AstroQ: Automated Scheduling of Cadenced Astronomical Observations

Fuente: arXiv
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Auteurs principaux: Lubin, Jack, Petigura, Erik A., Mišić, Velibor V., Van Zandt, Judah, Handley, Luke B.
Format: Preprint
Publié: 2025
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author Lubin, Jack
Petigura, Erik A.
Mišić, Velibor V.
Van Zandt, Judah
Handley, Luke B.
author_facet Lubin, Jack
Petigura, Erik A.
Mišić, Velibor V.
Van Zandt, Judah
Handley, Luke B.
contents Astronomy relies heavily on time domain observations. To maximize the scientific yield of such observations, astronomers must carefully match the observational cadence to the phenomena of interest. This presents significant scheduling challenges for observatories with multiple large programs, each with different cadence needs. To address this challenge, we developed AstroQ, an automated framework for scheduling cadenced observations. We tested this on a suite of Doppler exoplanet programs at Keck Observatory, where the algorithm powers the KPF-Community Cadence project. As a point of reference, AstroQ can determine the provably optimal ordering of 3680 observations of 200 targets -- each with its own cadence needs and accessibility constraints -- over a six month period to five minute time resolution. Schedules of this size may be constructed in ~120 seconds on modern workstation, enabling dynamic rescheduling due to weather changes, target-of-opportunity interrupts, and other needs. A key advantage of AstroQ over manual scheduling is realistic projections of program completion, savings in human effort, and elimination of human bias in balancing many programs. AstroQ is open source and may be applied to other scheduling needs, both in astronomy and beyond.
format Preprint
id arxiv_https___arxiv_org_abs_2506_08195
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle AstroQ: Automated Scheduling of Cadenced Astronomical Observations
Lubin, Jack
Petigura, Erik A.
Mišić, Velibor V.
Van Zandt, Judah
Handley, Luke B.
Instrumentation and Methods for Astrophysics
Earth and Planetary Astrophysics
Astronomy relies heavily on time domain observations. To maximize the scientific yield of such observations, astronomers must carefully match the observational cadence to the phenomena of interest. This presents significant scheduling challenges for observatories with multiple large programs, each with different cadence needs. To address this challenge, we developed AstroQ, an automated framework for scheduling cadenced observations. We tested this on a suite of Doppler exoplanet programs at Keck Observatory, where the algorithm powers the KPF-Community Cadence project. As a point of reference, AstroQ can determine the provably optimal ordering of 3680 observations of 200 targets -- each with its own cadence needs and accessibility constraints -- over a six month period to five minute time resolution. Schedules of this size may be constructed in ~120 seconds on modern workstation, enabling dynamic rescheduling due to weather changes, target-of-opportunity interrupts, and other needs. A key advantage of AstroQ over manual scheduling is realistic projections of program completion, savings in human effort, and elimination of human bias in balancing many programs. AstroQ is open source and may be applied to other scheduling needs, both in astronomy and beyond.
title AstroQ: Automated Scheduling of Cadenced Astronomical Observations
topic Instrumentation and Methods for Astrophysics
Earth and Planetary Astrophysics
url https://arxiv.org/abs/2506.08195