Improved Asteroid Astrometry and Photometry with Trail Fitting
arXiv:1209.6106 · doi:10.1086/668616
Abstract
Asteroid detections in astronomical images may appear as trails due to a combination of their apparent rate of motion and exposure duration. Nearby asteroids in particular typically have high apparent rates of motion and acceleration. Their recovery, especially on their discovery apparition, depends upon obtaining good astrometry from the trailed detections. We present an analytic function describing a trailed detection under the assumption of a Gaussian point spread function (PSF) and constant rate of motion. We have fit the function to both synthetic and real trailed asteroid detections from the Pan-STARRS1 survey telescope to obtain accurate astrometry and photometry. For short trails our trailing function yields the same astrometric and photometry accuracy as a functionally simpler 2-d Gaussian but the latter underestimates the length of the trail - a parameter that can be important for measuring the object's rate of motion and assessing its cometary activity. For trails longer than about 10 pixels (> 3xPSF) our trail fitting provides 3-times better astrometric accuracy and up to 2 magnitudes improvement in the photometry. The trail fitting algorithm can be implemented at the source detection level for all detections to provide trail length and position angle that can be used to reduce the false tracklet rate.
42 pages, 19 figures
References in corpus (3)
Cited by in corpus (32)
- The Zwicky Transient Facility: Data Processing, Products, and Archive
- Machine Learning for the Zwicky Transient Facility
- Statistical Analysis of Astrometric Errors for the Most Productive Asteroid Surveys
- Finding Very Small Near-Earth Asteroids using Synthetic Tracking
- Impact of the SpaceX Starlink Satellites on the Zwicky Transient Facility Survey Observations
- Realistic Detectability of Close Interstellar Comets
- DeepStreaks: identifying fast-moving objects in the Zwicky Transient Facility data with deep learning
- Detection of a faint fast-moving near-Earth asteroid using synthetic tracking technique
- Properties and evolution of NEO families created by tidal disruption at Earth
- Detecting Earth's Temporarily-Captured Natural Satellites - Minimoons
- High-fidelity Simulations of the Near-Earth Object Search Performance of the Large Synoptic Survey Telescope
- TRIPPy: Trailed Image Photometry in Python
- Small near-Earth asteroids in the Palomar Transient Factory survey: A real-time streak-detection system
- The size-frequency distribution of H>13 NEOs and ARM targets detected by Pan-STARRS1
- Towards Efficient Detection of Small Near-Earth Asteroids Using the Zwicky Transient Facility (ZTF)
- Testing Accuracy and Precision of Existing Photometry Algorithms on Moving Targets
- Machine Learning Based Real Bogus System for HSC-SSP Moving Object Detecting Pipeline
- A New Large Super-Fast Rotator: (335433) 2005 UW163
- Accurate Ground-based Near-Earth-Asteroid Astrometry using Synthetic Tracking
- Discovering Faint and High Apparent Motion Rate Near-Earth Asteroids Using A Deep Learning Program
- Unconfirmed Near-Earth Objects
- Aperture photometry on asteroid trails: detection of the fastest rotating near-Earth object
- Confirmation of Large Super-Fast Rotator (144977) 2005 EC127
- A Search for Subkilometer-sized Ordinary Chondrite Like Asteroids in the Main-Belt
- Distance determination method of dust particles using Rosetta OSIRIS NAC and WAC data
- Astreaks: Astrometry of NEOs with trailed background stars
- Characterizing the astrometric precision limit for moving targets observed with digital-array detectors
- Astrometric follow-up of near-Earth asteroid 2024 YR4 during a Torino scale level 3 alert
- A Centroiding Algorithm for Point-source Trails
- The effect of parallax and cadence on asteroid impact probabilities and warning times
- Response to Wright et al. 2018: Even more serious problems with NEOWISE
- Simulating Photometric Images of Moving Targets with Photon-mapping