Robust Photometry for Roman High-Latitude Imaging Survey Cosmology Using Roman and Rubin Imaging
Chun-Hao To, Tae-Hyeon Shin, Chihway Chang, Christopher Hirata, Brett H. Andrews, Ami Choi, Boyan Yin, Rachel Mandelbaum, Federico Berlfein, Kaili Cao, James Chiang, Nihar Dalal, Yuedong Fang, Axel Guinot, Michael Gabe, Andrew Hearin, Katherine Laliotis, Emily Macbeth, Sidney Mau, Edward F. Schlafly, M. A. Troxel
for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team · for the Roman HLIS Cosmology Project Infrastructure Team
astro-ph.IM, astro-ph.CO, astro-ph.GA
Submitted: 2026-07-10
Comments: 30 pages (18 pages of main text), 18 figures, 9 appendices; comments welcome
Code: https://github.com/astroweaver/the
License: http://creativecommons.org/licenses/by/4.0/
The gist: Accurate and precise photometry is essential for Roman cosmology because it affects photometric-redshift performance, galaxy and cluster selection, tomographic binning, and redshift-distribution
Terminology
Abstract
Accurate and precise photometry is essential for Roman cosmology because it affects photometric-redshift performance, galaxy and cluster selection, tomographic binning, and redshift-distribution characterization. Achieving robust photometry is challenging because Roman's depth leads to substantial source blending, particularly in joint Roman--Rubin analyses, where the two surveys have different spatial resolutions. In this work, we develop and validate slimfarmer, a model-fitting photometry pipeline designed for Roman High-Latitude Imaging Survey (HLIS) cosmological analyses. Building on The Farmer, slimfarmer introduces treatments of the correlated noise present in Roman images and of astronomical shot noise, together with model-fitting configurations tuned for Roman imaging. We validate the pipeline using Roman coadded simulated images and perform forced photometry on matched Rubin image simulations. We find that slimfarmer recovers galaxy colors with the mode of the color residuals within 20 millimag for Roman-based colors and within 70 millimag for Rubin-based colors. Properly accounting for correlated noise is essential for uncertainty quantification, as photometric uncertainties are otherwise underestimated by up to a factor of 3. We also find that applying multi-object fitting consistently to both Roman and Rubin imaging substantially mitigates blending-induced color systematics. In crowded regions, single-object fitting produces environment-dependent color biases of up to 0.5 mag, leading to environment-dependent degradation of photometric-redshift performance. Together, these results establish slimfarmer as a prototype photometric pipeline for Roman HLIS cosmology applications and identify the correlated-noise corrections, astronomical shot-noise treatment, and joint Roman--Rubin multi-object fitting required for robust photometric-redshift characterization.
Sources
- The Wide Field Infrared Survey Telescope: 100 Hubbles for the 2020s
- The SPHEREx Image and Spectrophotometry Processing Pipeline
- An Overview of the LSST Image Processing Pipelines
- Enhancing weak lensing redshift distribution characterization by optimizing the Dark Energy Survey Self-Organizing Map Photo-z method
- Fisher Forecasts for Cosmological Yields from 3! times!2 pt Analysis of the Roman Space Telescope High Latitude Imaging Survey
- Converting High-Dimensional Regression to High-Dimensional Conditional Density Estimation
- A hybrid Fourier--Real Gaussian Mixture method for fast galaxy--PSF convolution
- Roman Observations Time Allocation Committee: Final Report and Recommendations
- Wide-Field InfrarRed Survey Telescope-Astrophysics Focused Telescope Assets WFIRST-AFTA 2015 Report
- Redshift Assessment Infrastructure Layers (RAIL): Rubin-era photometric redshift stress-testing and at-scale production
- Dark Energy Survey Year 6 Results: Redshift Calibration of the Weak Lensing Source Galaxies
- Accurate modeling for 3 times 2pt analyses in Roman and Rubin: a study of model approximations
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