Differential aperture photometry and digital coronagraphy with PRAIA

IF 1.8 4区 物理与天体物理 Q3 ASTRONOMY & ASTROPHYSICS
M. Assafin
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引用次数: 0

Abstract

PRAIA – Package for the Reduction of Astronomical Images Automatically – is a suite of photometric and astrometric tasks designed to cope with huge amounts of heterogeneous observations with fast processing, no human intervention, minimum parametrization and yet maximum possible accuracy and precision. It is the main tool used to analyse astronomical observations by an international collaboration involving Brazilian, French and Spanish researchers under the Lucky Star umbrella for Solar System studies. Here, we focus on the concepts of differential aperture photometry and digital coronagraphy underneath PRAIA, used in the reduction of stellar occultations, rotational light curves, mutual phenomena and natural satellite observations. We highlight novelties developed by us and never before reported in the literature, which significantly enhance the precision and automation of photometry and digital coronagraphy, such as: (a) PRAIA’s pixelized aperture photometry (PCAP), which avoids pixel sub-sampling or fractioning; (b) fully automatic object detection and aperture determination (BOIA), which abolishes the use of arbitrary sky background sigma factors, and finds better apertures than by using subjective FWHM factors; (c) better astrometry improving the aperture and coronagraphy centres, including the new Photogravity Center Method besides circular and elliptical Gaussian and Lorentzian generalized profiles; (d) coronagraphy of faint objects close to bright ones and vice-versa; e) use of elliptical rings for the coronagraphy of elongated profiles; (f) refined quartile ring statistics; (g) multiprocessing image capabilities for faster computation speed. We give examples showing the photometry performance, discuss the advantages of PRAIA over other popular packages for Solar System differential photometric observations, point out the uniqueness of its digital coronagraphy in comparison with other coronagraphy tools and methods, and comment about future planed implementations. Besides Solar System works, PRAIA can also be used in the differential photometry of variable and cataclysmic stars and transient phenomena like exoplanet transits and microlensing, and in the digital coronagraphy of astrophysical observations. PRAIA codes and input files are publicly available for the first time at: https://ov.ufrj.br/en/PRAIA/.

用PRAIA差分孔径测光和数字日冕
PRAIA -软件包自动减少天文图像-是一套光度和天文测量任务,旨在处理大量异构观测,快速处理,无人为干预,最小参数化,但最大可能的准确性和精度。它是一个由巴西、法国和西班牙研究人员组成的国际合作组织用来分析天文观测结果的主要工具,该组织隶属于太阳系研究的幸运星项目。在这里,我们重点介绍了PRAIA下的差分孔径测光和数字日冕的概念,用于减少恒星掩星,旋转光曲线,相互现象和自然卫星观测。我们重点介绍了我们开发的、以前从未在文献中报道过的新技术,这些技术显著提高了光度测定和数字日冕测定的精度和自动化程度,例如:(a) PRAIA的像素化孔径光度测定(PCAP),它避免了像素子采样或分选;(b)完全自动目标检测和孔径确定(BOIA),该方法消除了任意天空背景sigma因子的使用,并找到比使用主观FWHM因子更好的孔径;(c)更好的天体测量,改进了孔径和日冕中心,包括除了圆形和椭圆高斯和洛伦兹广义剖面之外的新的光重力中心方法;(d)微弱物体靠近明亮物体的日冕图,反之亦然;E)使用椭圆环对细长剖面进行日冕测量;(f)精细化四分位数环统计量;(g)多图像处理能力,计算速度更快。我们举例说明了其光度测量性能,讨论了PRAIA相对于其他流行的太阳系差分光度观测软件包的优势,指出了其数字日冕测量与其他日冕测量工具和方法相比的独特性,并对未来计划的实现进行了评论。除了太阳系工作外,PRAIA还可以用于变星和灾变恒星的差分光度测量,以及系外行星凌日和微透镜等瞬态现象,以及天体物理观测的数字日冕学。PRAIA代码和输入文件首次公开发布:https://ov.ufrj.br/en/PRAIA/。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Planetary and Space Science
Planetary and Space Science 地学天文-天文与天体物理
CiteScore
5.40
自引率
4.20%
发文量
126
审稿时长
15 weeks
期刊介绍: Planetary and Space Science publishes original articles as well as short communications (letters). Ground-based and space-borne instrumentation and laboratory simulation of solar system processes are included. The following fields of planetary and solar system research are covered: • Celestial mechanics, including dynamical evolution of the solar system, gravitational captures and resonances, relativistic effects, tracking and dynamics • Cosmochemistry and origin, including all aspects of the formation and initial physical and chemical evolution of the solar system • Terrestrial planets and satellites, including the physics of the interiors, geology and morphology of the surfaces, tectonics, mineralogy and dating • Outer planets and satellites, including formation and evolution, remote sensing at all wavelengths and in situ measurements • Planetary atmospheres, including formation and evolution, circulation and meteorology, boundary layers, remote sensing and laboratory simulation • Planetary magnetospheres and ionospheres, including origin of magnetic fields, magnetospheric plasma and radiation belts, and their interaction with the sun, the solar wind and satellites • Small bodies, dust and rings, including asteroids, comets and zodiacal light and their interaction with the solar radiation and the solar wind • Exobiology, including origin of life, detection of planetary ecosystems and pre-biological phenomena in the solar system and laboratory simulations • Extrasolar systems, including the detection and/or the detectability of exoplanets and planetary systems, their formation and evolution, the physical and chemical properties of the exoplanets • History of planetary and space research
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