TY - JOUR
T1 - Science-driven optimization of the LSST observing strategy
AU - the LSST Science Collaborations
AU - Marshall, Phil
AU - Anguita, Timo
AU - Bianco, Federica B.
AU - Bellm, Eric C.
AU - Brandt, Niel
AU - Clarkson, Will
AU - Connolly, Andy
AU - Gawiser, Eric
AU - Ivezić, Željko
AU - Jones, Rhiannon Lynne
AU - Lochner, Michelle
AU - Lund, Michael B.
AU - Mahabal, Ashish
AU - Nidever, David
AU - Olsen, Knut
AU - Ridgway, Stephen
AU - Rhodes, Jason
AU - Shemmer, Ohad
AU - Trilling, David
AU - Vivas, Kathy
AU - Walkowicz, Lucianne
AU - Willman, Beth
AU - Yoachim, Peter
AU - Anderson, Scott
AU - Antilogus, Pierre
AU - Angus, Ruth
AU - Arcavi, Iair
AU - Awan, Humna
AU - Biswas, Rahul
AU - Bell, Keaton J.
AU - Bennett, David
AU - Britt, Chris
AU - Buzasi, Derek
AU - Casetti-Dinescu, Dana I.
AU - Chomiuk, Laura
AU - Claver, Chuck
AU - Cook, Kem
AU - Davenport, James
AU - Debattista, Victor
AU - Digel, Seth
AU - Doctor, Zoheyr
AU - Firth, R. E.
AU - Foley, Ryan
AU - Fong, Wen fai
AU - Galbany, Lluís
AU - Giampapa, Mark
AU - Gizis, John E.
AU - Graham, Melissa L.
AU - Grillmair, Carl
AU - Smith, Nathan
N1 - Publisher Copyright:
Copyright © 2017, The Authors. All rights reserved.
Copyright:
Copyright 2020 Elsevier B.V., All rights reserved.
PY - 2017/8/14
Y1 - 2017/8/14
N2 - The Large Synoptic Survey Telescope is designed to provide an unprecedented optical imaging dataset that will support investigations of our Solar System, Galaxy and Universe, across half the sky and over ten years of repeated observation. However, exactly how the LSST observations will be taken (the observing strategy or “cadence”) is not yet finalized. In this dynamically-evolving community white paper, we explore how the detailed performance of the anticipated science investigations is expected to depend on small changes to the LSST observing strategy. Using realistic simulations of the LSST schedule and observation properties, we design and compute diagnostic metrics and Figures of Merit that provide quantitative evaluations of different observing strategies, analyzing their impact on a wide range of proposed science projects. This is work in progress: we are using this white paper to communicate to each other the relative merits of the observing strategy choices that could be made, in an effort to maximize the scientific value of the survey. The investigation of some science cases leads to suggestions for new strategies that could be simulated and potentially adopted. Notably, we find motivation for exploring departures from a spatially uniform annual tiling of the sky: focusing instead on different parts of the survey area in different years in a “rolling cadence” is likely to have significant benefits for a number of time domain and moving object astronomy projects. The communal assembly of a suite of quantified and homogeneously coded metrics is the vital first step towards an automated, systematic, science-based assessment of any given cadence simulation, that will enable the scheduling of the LSST to be as well-informed as possible.
AB - The Large Synoptic Survey Telescope is designed to provide an unprecedented optical imaging dataset that will support investigations of our Solar System, Galaxy and Universe, across half the sky and over ten years of repeated observation. However, exactly how the LSST observations will be taken (the observing strategy or “cadence”) is not yet finalized. In this dynamically-evolving community white paper, we explore how the detailed performance of the anticipated science investigations is expected to depend on small changes to the LSST observing strategy. Using realistic simulations of the LSST schedule and observation properties, we design and compute diagnostic metrics and Figures of Merit that provide quantitative evaluations of different observing strategies, analyzing their impact on a wide range of proposed science projects. This is work in progress: we are using this white paper to communicate to each other the relative merits of the observing strategy choices that could be made, in an effort to maximize the scientific value of the survey. The investigation of some science cases leads to suggestions for new strategies that could be simulated and potentially adopted. Notably, we find motivation for exploring departures from a spatially uniform annual tiling of the sky: focusing instead on different parts of the survey area in different years in a “rolling cadence” is likely to have significant benefits for a number of time domain and moving object astronomy projects. The communal assembly of a suite of quantified and homogeneously coded metrics is the vital first step towards an automated, systematic, science-based assessment of any given cadence simulation, that will enable the scheduling of the LSST to be as well-informed as possible.
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M3 - Article
AN - SCOPUS:85094441738
JO - Nuclear Physics A
JF - Nuclear Physics A
SN - 0375-9474
ER -