X.-L

Reference 51

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raw_fallback, observed 2026-08-16T04:44:28.229441Z

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.524188Z digest=sha256:802e2a8d480331e7fd62329648af882440de41a9fdf18dc396b46974b5d43f25

Observation 51f52e06-70fa-4493-8ee2-fc86ee091c12 · outbound

This paper cites Barber and F.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Barber and F

Reference 52

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raw_fallback, observed 2026-08-16T04:44:28.221571Z

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.527072Z digest=sha256:7056c939388bbd6b0f13260c82760ad0fcdb2753f0ae91e652e10490acd6778f

Observation abc684bd-ef82-42be-83b8-30adbcdf5b8a · outbound

This paper cites Lucas, C.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Lucas, C

Reference 53

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raw_fallback, observed 2026-08-16T04:44:28.214487Z

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.529829Z digest=sha256:fdbcd189ccf4c88dcb962838ec1c9f137d019fb79f3060c355592340b19474c7

Observation e42b5f1a-729b-4ca7-b6b8-2c978357b34a · outbound

This paper cites Lanzieri, J.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Lanzieri, J

Reference 54

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raw_fallback, observed 2026-08-16T04:44:28.207165Z

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.532396Z digest=sha256:5fdb7a7801aa01ee7bc144d00f959858bd508d1040b5bb1abc66389a933d196e

Observation eeeb4faf-4230-4279-83f6-cfe2664b0e42 · outbound

This paper cites A comparative study of cosmological constraints from weak lensing using Convolutional Neural Networks.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps A comparative study of cosmological constraints from weak lensing using Convolutional Neural Networks

Reference 55

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source=pdf_text observed=2026-08-16T04:44:27.534966Z digest=sha256:f00e903880f1a28ae9791ab2b050055a044237427169f4433185714cca4988f5

Observation cfccfd95-52d3-4406-bdc0-242d9e858dd1 · outbound

This paper cites an unresolved cited work.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Unresolved cited work

Reference 56

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.538067Z digest=sha256:b894a3d4b12f38e0f9be0947c7003e27c5d89282d2717c1ccdda51813b994562

Observation 8436dc58-6931-419b-9383-ecc3b1618b59 · outbound

This paper cites Andreux, T.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Andreux, T

Reference 57

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raw_fallback, observed 2026-08-16T04:44:28.192133Z

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.540561Z digest=sha256:0b3f8711bedd242b6867fa3e877ff3098a067e6600656a6a8ca8c92eb0fd7d33

Observation b31d2f85-7062-4f40-9d83-1fcbb1f7c13a · outbound

This paper cites Deep Residual Learning for Image Recognition.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Deep Residual Learning for Image Recognition

Reference 58

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source=pdf_text observed=2026-08-16T04:44:27.543410Z digest=sha256:027cfcc120ce99d38071acd8f6f84aa1d6c4c67788a10e10ed4804ab2407f1e8

Observation 0717fca9-1067-45cc-be52-0fd804a863f7 · outbound

This paper cites an unresolved cited work.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Unresolved cited work

Reference 59

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.546475Z digest=sha256:9c17a6675905a0810e37dd4b948e62b246fc4b4255effa4c8d01c1865d551f7c

Observation cb1cb0cf-6b76-4e41-9e10-d7cf73d226ba · outbound

This paper cites Skilling, The eigenvalues of mega-dimensional matrices , in Maximum Entropy and Bayesian Methods: Cambridge, England, 1988 , J.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Skilling, The eigenvalues of mega-dimensional matrices , in Maximum Entropy and Bayesian Methods: Cambridge, England, 1988 , J

Reference 60

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.549323Z digest=sha256:95c9977e0c3e0eeeaeaf3cc82c80389bd58c22ac52e102e166c9f95b06f70ed1

Observation 249ed103-0df7-46d3-b64a-e9bc7626fba7 · outbound

This paper cites Hutchinson, A stochastic estimator of the trace of the influence matrix for laplacian smoothing splines, Communications in Statistics-Simulation and Computation 18 (1989) 1059.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Hutchinson, A stochastic estimator of the trace of the influence matrix for laplacian smoothing splines, Communications in Statistics-Simulation and Computation 18 (1989) 1059

Reference 61

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.553037Z digest=sha256:e46d422d4f3db338349eee9af4312de1ef126ab3a56090cee58928e9b3078799

Observation 6fd3fdc3-55e2-4efa-8502-828d58d9c86c · outbound

This paper cites an unresolved cited work.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Unresolved cited work

Reference 62

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.555701Z digest=sha256:c30072d7e876793b6a6fa70e312a41d0dbb66b04e3c6cf52212a317fa4116c65

Observation 19c139f5-06e9-4cfa-868d-ea8e2ec924f0 · outbound

This paper cites S¨ arkk¨ a and A.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps S¨ arkk¨ a and A

Reference 63

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raw_fallback, observed 2026-08-16T04:44:28.155497Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.558282Z digest=sha256:c9deaf432671b67d0367547f32c4cae7489a57b6df807195a26e19ca72fd7520

Observation 5ac21fb2-af73-4b11-ad77-31e977c5fa1b · outbound

This paper cites McCann, A convexity principle for interacting gases , Advances in mathematics 128 (1997) 153.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps McCann, A convexity principle for interacting gases , Advances in mathematics 128 (1997) 153

Reference 64

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raw_fallback, observed 2026-08-16T04:44:28.148531Z

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.560782Z digest=sha256:014f13897e5797ca7fae2dc19d85908d34bc79ed5d202d098d615d8aaaadda5b

Observation aa90f8da-b110-41ee-a15d-20769c9ec965 · outbound

This paper cites an unresolved cited work.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Unresolved cited work

Reference 65

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raw_fallback, observed 2026-08-16T04:44:28.140918Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.563688Z digest=sha256:29eef3842838ec52660178741df1b28e9dbdbfeddd33404a9a695eca1e5e7e16

Observation e788f922-95b5-4bb4-82a4-0794c4529aaf · outbound

This paper cites The cosmological simulation code GADGET-2.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps The cosmological simulation code GADGET-2

Reference 66

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no resolver link, observed 2026-08-16T04:44:27.566148Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-16T04:44:27.566148Z digest=sha256:315637b67fa01f380e67214b58a2c3e4ff088837d7e88ebcc3399c29caf89782

Observation f07126bc-d2bd-4605-a038-cfb4e04426a7 · outbound

This paper cites Schneider, J.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Schneider, J

Reference 67

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no resolver link, observed 2026-08-16T04:44:27.569264Z

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Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-16T04:44:27.569264Z digest=sha256:2cb1cad3d3f72d62d11d6cab74d81496c27ae02f27af0d1aa650803551a133a5

Observation 08dca24c-7726-4f14-9e1c-60bcd5786424 · outbound

This paper cites The Impact of Baryons on Cosmological Inference from Weak Lensing Statistics.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps The Impact of Baryons on Cosmological Inference from Weak Lensing Statistics

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verified exact
local_arxiv, observed 2026-08-16T04:44:27.705287Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.571983Z digest=sha256:c52f5fb436e1c24864cea76af9746e03325a11017a7c76891508ad61f1eab3a4

Observation bba21698-0e25-4443-bcf8-eb30bd3fa41f · outbound

This paper cites Modelling the large scale structure of the Universe as a function of cosmology and baryonic physics.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Modelling the large scale structure of the Universe as a function of cosmology and baryonic physics

Reference 69

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no resolver link, observed 2026-08-16T04:44:27.575842Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-16T04:44:27.575842Z digest=sha256:6437f63b46d6ead4cda96f71e1cb7dc727ae9294e642a8e83bee31dd26c2c326

Observation b87445ea-82a1-45c6-bdda-a90485043ec4 · outbound

This paper cites LensExtractor: A Convolutional Neural Network in Search of Strong Gravitational Lenses.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps LensExtractor: A Convolutional Neural Network in Search of Strong Gravitational Lenses

Reference 70

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unresolved
no resolver link, observed 2026-08-16T04:44:27.578636Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-16T04:44:27.578636Z digest=sha256:c0334fac15a3e6824257ce05875fab6d53d531113bbed8dfff483282f4427fa9

Observation 0e0efb66-1163-4b30-9d2d-c0c76b034ad9 · outbound

This paper cites Deep Learning improves identification of Radio Frequency Interference.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Deep Learning improves identification of Radio Frequency Interference

Reference 71

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unresolved
no resolver link, observed 2026-08-16T04:44:27.581105Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-08-16T04:44:27.581105Z digest=sha256:11168fac60fc8dcc73e988e1b105482ef29c688cbfd5649d0d39bf47c4715e56

Observation 2574405e-f275-4af6-be4d-67b6dc0bb637 · outbound

This paper cites Terasawa, X.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Terasawa, X

Reference 72

Resolution
verified fuzzy
raw_fallback, observed 2026-08-16T04:44:28.133387Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.583831Z digest=sha256:1887a3cdd3cc4b2377693b262a89772b9ddcb66f07b0392aaf45a4f55cb087c7

Observation 2c683c76-3e03-4238-885c-ab6939ff7bf6 · outbound

This paper cites Kingma and P.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Kingma and P

Reference 73

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verified fuzzy
raw_fallback, observed 2026-08-16T04:44:28.124505Z

Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

source=pdf_text observed=2026-08-16T04:44:27.586816Z digest=sha256:84a36f2da8a7e82523d05d446df6d8b4a54459c9618af6c6c6707365744c7e4f

Observation 23d2aefb-3834-4712-a094-83cc21721c32 · outbound

This paper cites Kirichenko, P.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Kirichenko, P

Reference 74

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

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Observation dd9c4379-f6e7-4ac3-b7c5-296d92e0af61 · outbound

This paper cites Grathwohl, K.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Grathwohl, K

Reference 75

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

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Observation 2ef5c512-1f3c-4370-91ef-97fd1f61f116 · outbound

This paper cites Detecting Out-of-Distribution Inputs to Deep Generative Models Using Typicality.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Detecting Out-of-Distribution Inputs to Deep Generative Models Using Typicality

Reference 76

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation b8548575-07ae-4b99-a97f-bc3c0fb06c6a · outbound

This paper cites Can Your Generative Model Detect Out-of-Distribution Covariate Shift?.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Can Your Generative Model Detect Out-of-Distribution Covariate Shift?

Reference 77

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

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Observation 2cb6fccb-ed84-4c8e-8d0f-149d581b8a89 · outbound

This paper cites Ronneberger, P.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Ronneberger, P

Reference 78

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

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Observation fd064470-f9dc-4955-ab86-50fc11264288 · outbound

This paper cites Attention Is All You Need.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Attention Is All You Need

Reference 79

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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation 78bad342-1b60-45b2-9fe3-066ff084130b · outbound

This paper cites normflows: A PyTorch Package for Normalizing Flows.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps normflows: A PyTorch Package for Normalizing Flows

Reference 80

Resolution
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

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Observation 98b11f7e-875d-4cf3-912c-766fc7fcc348 · outbound

This paper cites an unresolved cited work.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Unresolved cited work

Reference 81

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No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

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Observation 931b1daf-e651-4f2d-9894-840130fef554 · outbound

This paper cites an unresolved cited work.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps Unresolved cited work

Reference 82

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

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Observation 7b41abfa-b51e-4dbd-9709-34427fb4c042 · outbound

This paper cites The output Y is merged with the original input via a residual connection and further refined with normalization and feed-forward layers.

Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps The output Y is merged with the original input via a residual connection and further refined with normalization and feed-forward layers

Reference 83

Resolution
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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

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Pith citing papers

Observation ff9caffa-46b8-45ce-a367-0374782ab23a · inbound

FAIR Universe Weak Lensing ML Uncertainty Challenge: Handling Uncertainties and Distribution Shifts for Precision Cosmology cites this paper.

FAIR Universe Weak Lensing ML Uncertainty Challenge: Handling Uncertainties and Distribution Shifts for Precision Cosmology Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps

Reference 43

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Source-reported events for the cited work

No event found in the named queried sources as of 2026-08-16T06:30:59.297886+00:00.

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Observation c714e6f6-327a-471d-a88c-8800d1f08ff3 · inbound

Machine Learning and the SKA for Cosmic Dawn and the Epoch of Reionization cites this paper.

Machine Learning and the SKA for Cosmic Dawn and the Epoch of Reionization Detecting Modeling Bias with Continuous Time Flow Models on Weak Lensing Maps

Reference 255

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unresolved
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Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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