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Paper Citation Record · LEDGER

Modeling the impact of filter-substrate refraction in the Roman point spread function

As of 7 August 2026, this Paper Citation Record lists 100 of 142 outbound references and 0 inbound Pith citation observations for arXiv:2606.11305.

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

pith.paper-citation-record.v1
2606.11305 v1

Coverage vector

measured 100 of 142 reference resolution

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Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links

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A source-named dated measurement, never combined with another source.

Source: cited_works

Reference resolution

100 of 142 outbound references displayed

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External citation measurements

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Outbound references

Observation 85e16ed5-016a-4d61-b197-0e80ed68f3e3 · outbound

This paper cites The Near-Infrared Spectrograph (NIRSpec) on the James Webb Space Telescope I. Overview of the instrument and its capabilities.

Modeling the impact of filter-substrate refraction in the Roman point spread function The Near-Infrared Spectrograph (NIRSpec) on the James Webb Space Telescope I. Overview of the instrument and its capabilities

Reference 1

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Modeling the impact of filter-substrate refraction in the Roman point spread function , keywords =

Reference 2

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Observation 54368103-83fc-4306-be39-9a2ec6c7324f · outbound

This paper cites A., Lin, C., Park, A., et al.

Modeling the impact of filter-substrate refraction in the Roman point spread function A., Lin, C., Park, A., et al

Reference 3

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Observation f0f7ce5c-b838-40b2-9a6e-ebbffdf30ae0 · outbound

This paper cites 2019, ApJS, 245, 26, doi:10.3847/1538-4365/ab510c 19.

Modeling the impact of filter-substrate refraction in the Roman point spread function 2019, ApJS, 245, 26, doi:10.3847/1538-4365/ab510c 19

Reference 4

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Observation d28825c3-f5ef-49ee-bc70-aebd1b1ba232 · outbound

This paper cites Validating Synthetic Galaxy Catalogs for Dark Energy Science in the LSST Era.

Modeling the impact of filter-substrate refraction in the Roman point spread function Validating Synthetic Galaxy Catalogs for Dark Energy Science in the LSST Era

Reference 5

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Observation 333a9ea3-4792-4eb0-99e4-95c600f16e7e · outbound

This paper cites The Milky Way Tomography with SDSS: I. Stellar Number Density Distribution.

Modeling the impact of filter-substrate refraction in the Roman point spread function The Milky Way Tomography with SDSS: I. Stellar Number Density Distribution

Reference 6

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Observation 35ae83a9-d6dc-4bda-983a-cf1df5e47bb0 · outbound

This paper cites Singer, Daniel Lenz, Martin Rei- necke, Cyrille Rosset, Eric Hivon, and Krzysztof M.

Modeling the impact of filter-substrate refraction in the Roman point spread function Singer, Daniel Lenz, Martin Rei- necke, Cyrille Rosset, Eric Hivon, and Krzysztof M

Reference 7

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Observation 1a9855fb-1016-46ec-9a82-5d79c3415ea7 · outbound

This paper cites GalSim: The modular galaxy image simulation toolkit.

Modeling the impact of filter-substrate refraction in the Roman point spread function GalSim: The modular galaxy image simulation toolkit

Reference 8

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Observation 80838b89-4dea-43ea-8e16-402ded9089a6 · outbound

This paper cites F., Kalmbach, J.

Modeling the impact of filter-substrate refraction in the Roman point spread function F., Kalmbach, J

Reference 9

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Observation 398fbc9d-ad7c-4fe6-9f95-48baf3b454c2 · outbound

This paper cites Fourier Power Function Shapelets (FPFS) Shear Estimator: Performance on Image Simulations.

Modeling the impact of filter-substrate refraction in the Roman point spread function Fourier Power Function Shapelets (FPFS) Shear Estimator: Performance on Image Simulations

Reference 10

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Observation 619ee0d5-dd2f-4f32-bf80-901a74e61801 · outbound

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

Modeling the impact of filter-substrate refraction in the Roman point spread function LSST: from Science Drivers to Reference Design and Anticipated Data Products

Reference 11

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This paper cites A&A , volume =.

Modeling the impact of filter-substrate refraction in the Roman point spread function A&A , volume =

Reference 12

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Modeling the impact of filter-substrate refraction in the Roman point spread function Unresolved cited work

Reference 13

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Observation f149dba1-ca4b-467a-9ff2-12f32fa49387 · outbound

This paper cites M., Yamamoto, M., Laliotis, K., et al.

Modeling the impact of filter-substrate refraction in the Roman point spread function M., Yamamoto, M., Laliotis, K., et al

Reference 14

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This paper cites 2019, ApJS, 245, 16, doi: 10.3847/1538-4365/ab4da1 Ivezi´ c,ˇZ., Kahn, S.

Modeling the impact of filter-substrate refraction in the Roman point spread function 2019, ApJS, 245, 16, doi: 10.3847/1538-4365/ab4da1 Ivezi´ c,ˇZ., Kahn, S

Reference 15

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Modeling the impact of filter-substrate refraction in the Roman point spread function , keywords =

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Modeling the impact of filter-substrate refraction in the Roman point spread function , keywords =

Reference 17

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Modeling the impact of filter-substrate refraction in the Roman point spread function An updated MILES stellar library and stellar population models

Reference 18

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Modeling the impact of filter-substrate refraction in the Roman point spread function J., 2012, @doi [ ] 10.1016/j.newast.2011.07.004 , https://ui.adsabs.harvard.edu/abs/2012NewA...17..175B 17, 175

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Modeling the impact of filter-substrate refraction in the Roman point spread function Robert Kurucz CD-ROM , year = 1993, month = jan, volume =

Reference 20

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Modeling the impact of filter-substrate refraction in the Roman point spread function A., & Liebert, J

Reference 21

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Modeling the impact of filter-substrate refraction in the Roman point spread function Weak lensing for precision cosmology

Reference 22

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Modeling the impact of filter-substrate refraction in the Roman point spread function 2008, Annual Review of Nuclear and Particle Science, 58, 99–123, 10.1146/annurev.nucl.58.110707.171151

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Modeling the impact of filter-substrate refraction in the Roman point spread function Weak gravitational lensing

Reference 24

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Modeling the impact of filter-substrate refraction in the Roman point spread function Cosmology with Weak Lensing Surveys

Reference 25

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Modeling the impact of filter-substrate refraction in the Roman point spread function Cosmology with cosmic shear observations: a review

Reference 26

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Modeling the impact of filter-substrate refraction in the Roman point spread function Monthly Notices of the Royal Astronomical Society , volume =

Reference 27

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Modeling the impact of filter-substrate refraction in the Roman point spread function A., okas E

Reference 28

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Modeling the impact of filter-substrate refraction in the Roman point spread function and Yang , J

Reference 29

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Modeling the impact of filter-substrate refraction in the Roman point spread function Frontiers in Astronomy and Space Sciences , title =

Reference 30

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Modeling the impact of filter-substrate refraction in the Roman point spread function PSF modelling for very wide-field CCD astronomy

Reference 31

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Modeling the impact of filter-substrate refraction in the Roman point spread function M., Amon, A., et al

Reference 32

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Modeling the impact of filter-substrate refraction in the Roman point spread function Toward High-Precision Astrometry with WFPC2. I. Deriving an Accurate PSF

Reference 33

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This paper cites Applied Optics and Optical Engineering, Volume XI , series = 1, year = 1992, editor =.

Modeling the impact of filter-substrate refraction in the Roman point spread function Applied Optics and Optical Engineering, Volume XI , series = 1, year = 1992, editor =

Reference 34

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This paper cites Image Ellipticity from Atmospheric Aberrations.

Modeling the impact of filter-substrate refraction in the Roman point spread function Image Ellipticity from Atmospheric Aberrations

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Modeling the impact of filter-substrate refraction in the Roman point spread function and Shibahashi , H

Reference 36

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arxiv_id, observed 2026-06-27T11:30:52.914962Z

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Observation b68f1665-d1f2-4b9f-bfae-5056c3368ca9 · outbound

This paper cites The effect of detector nonlinearity on WFIRST PSF profiles for weak gravitational lensing measurements.

Modeling the impact of filter-substrate refraction in the Roman point spread function The effect of detector nonlinearity on WFIRST PSF profiles for weak gravitational lensing measurements

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This paper cites The brighter-fatter effect and pixel correlations in CCD sensors.

Modeling the impact of filter-substrate refraction in the Roman point spread function The brighter-fatter effect and pixel correlations in CCD sensors

Reference 38

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Observation c0b70a92-4c55-49d3-8ed4-0e5586001d53 · outbound

This paper cites J., Reeves J.

Modeling the impact of filter-substrate refraction in the Roman point spread function J., Reeves J

Reference 39

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arxiv_id, observed 2026-06-27T11:30:52.884101Z

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This paper cites Shear measurement bias due to spatially varying spectral energy distributions in galaxies.

Modeling the impact of filter-substrate refraction in the Roman point spread function Shear measurement bias due to spatially varying spectral energy distributions in galaxies

Reference 40

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This paper cites D., Sivaramakrishnan, A., Lajoie, C.-P., et al.

Modeling the impact of filter-substrate refraction in the Roman point spread function D., Sivaramakrishnan, A., Lajoie, C.-P., et al

Reference 41

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Observation 346294aa-f1de-43ee-932d-e0ee0cec535c · outbound

This paper cites V The Effects of Atmospheric Turbulence in Optical Astronomy.

Modeling the impact of filter-substrate refraction in the Roman point spread function V The Effects of Atmospheric Turbulence in Optical Astronomy

Reference 42

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Observation 9d479ff8-96a2-4f23-a589-c378b0c8f126 · outbound

This paper cites PSF calibration requirements for dark energy from cosmic shear.

Modeling the impact of filter-substrate refraction in the Roman point spread function PSF calibration requirements for dark energy from cosmic shear

Reference 43

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Observation 9a8b0b67-e0f1-4f08-8333-678f304abb44 · outbound

This paper cites Chromatic CCD effects on weak lensing measurements for LSST.

Modeling the impact of filter-substrate refraction in the Roman point spread function Chromatic CCD effects on weak lensing measurements for LSST

Reference 44

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Observation 3561b508-0d49-446d-b0d3-2c87cba6c158 · outbound

This paper cites Impact of Atmospheric Chromatic Effects on Weak Lensing Measurements.

Modeling the impact of filter-substrate refraction in the Roman point spread function Impact of Atmospheric Chromatic Effects on Weak Lensing Measurements

Reference 45

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This paper cites A., et al., 2011, @doi [ ] 10.1111/j.1365-2966.2011.18706.x , http://adsabs.harvard.edu/abs/2011MNRAS.417.1621D 417.

Modeling the impact of filter-substrate refraction in the Roman point spread function A., et al., 2011, @doi [ ] 10.1111/j.1365-2966.2011.18706.x , http://adsabs.harvard.edu/abs/2011MNRAS.417.1621D 417

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arxiv_id, observed 2026-06-27T11:30:52.779322Z

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Observation 8f79fdff-dfdb-4fd2-8505-5b99f95f6ba6 · outbound

This paper cites On the shear estimation bias induced by the spatial variation of colour across galaxy profiles.

Modeling the impact of filter-substrate refraction in the Roman point spread function On the shear estimation bias induced by the spatial variation of colour across galaxy profiles

Reference 47

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This paper cites Atmospheric dispersion effects in weak lensing measurements.

Modeling the impact of filter-substrate refraction in the Roman point spread function Atmospheric dispersion effects in weak lensing measurements

Reference 48

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Observation b7bcc94c-6c46-4676-b235-46f2e1834231 · outbound

This paper cites Implications of a wavelength dependent PSF for weak lensing measurements.

Modeling the impact of filter-substrate refraction in the Roman point spread function Implications of a wavelength dependent PSF for weak lensing measurements

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This paper cites Wavelength Dependent PSFs and their impact on Weak Lensing Measurements.

Modeling the impact of filter-substrate refraction in the Roman point spread function Wavelength Dependent PSFs and their impact on Weak Lensing Measurements

Reference 50

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This paper cites The Three-Year Shear Catalog of the.

Modeling the impact of filter-substrate refraction in the Roman point spread function The Three-Year Shear Catalog of the

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This paper cites Weak gravitational lensing shear measurement with fpfs: analytical mitigation of noise bias and selection bias.

Modeling the impact of filter-substrate refraction in the Roman point spread function Weak gravitational lensing shear measurement with fpfs: analytical mitigation of noise bias and selection bias

Reference 52

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Modeling the impact of filter-substrate refraction in the Roman point spread function , keywords =

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Modeling the impact of filter-substrate refraction in the Roman point spread function , keywords =

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Modeling the impact of filter-substrate refraction in the Roman point spread function , keywords =

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Modeling the impact of filter-substrate refraction in the Roman point spread function A., okas E

Reference 56

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Modeling the impact of filter-substrate refraction in the Roman point spread function Jiang, F

Reference 57

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Modeling the impact of filter-substrate refraction in the Roman point spread function Shapes and Shears, Stars and Smears: Optimal Measurements for Weak Lensing

Reference 58

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Modeling the impact of filter-substrate refraction in the Roman point spread function Jiang, F

Reference 59

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Modeling the impact of filter-substrate refraction in the Roman point spread function A., okas E

Reference 60

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Modeling the impact of filter-substrate refraction in the Roman point spread function Metacalibration: Direct Self-Calibration of Biases in Shear Measurement

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Modeling the impact of filter-substrate refraction in the Roman point spread function The Open Journal of Astrophysics , keywords =

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Observation d768d488-5f96-4dd4-855d-2f8c5512a8eb · outbound

This paper cites 2025, MNRAS, 544, 3799–3823, doi: 10.1093/mnras/staf1833 Astropy Collaboration, Robitaille, T.

Modeling the impact of filter-substrate refraction in the Roman point spread function 2025, MNRAS, 544, 3799–3823, doi: 10.1093/mnras/staf1833 Astropy Collaboration, Robitaille, T

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Observation f410f894-5a85-4e8c-94fa-6514e9fcb6f4 · outbound

This paper cites Bio- logical Cybernetics43(1), 59–69 (1982).

Modeling the impact of filter-substrate refraction in the Roman point spread function Bio- logical Cybernetics43(1), 59–69 (1982)

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Observation 48d8caa7-beb8-4952-b500-431d296aaa0e · outbound

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Modeling the impact of filter-substrate refraction in the Roman point spread function Myles, A

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Modeling the impact of filter-substrate refraction in the Roman point spread function Enhancing weak lensing redshift distribution characterization by optimizing the Dark Energy Survey Self-Organizing Map Photo-z method

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Observation a88044b5-0618-47c4-973b-2922468523a8 · outbound

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Modeling the impact of filter-substrate refraction in the Roman point spread function R., et al

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Observation 24f94b23-24d2-4aa6-9626-211d3a9ce0ce · outbound

This paper cites The Dark Energy Survey.

Modeling the impact of filter-substrate refraction in the Roman point spread function The Dark Energy Survey

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Observation a00fd8d2-6ea7-49ce-bd8c-c4f55993ecc1 · outbound

This paper cites The Hyper Suprime-Cam SSP Survey: Overview and Survey Design.

Modeling the impact of filter-substrate refraction in the Roman point spread function The Hyper Suprime-Cam SSP Survey: Overview and Survey Design

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This paper cites The Messenger , year = 2013, month = dec, volume =.

Modeling the impact of filter-substrate refraction in the Roman point spread function The Messenger , year = 2013, month = dec, volume =

Reference 70

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This paper cites 2023, http://dx.doi.org/10.1103/PhysRevD.108.123519 black , 108, 123519 https://ui.adsabs.harvard.edu/abs/2023PhRvD.108l3519D.

Modeling the impact of filter-substrate refraction in the Roman point spread function 2023, http://dx.doi.org/10.1103/PhysRevD.108.123519 black , 108, 123519 https://ui.adsabs.harvard.edu/abs/2023PhRvD.108l3519D

Reference 71

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Observation 0e524c6c-d2da-494f-986b-13cb0f4a80c1 · outbound

This paper cites KiDS-1000 Cosmology: Cosmic shear constraints and comparison between two point statistics.Astron.

Modeling the impact of filter-substrate refraction in the Roman point spread function KiDS-1000 Cosmology: Cosmic shear constraints and comparison between two point statistics.Astron

Reference 72

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Modeling the impact of filter-substrate refraction in the Roman point spread function 2023 c , http://dx.doi.org/10.1103/PhysRevD.108.123518 black , 108, 123518 https://ui.adsabs.harvard.edu/abs/2023PhRvD.108l3518L

Reference 73

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This paper cites Amon et al.

Modeling the impact of filter-substrate refraction in the Roman point spread function Amon et al

Reference 74

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This paper cites F., Samuroff , S., Krause , E., et al.

Modeling the impact of filter-substrate refraction in the Roman point spread function F., Samuroff , S., Krause , E., et al

Reference 75

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correction dated 2022-01-13. Source: crossref record 10.1103/physrevd.105.023515->10.1103/physrevd.105.023515:correction, observed 2026-07-11T02:58:37.017376+00:00. This notice travels one citation hop only.

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Observation 98733907-3b54-4c04-bf59-a0f2506c3af4 · outbound

This paper cites Overview of the Instrumentation for the Dark Energy Spectroscopic Instrument.

Modeling the impact of filter-substrate refraction in the Roman point spread function Overview of the Instrumentation for the Dark Energy Spectroscopic Instrument

Reference 76

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Observation fdc2ae11-fef6-49af-b9fd-217bb124c58e · outbound

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

Modeling the impact of filter-substrate refraction in the Roman point spread function Wide-Field InfrarRed Survey Telescope-Astrophysics Focused Telescope Assets WFIRST-AFTA 2015 Report

Reference 77

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This paper cites 2022, A&A, 662, A112, doi: 10.1051/0004-6361/202141938.

Modeling the impact of filter-substrate refraction in the Roman point spread function 2022, A&A, 662, A112, doi: 10.1051/0004-6361/202141938

Reference 78

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Observation 29837322-f392-405b-8290-2d0af7cd6cf8 · outbound

This paper cites , keywords =.

Modeling the impact of filter-substrate refraction in the Roman point spread function , keywords =

Reference 79

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Observation 044e592e-2b84-44cc-91e6-8a6be2393e24 · outbound

This paper cites Report of the Dark Energy Task Force.

Modeling the impact of filter-substrate refraction in the Roman point spread function Report of the Dark Energy Task Force

Reference 80

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Observation 3cba59a2-feee-45da-aaf5-7a97912b08e4 · outbound

This paper cites Looking through the same lens: shear calibration for LSST, Euclid & WFIRST with stage 4 CMB lensing.

Modeling the impact of filter-substrate refraction in the Roman point spread function Looking through the same lens: shear calibration for LSST, Euclid & WFIRST with stage 4 CMB lensing

Reference 81

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Observation 93e50bb1-3427-4825-85bd-bb483840ed51 · outbound

This paper cites M., et al.

Modeling the impact of filter-substrate refraction in the Roman point spread function M., et al

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Observation ebec115f-8e5a-4b69-afa9-291c386b6ea3 · outbound

This paper cites The Impact of Interpixel Capacitance in CMOS Detectors on PSF shapes and Implications for WFIRST.

Modeling the impact of filter-substrate refraction in the Roman point spread function The Impact of Interpixel Capacitance in CMOS Detectors on PSF shapes and Implications for WFIRST

Reference 83

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Observation 4320060d-0ede-47fb-ba26-0a451d33bc92 · outbound

This paper cites M., Laliotis, K., et al.

Modeling the impact of filter-substrate refraction in the Roman point spread function M., Laliotis, K., et al

Reference 84

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Observation 8c31f6f1-e84c-4bf3-bac7-29dc65381de4 · outbound

This paper cites The LSST Dark Energy Science Collaboration (DESC) Science Requirements Document.

Modeling the impact of filter-substrate refraction in the Roman point spread function The LSST Dark Energy Science Collaboration (DESC) Science Requirements Document

Reference 85

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Observation 5e4bc605-ef46-4612-98ce-3258c328a2c8 · outbound

This paper cites Euclid Preparation IV. Impact of undetected galaxies on weak-lensing shear measurements.

Modeling the impact of filter-substrate refraction in the Roman point spread function Euclid Preparation IV. Impact of undetected galaxies on weak-lensing shear measurements

Reference 86

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Observation 4352985e-95ad-48b2-a437-a55da15a6e48 · outbound

This paper cites J., Bennett , C., et al.

Modeling the impact of filter-substrate refraction in the Roman point spread function J., Bennett , C., et al

Reference 87

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Observation d5d4d717-bdb3-4d1b-99fe-3b76e30f8d4d · outbound

This paper cites Measuring a Charge-Coupled Device Point Spread Function: Euclid Visible Instrument CCD273-84 PSF Performance.

Modeling the impact of filter-substrate refraction in the Roman point spread function Measuring a Charge-Coupled Device Point Spread Function: Euclid Visible Instrument CCD273-84 PSF Performance

Reference 88

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Observation 45f0aa93-a43f-4e2c-8b03-38a4bc8e3063 · outbound

This paper cites doi:10.5281/zenodo.14947939 , url =.

Modeling the impact of filter-substrate refraction in the Roman point spread function doi:10.5281/zenodo.14947939 , url =

Reference 89

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Observation 17eedad9-c966-4e7d-a4f6-52981242902c · outbound

This paper cites Galaxy alignments: An overview.

Modeling the impact of filter-substrate refraction in the Roman point spread function Galaxy alignments: An overview

Reference 90

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Observation 3aa3efd5-2e7f-456b-86b1-b0027b538c00 · outbound

This paper cites The Intrinsic Alignment of Galaxies and its Impact on Weak Gravitational Lensing in an Era of Precision Cosmology.

Modeling the impact of filter-substrate refraction in the Roman point spread function The Intrinsic Alignment of Galaxies and its Impact on Weak Gravitational Lensing in an Era of Precision Cosmology

Reference 91

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Observation e59f8c75-733c-4818-9458-16ea6f0bdcf7 · outbound

This paper cites S., Becker , M.

Modeling the impact of filter-substrate refraction in the Roman point spread function S., Becker , M

Reference 92

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Observation d237d59d-928f-4d24-bd17-422f5500a1c2 · outbound

This paper cites Practical Weak Lensing Shear Measurement with Metacalibration.

Modeling the impact of filter-substrate refraction in the Roman point spread function Practical Weak Lensing Shear Measurement with Metacalibration

Reference 93

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Observation 2413e854-92f2-4fad-9969-1367b54c9e94 · outbound

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Modeling the impact of filter-substrate refraction in the Roman point spread function 2016, Phys

Reference 94

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Observation f150ed06-ccfc-42de-84b4-70f7193d3757 · outbound

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Modeling the impact of filter-substrate refraction in the Roman point spread function Unresolved cited work

Reference 95

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Modeling the impact of filter-substrate refraction in the Roman point spread function Unresolved cited work

Reference 96

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Observation eb082999-d237-4086-b47c-a2f99fa22f93 · outbound

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Modeling the impact of filter-substrate refraction in the Roman point spread function R., Sheldon , E., et al

Reference 97

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This paper cites 2025, MNRAS, 542, 608–628, doi: 10.1093/mnras/staf1255.

Modeling the impact of filter-substrate refraction in the Roman point spread function 2025, MNRAS, 542, 608–628, doi: 10.1093/mnras/staf1255

Reference 98

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Observation 838f8a3c-b1cd-44e5-8517-8408a227ac5c · outbound

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Modeling the impact of filter-substrate refraction in the Roman point spread function and Lowe, David , title =

Reference 99

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