---
DOAJ_listed: '1'
OA_place: publisher
OA_type: gold
PlanS_conform: '1'
_id: '22264'
abstract:
- lang: eng
  text: 'The correlation between galaxy stellar mass and gas-phase metallicity, known
    as the mass–metallicity relation (MZR), gives key insights into the processes
    that govern galaxy evolution. However, unquantified observational and selection
    biases can result in systematic errors in attempts to recover the intrinsic MZR,
    particularly at higher redshifts. We characterize the MZR at z ∼ 3–6 within a
    fully Bayesian framework using JWST/NIRSpec spectra of 191 galaxies from the RUBIES
    survey. We forward model the observed mass–metallicity surface using prospector-generated
    spectra to account for two selection biases: the survey selection function and
    the success in observing high signal-to-noise ratio emission lines. We demonstrate
    that the RUBIES selection function, based on F444W magnitude and F150W – F444W
    color, has a negligible effect on our measured MZR. A correct treatment of the
    non-Gaussian metallicity uncertainties from strong-line calibrations lowers the
    derived MZR normalization by 0.2 dex and flattens the slope by ∼20%; forward modeling
    the effect of emission line observability steepens the slope by ∼15%. Both of
    these biases must be taken into account in order to properly measure the intrinsic
    MZR. This novel forward-modeling process motivates careful consideration of selection
    functions in future surveys, and paves the way for robust, high-redshift chemical
    enrichment studies that trace the evolution of the MZR across cosmic time.'
acknowledgement: "This work is based on observations made with the NASA/ESA/CSA James
  Webb Space Telescope. The data were obtained from the Mikulski Archive for Space
  Telescopes at the Space Telescope Science Institute, which is operated by the Association
  of Universities for Research in Astronomy, Inc., under NASA contract NAS 5-03127
  for JWST. These observations are associated with program ID 4233. This material
  is based upon work supported by the National Science Foundation Graduate Research
  Fellowship under grant No. 2137424 as well as work supported by NASA under Award
  No. 2025_3-0, issued through the Wisconsin Space Grant Consortium, and JWST-GO-4233.
  Any opinions, findings, and conclusions or recommendations expressed in this material
  are those of the author(s) and do not necessarily reflect the views of the National
  Aeronautics and Space Administration. Support for program ID 4233 was provided by
  NASA through a grant from the Space Telescope Science Institute, which is operated
  by the Association of Universities for Research in Astronomy, Inc., under NASA contract
  NAS 5-03127. M.V.M. is supported by the National Science Foundation via grant AAG
  2205519. A.d.G. acknowledges support from a Clay Fellowship awarded by the Smithsonian
  Astrophysical Observatory. T.B.M. was supported by a CIERA Fellowship. Part of the
  computations for this research were performed on the Pennsylvania State University’s
  Institute for Computational and Data Sciences’ Roar supercomputer. Some/all of the
  data presented in this article were obtained from the Mikulski Archive for Space
  Telescopes (MAST) at the Space Telescope Science Institute. The specific observations
  analyzed can be accessed via doi:10.17909/qk5z-7p30. The scripts used to generate
  the data and results in this work can be found in Zenodo at doi:10.5281/zenodo.20513668
  and GitHub  \r\nhttps://github.com/zachlewis99/rubies_mzr "
article_number: '159'
article_processing_charge: Yes
article_type: original
arxiv: 1
author:
- first_name: Zach
  full_name: Lewis, Zach
  last_name: Lewis
- first_name: Michael V.
  full_name: Maseda, Michael V.
  last_name: Maseda
- first_name: Anna
  full_name: De Graaff, Anna
  last_name: De Graaff
- first_name: Joel
  full_name: Leja, Joel
  last_name: Leja
- first_name: Bingjie
  full_name: Wang, Bingjie
  last_name: Wang
- first_name: Hans Walter
  full_name: Rix, Hans Walter
  last_name: Rix
- first_name: Ian
  full_name: Mcconachie, Ian
  last_name: Mcconachie
- first_name: Nikko J.
  full_name: Cleri, Nikko J.
  last_name: Cleri
- first_name: Rachel
  full_name: Bezanson, Rachel
  last_name: Bezanson
- first_name: Leindert A.
  full_name: Boogaard, Leindert A.
  last_name: Boogaard
- first_name: Gabriel
  full_name: Brammer, Gabriel
  last_name: Brammer
- first_name: Jenny E.
  full_name: Greene, Jenny E.
  last_name: Greene
- first_name: Michaela
  full_name: Hirschmann, Michaela
  last_name: Hirschmann
- first_name: Harley
  full_name: Katz, Harley
  last_name: Katz
- first_name: Ivo
  full_name: Labbé, Ivo
  last_name: Labbé
- first_name: Jorryt J
  full_name: Matthee, Jorryt J
  id: 7439a258-f3c0-11ec-9501-9df22fe06720
  last_name: Matthee
  orcid: 0000-0003-2871-127X
- first_name: Tim B.
  full_name: Miller, Tim B.
  last_name: Miller
- first_name: Rohan P.
  full_name: Naidu, Rohan P.
  last_name: Naidu
- first_name: Pascal A.
  full_name: Oesch, Pascal A.
  last_name: Oesch
- first_name: David J.
  full_name: Setton, David J.
  last_name: Setton
- first_name: Katherine A.
  full_name: Suess, Katherine A.
  last_name: Suess
- first_name: Andrea
  full_name: Weibel, Andrea
  last_name: Weibel
- first_name: Katherine E.
  full_name: Whitaker, Katherine E.
  last_name: Whitaker
- first_name: Christina C.
  full_name: Williams, Christina C.
  last_name: Williams
citation:
  ama: Lewis Z, Maseda MV, De Graaff A, et al. The mass–metallicity relation and its
    observational effects at z ∼ 3–6. <i>The Astrophysical Journal</i>. 2026;1005(2).
    doi:<a href="https://doi.org/10.3847/1538-4357/ae7bfc">10.3847/1538-4357/ae7bfc</a>
  apa: Lewis, Z., Maseda, M. V., De Graaff, A., Leja, J., Wang, B., Rix, H. W., …
    Williams, C. C. (2026). The mass–metallicity relation and its observational effects
    at z ∼ 3–6. <i>The Astrophysical Journal</i>. IOP Publishing. <a href="https://doi.org/10.3847/1538-4357/ae7bfc">https://doi.org/10.3847/1538-4357/ae7bfc</a>
  chicago: Lewis, Zach, Michael V. Maseda, Anna De Graaff, Joel Leja, Bingjie Wang,
    Hans Walter Rix, Ian Mcconachie, et al. “The Mass–Metallicity Relation and Its
    Observational Effects at z ∼ 3–6.” <i>The Astrophysical Journal</i>. IOP Publishing,
    2026. <a href="https://doi.org/10.3847/1538-4357/ae7bfc">https://doi.org/10.3847/1538-4357/ae7bfc</a>.
  ieee: Z. Lewis <i>et al.</i>, “The mass–metallicity relation and its observational
    effects at z ∼ 3–6,” <i>The Astrophysical Journal</i>, vol. 1005, no. 2. IOP Publishing,
    2026.
  ista: Lewis Z, Maseda MV, De Graaff A, Leja J, Wang B, Rix HW, Mcconachie I, Cleri
    NJ, Bezanson R, Boogaard LA, Brammer G, Greene JE, Hirschmann M, Katz H, Labbé
    I, Matthee JJ, Miller TB, Naidu RP, Oesch PA, Setton DJ, Suess KA, Weibel A, Whitaker
    KE, Williams CC. 2026. The mass–metallicity relation and its observational effects
    at z ∼ 3–6. The Astrophysical Journal. 1005(2), 159.
  mla: Lewis, Zach, et al. “The Mass–Metallicity Relation and Its Observational Effects
    at z ∼ 3–6.” <i>The Astrophysical Journal</i>, vol. 1005, no. 2, 159, IOP Publishing,
    2026, doi:<a href="https://doi.org/10.3847/1538-4357/ae7bfc">10.3847/1538-4357/ae7bfc</a>.
  short: Z. Lewis, M.V. Maseda, A. De Graaff, J. Leja, B. Wang, H.W. Rix, I. Mcconachie,
    N.J. Cleri, R. Bezanson, L.A. Boogaard, G. Brammer, J.E. Greene, M. Hirschmann,
    H. Katz, I. Labbé, J.J. Matthee, T.B. Miller, R.P. Naidu, P.A. Oesch, D.J. Setton,
    K.A. Suess, A. Weibel, K.E. Whitaker, C.C. Williams, The Astrophysical Journal
    1005 (2026).
das_tickbox: '1'
dataavailabilitystatement: The specific observations analyzed can be accessed via
  doi:10.17909/qk5z-7p30. The scripts used to generate the data and results in this
  work can be found in Zenodo at doi:10.5281/zenodo.20513668 and GitHub https://github.com/zachlewis99/rubies_mzr
date_created: 2026-07-12T22:02:17Z
date_published: 2026-07-10T00:00:00Z
date_updated: 2026-07-13T07:40:41Z
day: '10'
ddc:
- '520'
department:
- _id: JoMa
doi: 10.3847/1538-4357/ae7bfc
external_id:
  arxiv:
  - '2512.03134'
file:
- access_level: open_access
  checksum: 9b13fbbc5e5e921c04676ebc532d9c42
  content_type: application/pdf
  creator: dernst
  date_created: 2026-07-13T07:35:16Z
  date_updated: 2026-07-13T07:35:16Z
  file_id: '22273'
  file_name: 2026_AstrophysicalJour_Lewis.pdf
  file_size: 1854628
  relation: main_file
  success: 1
file_date_updated: 2026-07-13T07:35:16Z
fulldoi: https://doi.org/10.3847/1538-4357/ae7bfc
has_accepted_license: '1'
intvolume: '      1005'
issue: '2'
keyword:
- Galaxy evolution
- Chemical enrichment
- Metallicity
- Galaxy abundances
- Scaling relations
language:
- iso: eng
month: '07'
oa: 1
oa_version: Published Version
publication: The Astrophysical Journal
publication_identifier:
  eissn:
  - 1538-4357
  issn:
  - 0004-637X
publication_status: published
publisher: IOP Publishing
quality_controlled: '1'
researchdata_availability: yes
scopus_import: '1'
status: public
supplementarymaterial: no
title: The mass–metallicity relation and its observational effects at z ∼ 3–6
tmp:
  image: /images/cc_by.png
  legal_code_url: https://creativecommons.org/licenses/by/4.0/legalcode
  name: Creative Commons Attribution 4.0 International Public License (CC-BY 4.0)
  short: CC BY (4.0)
type: journal_article
user_id: 2DF688A6-F248-11E8-B48F-1D18A9856A87
volume: 1005
year: '2026'
...
---
OA_place: publisher
OA_type: gold
_id: '22299'
abstract:
- lang: eng
  text: The depth poset of a filtered Lefschetz complex reflects the dependencies
    between the cancellations of different shallow birth-death pairs. Using the fast
    algorithms for computing the depth poset in [Edelsbrunner et al., 2026] and for
    updating the persistence diagram under transpositions in [Cohen-Steiner et al.,
    2006], we give a complete case analysis of how transpositions of cells in the
    filter affect the depth poset. In addition, we present statistics on the depth
    poset for random point data and its sensitivity to the transpositions that occur
    in random straight-line homotopies.
acknowledgement: "The authors thank Jakub Leśkiewicz and Bartosz Furmanek for discussions\r\nthat
  helped improve the paper. Herbert Edelsbrunner: DFG Collaborative Research Center
  TRR 109, Austrian Science\r\nFund (FWF), grant no. I 02979-N35\r\nMichał Lipiński:
  European Union’s Horizon 2020 research and innovation programme under the\r\nMarie
  Skłodowska-Curie Grant Agreement No. 101034413\r\nMarian Mrozek: Polish National
  Science Center under Opus Grant 2019/35/B/ST1/00874 and Opus\r\nGrant 2025/57/B/ST1/00550"
alternative_title:
- LIPIcs
article_number: 41:1-41:18
article_processing_charge: Yes
arxiv: 1
author:
- first_name: Herbert
  full_name: Edelsbrunner, Herbert
  id: 3FB178DA-F248-11E8-B48F-1D18A9856A87
  last_name: Edelsbrunner
  orcid: 0000-0002-9823-6833
- first_name: Michał
  full_name: Lipiński, Michał
  id: dfffb474-4317-11ee-8f5c-fe3fc95a425e
  last_name: Lipiński
  orcid: 0000-0001-9789-9750
- first_name: Marian
  full_name: Mrozek, Marian
  last_name: Mrozek
  orcid: 0000-0002-0619-6417
- first_name: Manuel
  full_name: Soriano Trigueros, Manuel
  id: 15ebd7cf-15bf-11ee-aebd-bb4bb5121ea8
  last_name: Soriano Trigueros
  orcid: 0000-0003-2449-1433
- first_name: Fedor
  full_name: Zimin, Fedor
  id: afd27eda-91c1-11f0-aad8-c6edbec24c04
  last_name: Zimin
citation:
  ama: 'Edelsbrunner H, Lipiński M, Mrozek M, Soriano Trigueros M, Zimin F. The depth
    poset under transpositions in the filter. In: <i>42nd International Symposium
    on Computational Geometry</i>. Vol 367. Schloss Dagstuhl - Leibniz-Zentrum für
    Informatik; 2026. doi:<a href="https://doi.org/10.4230/LIPICS.SOCG.2026.41">10.4230/LIPICS.SOCG.2026.41</a>'
  apa: 'Edelsbrunner, H., Lipiński, M., Mrozek, M., Soriano Trigueros, M., &#38; Zimin,
    F. (2026). The depth poset under transpositions in the filter. In <i>42nd International
    Symposium on Computational Geometry</i> (Vol. 367). New Brunswick, NJ, United
    States: Schloss Dagstuhl - Leibniz-Zentrum für Informatik. <a href="https://doi.org/10.4230/LIPICS.SOCG.2026.41">https://doi.org/10.4230/LIPICS.SOCG.2026.41</a>'
  chicago: Edelsbrunner, Herbert, Michał Lipiński, Marian Mrozek, Manuel Soriano Trigueros,
    and Fedor Zimin. “The Depth Poset under Transpositions in the Filter.” In <i>42nd
    International Symposium on Computational Geometry</i>, Vol. 367. Schloss Dagstuhl
    - Leibniz-Zentrum für Informatik, 2026. <a href="https://doi.org/10.4230/LIPICS.SOCG.2026.41">https://doi.org/10.4230/LIPICS.SOCG.2026.41</a>.
  ieee: H. Edelsbrunner, M. Lipiński, M. Mrozek, M. Soriano Trigueros, and F. Zimin,
    “The depth poset under transpositions in the filter,” in <i>42nd International
    Symposium on Computational Geometry</i>, New Brunswick, NJ, United States, 2026,
    vol. 367.
  ista: 'Edelsbrunner H, Lipiński M, Mrozek M, Soriano Trigueros M, Zimin F. 2026.
    The depth poset under transpositions in the filter. 42nd International Symposium
    on Computational Geometry. SoCG: Symposium on Computational Geometry, LIPIcs,
    vol. 367, 41:1-41:18.'
  mla: Edelsbrunner, Herbert, et al. “The Depth Poset under Transpositions in the
    Filter.” <i>42nd International Symposium on Computational Geometry</i>, vol. 367,
    41:1-41:18, Schloss Dagstuhl - Leibniz-Zentrum für Informatik, 2026, doi:<a href="https://doi.org/10.4230/LIPICS.SOCG.2026.41">10.4230/LIPICS.SOCG.2026.41</a>.
  short: H. Edelsbrunner, M. Lipiński, M. Mrozek, M. Soriano Trigueros, F. Zimin,
    in:, 42nd International Symposium on Computational Geometry, Schloss Dagstuhl
    - Leibniz-Zentrum für Informatik, 2026.
conference:
  end_date: 2026-06-05
  location: New Brunswick, NJ, United States
  name: 'SoCG: Symposium on Computational Geometry'
  start_date: 2026-06-02
corr_author: '1'
das_tickbox: '0'
date_created: 2026-07-13T09:56:38Z
date_published: 2026-05-27T00:00:00Z
date_updated: 2026-08-12T09:02:56Z
day: '27'
ddc:
- '500'
department:
- _id: HeEd
- _id: GradSch
doi: 10.4230/LIPICS.SOCG.2026.41
ec_funded: 1
external_id:
  arxiv:
  - '2511.21961'
file:
- access_level: open_access
  checksum: 9dfb96ee66985c724b499b0e5888dc8e
  content_type: application/pdf
  creator: dernst
  date_created: 2026-07-14T06:08:05Z
  date_updated: 2026-07-14T06:08:05Z
  file_id: '22329'
  file_name: 2026_LIPIcSSoCG_Edelsbrunner.pdf
  file_size: 2902144
  relation: main_file
  success: 1
file_date_updated: 2026-07-14T06:08:05Z
fulldoi: https://doi.org/10.4230/LIPICS.SOCG.2026.41
has_accepted_license: '1'
intvolume: '       367'
keyword:
- Algebraic topology
- Lefschetz complexes
- persistent homology
- vines and vineyards
- birth-death pairs
- shallow pairs
- relations
- partial orders
- transpositions
- Theory of computation → Computational geometry
language:
- iso: eng
month: '05'
oa: 1
oa_version: Published Version
project:
- _id: 2561EBF4-B435-11E9-9278-68D0E5697425
  call_identifier: FWF
  grant_number: I02979-N35
  name: Persistence and stability of geometric complexes
- _id: fc2ed2f7-9c52-11eb-aca3-c01059dda49c
  call_identifier: H2020
  grant_number: '101034413'
  name: 'IST-BRIDGE: International postdoctoral program'
publication: 42nd International Symposium on Computational Geometry
publication_identifier:
  eissn:
  - 1868-8969
  isbn:
  - '9783959774185'
publication_status: published
publisher: Schloss Dagstuhl - Leibniz-Zentrum für Informatik
quality_controlled: '1'
researchdata_availability: no
scopus_import: '1'
status: public
supplementarymaterial: no
title: The depth poset under transpositions in the filter
tmp:
  image: /images/cc_by.png
  legal_code_url: https://creativecommons.org/licenses/by/4.0/legalcode
  name: Creative Commons Attribution 4.0 International Public License (CC-BY 4.0)
  short: CC BY (4.0)
type: conference
user_id: 2DF688A6-F248-11E8-B48F-1D18A9856A87
volume: 367
year: '2026'
...
---
OA_type: closed access
_id: '22476'
abstract:
- lang: eng
  text: Projections of the future carbon and water cycles rely on knowledge on how
    forests will respond to rising atmospheric CO2. Experiments with elevated CO2
    are logistically challenging and carbon pools and fluxes are difficult to measure
    and upscale due to their spatiotemporal heterogeneity. Therefore, it is important
    to combine the knowledge derived from experimental results with modeling. Here,
    we systematically compare data from a free air CO2 enrichment (FACE) experiment
    in a mature deciduous forest in Switzerland with realizations from an ecohydrological
    model (Tethys–Chloris). We test whether a mechanistic ecohydrological model is
    able to simulate physiological plant responses under ambient and elevated CO2
    concentration. We overcome measurement limitations by quantifying differences
    in response to ambient and elevated CO2 over ten years. The reliability of model
    realizations is demonstrated by comparing simulations with field observations
    of stomatal conductance, sap flow, leaf and fruit litter, and stem growth. The
    model successfully captures the observed CO2-induced difference in stomatal conductance
    and transpiration and its sensitivity to atmospheric demand, as well as qualitative
    changes in soil moisture. The simulated differences between CO2 scenarios generally
    fall within the uncertainty of experimental observations, both for the carbon
    and water balance. Simulated total evapotranspiration is 2.8% (18 mm yr−1) lower
    and soil moisture 1.2% higher in the CO2-enriched scenario. Latent and sensible
    heat are modified by ca. 1 W m−2. Net primary production is simulated to increase
    by 19.8% and allocation to stem growth is 53 gC yr−1 m−2 higher in the elevated
    CO2 scenario, which represents the limit of the detection threshold of the experiment.
    Results show that while ecohydrological models can be used to reliably simulate
    multi-year energy, water, and carbon fluxes at the stand level, testing carbon
    allocation remains critical with current accuracy of field measurements. Uncertainties
    due to the simplified carbon allocation scheme are shown to be more significant
    for carbon than for energy and water fluxes. Generally, we conclude that for this
    type of forest, differences in annual energy and water fluxes induced by elevated
    CO2 are likely to be less than 10%.
article_processing_charge: No
article_type: original
author:
- first_name: Simone
  full_name: Fatichi, Simone
  id: cf8e546b-a9b0-11f0-a43b-aa89ed1b56d6
  last_name: Fatichi
- first_name: Sebastian
  full_name: Leuzinger, Sebastian
  last_name: Leuzinger
citation:
  ama: 'Fatichi S, Leuzinger S. Reconciling observations with modeling: The fate of
    water and carbon allocation in a mature deciduous forest exposed to elevated CO2.
    <i>Agricultural and Forest Meteorology</i>. 2013;174-175:144-157. doi:<a href="https://doi.org/10.1016/j.agrformet.2013.02.005">10.1016/j.agrformet.2013.02.005</a>'
  apa: 'Fatichi, S., &#38; Leuzinger, S. (2013). Reconciling observations with modeling:
    The fate of water and carbon allocation in a mature deciduous forest exposed to
    elevated CO2. <i>Agricultural and Forest Meteorology</i>. Elsevier. <a href="https://doi.org/10.1016/j.agrformet.2013.02.005">https://doi.org/10.1016/j.agrformet.2013.02.005</a>'
  chicago: 'Fatichi, Simone, and Sebastian Leuzinger. “Reconciling Observations with
    Modeling: The Fate of Water and Carbon Allocation in a Mature Deciduous Forest
    Exposed to Elevated CO2.” <i>Agricultural and Forest Meteorology</i>. Elsevier,
    2013. <a href="https://doi.org/10.1016/j.agrformet.2013.02.005">https://doi.org/10.1016/j.agrformet.2013.02.005</a>.'
  ieee: 'S. Fatichi and S. Leuzinger, “Reconciling observations with modeling: The
    fate of water and carbon allocation in a mature deciduous forest exposed to elevated
    CO2,” <i>Agricultural and Forest Meteorology</i>, vol. 174–175. Elsevier, pp.
    144–157, 2013.'
  ista: 'Fatichi S, Leuzinger S. 2013. Reconciling observations with modeling: The
    fate of water and carbon allocation in a mature deciduous forest exposed to elevated
    CO2. Agricultural and Forest Meteorology. 174–175, 144–157.'
  mla: 'Fatichi, Simone, and Sebastian Leuzinger. “Reconciling Observations with Modeling:
    The Fate of Water and Carbon Allocation in a Mature Deciduous Forest Exposed to
    Elevated CO2.” <i>Agricultural and Forest Meteorology</i>, vol. 174–175, Elsevier,
    2013, pp. 144–57, doi:<a href="https://doi.org/10.1016/j.agrformet.2013.02.005">10.1016/j.agrformet.2013.02.005</a>.'
  short: S. Fatichi, S. Leuzinger, Agricultural and Forest Meteorology 174–175 (2013)
    144–157.
das_tickbox: '1'
date_created: 2026-07-27T12:30:23Z
date_published: 2013-06-15T00:00:00Z
date_updated: 2026-08-12T13:59:36Z
day: '15'
doi: 10.1016/j.agrformet.2013.02.005
extern: '1'
fulldoi: https://doi.org/10.1016/j.agrformet.2013.02.005
keyword:
- Ecohydrological modeling
- Plant water relations
- FACE experiments
- Forest productivity
- CO2 enrichment
- Swiss Canopy Crane
language:
- iso: eng
month: '06'
oa_version: None
page: 144-157
publication: Agricultural and Forest Meteorology
publication_identifier:
  eissn:
  - 1873-2240
  issn:
  - 0168-1923
publication_status: published
publisher: Elsevier
quality_controlled: '1'
scopus_import: '1'
status: public
title: 'Reconciling observations with modeling: The fate of water and carbon allocation
  in a mature deciduous forest exposed to elevated CO2'
type: journal_article
user_id: ba8df636-2132-11f1-aed0-ed93e2281fdd
volume: 174-175
year: '2013'
...
