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Jeongin Moon

Bio: Jeongin Moon is an academic researcher from Sejong University. The author has contributed to research in topics: Physics & Redshift. The author has an hindex of 2, co-authored 2 publications receiving 216 citations.
Topics: Physics, Redshift, Dark energy, Astrophysics, Galaxy

Papers
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Journal ArticleDOI
Shadab Alam1, Marie Aubert, Santiago Avila2, Christophe Balland3, Julian E. Bautista4, Matthew A. Bershady5, Matthew A. Bershady6, Dmitry Bizyaev7, Dmitry Bizyaev8, Michael R. Blanton9, Adam S. Bolton10, Jo Bovy11, Jonathan Brinkmann8, Joel R. Brownstein10, Etienne Burtin12, Solène Chabanier12, Michael J. Chapman13, Peter Doohyun Choi14, Chia-Hsun Chuang15, Johan Comparat16, M. C. Cousinou, Andrei Cuceu17, Kyle S. Dawson10, Sylvain de la Torre, Arnaud de Mattia12, Victoria de Sainte Agathe3, Hélion du Mas des Bourboux10, Stephanie Escoffier, Thomas Etourneau12, James Farr17, Andreu Font-Ribera17, Peter M. Frinchaboy18, S. Fromenteau19, Héctor Gil-Marín20, Jean Marc Le Goff12, Alma X. Gonzalez-Morales21, Alma X. Gonzalez-Morales22, Violeta Gonzalez-Perez4, Violeta Gonzalez-Perez23, Kathleen Grabowski8, Julien Guy24, Adam J. Hawken, Jiamin Hou16, Hui Kong25, James C. Parker8, Mark A. Klaene8, Jean-Paul Kneib26, Sicheng Lin9, Daniel Long8, Brad W. Lyke27, Axel de la Macorra19, Paul Martini25, Karen L. Masters28, Faizan G. Mohammad13, Jeongin Moon14, Eva Maria Mueller29, Andrea Muñoz-Gutiérrez19, Adam D. Myers27, Seshadri Nadathur4, Richard Neveux12, Jeffrey A. Newman30, P. Noterdaeme3, Audrey Oravetz8, Daniel Oravetz8, Nathalie Palanque-Delabrouille12, Kaike Pan8, Romain Paviot, Will J. Percival13, Will J. Percival31, Ignasi Pérez-Ràfols3, Patrick Petitjean3, Matthew M. Pieri, Abhishek Prakash32, Anand Raichoor26, Corentin Ravoux12, Mehdi Rezaie33, J. Rich12, Ashley J. Ross25, Graziano Rossi14, Rossana Ruggeri34, Rossana Ruggeri4, V. Ruhlmann-Kleider12, Ariel G. Sánchez16, F. Javier Sánchez35, José R. Sánchez-Gallego36, Conor Sayres36, Donald P. Schneider, Hee-Jong Seo33, Arman Shafieloo37, Anže Slosar38, Alex Smith12, Julianna Stermer3, Amélie Tamone26, Jeremy L. Tinker9, Rita Tojeiro39, Mariana Vargas-Magaña19, Andrei Variu26, Yuting Wang, Benjamin A. Weaver, Anne-Marie Weijmans39, C. Yeche12, Pauline Zarrouk12, Pauline Zarrouk40, Cheng Zhao26, Gong-Bo Zhao, Zheng Zheng10 
TL;DR: In this article, the authors present the cosmological implications from final measurements of clustering using galaxies, quasars, and Lyα forests from the completed SDSS lineage of experiments in large-scale structure.
Abstract: We present the cosmological implications from final measurements of clustering using galaxies, quasars, and Lyα forests from the completed Sloan Digital Sky Survey (SDSS) lineage of experiments in large-scale structure. These experiments, composed of data from SDSS, SDSS-II, BOSS, and eBOSS, offer independent measurements of baryon acoustic oscillation (BAO) measurements of angular-diameter distances and Hubble distances relative to the sound horizon, rd, from eight different samples and six measurements of the growth rate parameter, fσ8, from redshift-space distortions (RSD). This composite sample is the most constraining of its kind and allows us to perform a comprehensive assessment of the cosmological model after two decades of dedicated spectroscopic observation. We show that the BAO data alone are able to rule out dark-energy-free models at more than eight standard deviations in an extension to the flat, ΛCDM model that allows for curvature. When combined with Planck Cosmic Microwave Background (CMB) measurements of temperature and polarization, under the same model, the BAO data provide nearly an order of magnitude improvement on curvature constraints relative to primary CMB constraints alone. Independent of distance measurements, the SDSS RSD data complement weak lensing measurements from the Dark Energy Survey (DES) in demonstrating a preference for a flat ΛCDM cosmological model when combined with Planck measurements. The combined BAO and RSD measurements indicate σ8=0.85±0.03, implying a growth rate that is consistent with predictions from Planck temperature and polarization data and with General Relativity. When combining the results of SDSS BAO and RSD, Planck, Pantheon Type Ia supernovae (SNe Ia), and DES weak lensing and clustering measurements, all multiple-parameter extensions remain consistent with a ΛCDM model. Regardless of cosmological model, the precision on each of the three parameters, ωΛ, H0, and σ8, remains at roughly 1%, showing changes of less than 0.6% in the central values between models. In a model that allows for free curvature and a time-evolving equation of state for dark energy, the combined samples produce a constraint ωk=-0.0022±0.0022. The dark energy constraints lead to w0=-0.909±0.081 and wa=-0.49-0.30+0.35, corresponding to an equation of state of wp=-1.018±0.032 at a pivot redshift zp=0.29 and a Dark Energy Task Force Figure of Merit of 94. The inverse distance ladder measurement under this model yields H0=68.18±0.79 km s-1 Mpc-1, remaining in tension with several direct determination methods; the BAO data allow Hubble constant estimates that are robust against the assumption of the cosmological model. In addition, the BAO data allow estimates of H0 that are independent of the CMB data, with similar central values and precision under a ΛCDM model. Our most constraining combination of data gives the upper limit on the sum of neutrino masses at mν<0.115 eV (95% confidence). Finally, we consider the improvements in cosmology constraints over the last decade by comparing our results to a sample representative of the period 2000-2010. We compute the relative gain across the five dimensions spanned by w, ωk, mν, H0, and σ8 and find that the SDSS BAO and RSD data reduce the total posterior volume by a factor of 40 relative to the previous generation. Adding again the Planck, DES, and Pantheon SN Ia samples leads to an overall contraction in the five-dimensional posterior volume of 3 orders of magnitude.

575 citations

Journal ArticleDOI
TL;DR: The Dark Energy Spectroscopic Instrument (DESI) as mentioned in this paper was designed to explore the nature of dark energy with spectroscopic measurements of 40 million galaxies and quasars and employed the baryon acoustic oscillation method to measure distances from the nearby universe to beyond redshift z > 3.5.
Abstract: The Dark Energy Spectroscopic Instrument (DESI) embarked on an ambitious 5 yr survey in 2021 May to explore the nature of dark energy with spectroscopic measurements of 40 million galaxies and quasars. DESI will determine precise redshifts and employ the baryon acoustic oscillation method to measure distances from the nearby universe to beyond redshift z > 3.5, and employ redshift space distortions to measure the growth of structure and probe potential modifications to general relativity. We describe the significant instrumentation we developed to conduct the DESI survey. This includes: a wide-field, 3.°2 diameter prime-focus corrector; a focal plane system with 5020 fiber positioners on the 0.812 m diameter, aspheric focal surface; 10 continuous, high-efficiency fiber cable bundles that connect the focal plane to the spectrographs; and 10 identical spectrographs. Each spectrograph employs a pair of dichroics to split the light into three channels that together record the light from 360–980 nm with a spectral resolution that ranges from 2000–5000. We describe the science requirements, their connection to the technical requirements, the management of the project, and interfaces between subsystems. DESI was installed at the 4 m Mayall Telescope at Kitt Peak National Observatory and has achieved all of its performance goals. Some performance highlights include an rms positioner accuracy of better than 0.″1 and a median signal-to-noise ratio of 7 of the [O ii] doublet at 8 × 10−17 erg s−1 cm−2 in 1000 s for galaxies at z = 1.4–1.6. We conclude with additional highlights from the on-sky validation and commissioning, key successes, and lessons learned.

54 citations

Journal ArticleDOI
TL;DR: In this paper, the authors developed a series of N-body data challenges, functional to the final analysis of the extended Baryon Oscillation Spectroscopic Survey (eBOSS) Data Release 16 (DR16) galaxy sample.
Abstract: We develop a series of N-body data challenges, functional to the final analysis of the extended Baryon Oscillation Spectroscopic Survey (eBOSS) Data Release 16 (DR16) galaxy sample. The challenges are primarily based on high-fidelity catalogs constructed from the Outer Rim simulation - a large box size realization (3 Gpc/h) characterized by an unprecedented mass resolution, down to 1.85 x 10^9 M_sun/h. We generate synthetic galaxy mocks by populating Outer Rim halos with a variety of halo occupation distribution (HOD) schemes of increasing complexity, spanning different redshift intervals. We then assess the performance of three complementary redshift space distortion (RSD) models in configuration and Fourier space, adopted for the analysis of the complete DR16 eBOSS sample of Luminous Red Galaxies (LRGs). We find that all the methods are mutually consistent, with comparable systematic errors on the Alcock-Paczynski parameters and the growth of structure, and robust to different HOD prescriptions - thus validating the robustness of the models and the pipelines used for the baryon acoustic oscillation (BAO) and full shape clustering analysis. In particular, all the techniques are able to recover alpha_par and alpha_perp to within 0.9%, and fsig8 to within 1.5%. As a by-product of our work, we are also able to gain interesting insights on the galaxy-halo connection. Our study is relevant for the final eBOSS DR16 `consensus cosmology', as the systematic error budget is informed by testing the results of analyses against these high-resolution mocks. In addition, it is also useful for future large-volume surveys, since similar mock-making techniques and systematic corrections can be readily extended to model for instance the DESI galaxy sample.

27 citations

Posted ContentDOI
09 Jun 2023
TL;DR: The Dark Energy Spectroscopic Instrument (DESI) completed its five-month Survey Validation in May 2019 and the intermediate data products were released in 2019 as discussed by the authors , which includes spectral data from 466,447 objects targeted as part of the Milky Way Survey, 428,758 objects from the Bright Galaxy Survey, 227,318 from the Luminous Red Galaxy sample, 437,664 from the Emission Line Galaxy sample and 76,079 from the Quasar sample.
Abstract: The Dark Energy Spectroscopic Instrument (DESI) completed its five-month Survey Validation in May 2021. Spectra of stellar and extragalactic targets from Survey Validation constitute the first major data sample from the DESI survey. This paper describes the public release of those spectra, the catalogs of derived properties, and the intermediate data products. In total, the public release includes good-quality spectral information from 466,447 objects targeted as part of the Milky Way Survey, 428,758 as part of the Bright Galaxy Survey, 227,318 as part of the Luminous Red Galaxy sample, 437,664 as part of the Emission Line Galaxy sample, and 76,079 as part of the Quasar sample. In addition, the release includes spectral information from 137,148 objects that expand the scope beyond the primary samples as part of a series of secondary programs. Here, we describe the spectral data, data quality, data products, Large-Scale Structure science catalogs, access to the data, and references that provide relevant background to using these spectra.

3 citations

Posted ContentDOI
09 Jun 2023
TL;DR: The Dark Energy Spectroscopic Instrument (DESI) was designed to conduct a survey covering 14,000 deg$^2$ over five years to constrain the cosmic expansion history through precise measurements of Baryon Acoustic Oscillations (BAO) as discussed by the authors .
Abstract: The Dark Energy Spectroscopic Instrument (DESI) was designed to conduct a survey covering 14,000 deg$^2$ over five years to constrain the cosmic expansion history through precise measurements of Baryon Acoustic Oscillations (BAO). The scientific program for DESI was evaluated during a five month Survey Validation (SV) campaign before beginning full operations. This program produced deep spectra of tens of thousands of objects from each of the stellar (MWS), bright galaxy (BGS), luminous red galaxy (LRG), emission line galaxy (ELG), and quasar target classes. These SV spectra were used to optimize redshift distributions, characterize exposure times, determine calibration procedures, and assess observational overheads for the five-year program. In this paper, we present the final target selection algorithms, redshift distributions, and projected cosmology constraints resulting from those studies. We also present a `One-Percent survey' conducted at the conclusion of Survey Validation covering 140 deg$^2$ using the final target selection algorithms with exposures of a depth typical of the main survey. The Survey Validation indicates that DESI will be able to complete the full 14,000 deg$^2$ program with spectroscopically-confirmed targets from the MWS, BGS, LRG, ELG, and quasar programs with total sample sizes of 7.2, 13.8, 7.46, 15.7, and 2.87 million, respectively. These samples will allow exploration of the Milky Way halo, clustering on all scales, and BAO measurements with a statistical precision of 0.28% over the redshift interval $z<1.1$, 0.39% over the redshift interval $1.1

2 citations


Cited by
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01 Jan 2005
TL;DR: The Monthly Notices as mentioned in this paper is one of the three largest general primary astronomical research publications in the world, published by the Royal Astronomical Society (RAE), and it is the most widely cited journal in astronomy.
Abstract: Monthly Notices is one of the three largest general primary astronomical research publications. It is an international journal, published by the Royal Astronomical Society. This article 1 describes its publication policy and practice.

2,091 citations

01 Aug 2006
TL;DR: In this article, distance measurements to 71 high redshift type Ia supernovae discovered during the first year of the 5-year Supernova Legacy Survey (SNLS) were presented.
Abstract: We present distance measurements to 71 high redshift type Ia supernovae discovered during the first year of the 5-year Supernova Legacy Survey (SNLS). These events were detected and their multi-color light-curves measured using the MegaPrime/MegaCam instrument at the Canada-France-Hawaii Telescope (CFHT), by repeatedly imaging four one-square degree fields in four bands. Follow-up spectroscopy was performed at the VLT, Gemini and Keck telescopes to confirm the nature of the supernovae and to measure their redshift. With this data set, we have built a Hubble diagram extending to z = 1, with all distance measurements involving at least two bands. Systematic uncertainties are evaluated making use of the multiband photometry obtained at CFHT. Cosmological fits to this first year SNLS Hubble diagram give the following results: {Omega}{sub M} = 0.263 {+-} 0.042 (stat) {+-} 0.032 (sys) for a flat {Lambda}CDM model; and w = -1.023 {+-} 0.090 (stat) {+-} 0.054 (sys) for a flat cosmology with constant equation of state w when combined with the constraint from the recent Sloan Digital Sky Survey measurement of baryon acoustic oscillations.

840 citations

Journal ArticleDOI
TL;DR: In this paper, the authors present a thorough review of recent Hubble constant estimates and a summary of the proposed theoretical solutions, including early or dynamical dark energy, neutrino interactions, interacting cosmologies, primordial magnetic fields, and modified gravity.
Abstract: The $\Lambda$CDM model provides a good fit to a large span of cosmological data but harbors areas of phenomenology. With the improvement of the number and the accuracy of observations, discrepancies among key cosmological parameters of the model have emerged. The most statistically significant tension is the $4-6\sigma$ disagreement between predictions of the Hubble constant $H_0$ by early time probes with $\Lambda$CDM model, and a number of late time, model-independent determinations of $H_0$ from local measurements of distances and redshifts. The high precision and consistency of the data at both ends present strong challenges to the possible solution space and demand a hypothesis with enough rigor to explain multiple observations--whether these invoke new physics, unexpected large-scale structures or multiple, unrelated errors. We present a thorough review of the problem, including a discussion of recent Hubble constant estimates and a summary of the proposed theoretical solutions. Some of the models presented are formally successful, improving the fit to the data in light of their additional degrees of freedom, restoring agreement within $1-2\sigma$ between {\it Planck} 2018, using CMB power spectra data, BAO, Pantheon SN data, and R20, the latest SH0ES Team measurement of the Hubble constant ($H_0 = 73.2 \pm 1.3{\rm\,km\,s^{-1}\,Mpc^{-1}}$ at 68\% confidence level). Reduced tension might not simply come from a change in $H_0$ but also from an increase in its uncertainty due to degeneracy with additional physics, pointing to the need for additional probes. While no specific proposal makes a strong case for being highly likely or far better than all others, solutions involving early or dynamical dark energy, neutrino interactions, interacting cosmologies, primordial magnetic fields, and modified gravity provide the best options until a better alternative comes along.[Abridged]

603 citations

Journal ArticleDOI
Shadab Alam1, Marie Aubert, Santiago Avila2, Christophe Balland3, Julian E. Bautista4, Matthew A. Bershady5, Matthew A. Bershady6, Dmitry Bizyaev7, Dmitry Bizyaev8, Michael R. Blanton9, Adam S. Bolton10, Jo Bovy11, Jonathan Brinkmann7, Joel R. Brownstein10, Etienne Burtin12, Solène Chabanier12, Michael J. Chapman13, Peter Doohyun Choi14, Chia-Hsun Chuang15, Johan Comparat16, M. C. Cousinou, Andrei Cuceu17, Kyle S. Dawson10, Sylvain de la Torre, Arnaud de Mattia12, Victoria de Sainte Agathe3, Hélion du Mas des Bourboux10, Stephanie Escoffier, Thomas Etourneau12, James Farr17, Andreu Font-Ribera17, Peter M. Frinchaboy18, S. Fromenteau19, Héctor Gil-Marín20, Jean Marc Le Goff12, Alma X. Gonzalez-Morales21, Alma X. Gonzalez-Morales22, Violeta Gonzalez-Perez4, Violeta Gonzalez-Perez23, Kathleen Grabowski7, Julien Guy24, Adam J. Hawken, Jiamin Hou16, Hui Kong25, James C. Parker7, Mark A. Klaene7, Jean-Paul Kneib26, Sicheng Lin9, Daniel Long7, Brad W. Lyke27, Axel de la Macorra19, Paul Martini25, Karen L. Masters28, Faizan G. Mohammad13, Jeongin Moon14, Eva Maria Mueller29, Andrea Muñoz-Gutiérrez19, Adam D. Myers27, Seshadri Nadathur4, Richard Neveux12, Jeffrey A. Newman30, P. Noterdaeme3, Audrey Oravetz7, Daniel Oravetz7, Nathalie Palanque-Delabrouille12, Kaike Pan7, Romain Paviot, Will J. Percival31, Will J. Percival13, Ignasi Pérez-Ràfols3, Patrick Petitjean3, Matthew M. Pieri, Abhishek Prakash32, Anand Raichoor26, Corentin Ravoux12, Mehdi Rezaie33, J. Rich12, Ashley J. Ross25, Graziano Rossi14, Rossana Ruggeri4, Rossana Ruggeri34, V. Ruhlmann-Kleider12, Ariel G. Sánchez16, F. Javier Sánchez35, José R. Sánchez-Gallego36, Conor Sayres36, Donald P. Schneider, Hee-Jong Seo33, Arman Shafieloo37, Anže Slosar38, Alex Smith12, Julianna Stermer3, Amélie Tamone26, Jeremy L. Tinker9, Rita Tojeiro39, Mariana Vargas-Magaña19, Andrei Variu26, Yuting Wang, Benjamin A. Weaver, Anne-Marie Weijmans39, C. Yeche12, Pauline Zarrouk12, Pauline Zarrouk40, Cheng Zhao26, Gong-Bo Zhao, Zheng Zheng10 
TL;DR: In this article, the authors present the cosmological implications from final measurements of clustering using galaxies, quasars, and Lyα forests from the completed SDSS lineage of experiments in large-scale structure.
Abstract: We present the cosmological implications from final measurements of clustering using galaxies, quasars, and Lyα forests from the completed Sloan Digital Sky Survey (SDSS) lineage of experiments in large-scale structure. These experiments, composed of data from SDSS, SDSS-II, BOSS, and eBOSS, offer independent measurements of baryon acoustic oscillation (BAO) measurements of angular-diameter distances and Hubble distances relative to the sound horizon, rd, from eight different samples and six measurements of the growth rate parameter, fσ8, from redshift-space distortions (RSD). This composite sample is the most constraining of its kind and allows us to perform a comprehensive assessment of the cosmological model after two decades of dedicated spectroscopic observation. We show that the BAO data alone are able to rule out dark-energy-free models at more than eight standard deviations in an extension to the flat, ΛCDM model that allows for curvature. When combined with Planck Cosmic Microwave Background (CMB) measurements of temperature and polarization, under the same model, the BAO data provide nearly an order of magnitude improvement on curvature constraints relative to primary CMB constraints alone. Independent of distance measurements, the SDSS RSD data complement weak lensing measurements from the Dark Energy Survey (DES) in demonstrating a preference for a flat ΛCDM cosmological model when combined with Planck measurements. The combined BAO and RSD measurements indicate σ8=0.85±0.03, implying a growth rate that is consistent with predictions from Planck temperature and polarization data and with General Relativity. When combining the results of SDSS BAO and RSD, Planck, Pantheon Type Ia supernovae (SNe Ia), and DES weak lensing and clustering measurements, all multiple-parameter extensions remain consistent with a ΛCDM model. Regardless of cosmological model, the precision on each of the three parameters, ωΛ, H0, and σ8, remains at roughly 1%, showing changes of less than 0.6% in the central values between models. In a model that allows for free curvature and a time-evolving equation of state for dark energy, the combined samples produce a constraint ωk=-0.0022±0.0022. The dark energy constraints lead to w0=-0.909±0.081 and wa=-0.49-0.30+0.35, corresponding to an equation of state of wp=-1.018±0.032 at a pivot redshift zp=0.29 and a Dark Energy Task Force Figure of Merit of 94. The inverse distance ladder measurement under this model yields H0=68.18±0.79 km s-1 Mpc-1, remaining in tension with several direct determination methods; the BAO data allow Hubble constant estimates that are robust against the assumption of the cosmological model. In addition, the BAO data allow estimates of H0 that are independent of the CMB data, with similar central values and precision under a ΛCDM model. Our most constraining combination of data gives the upper limit on the sum of neutrino masses at mν<0.115 eV (95% confidence). Finally, we consider the improvements in cosmology constraints over the last decade by comparing our results to a sample representative of the period 2000-2010. We compute the relative gain across the five dimensions spanned by w, ωk, mν, H0, and σ8 and find that the SDSS BAO and RSD data reduce the total posterior volume by a factor of 40 relative to the previous generation. Adding again the Planck, DES, and Pantheon SN Ia samples leads to an overall contraction in the five-dimensional posterior volume of 3 orders of magnitude.

575 citations

Journal ArticleDOI
TL;DR: In this paper , the authors focus on the 5.0σ tension between the Planck CMB estimate of the Hubble constant H0 and the SH0ES collaboration measurements and discuss the importance of trying to fit a full array of data with a single model.

335 citations