探索长周期架构:Kepler发现四个新行星候选者

Exploring Long-period Architectures: Four New Planet Candidates from Kepler with Periods >342 days

精选理由

这篇论文利用Kepler望远镜和先进的神经网络技术,在长周期轨道上发现了四个新的行星候选者,为研究系外行星系统提供了新的线索。

AI 摘要

利用Kepler太空望远镜和卷积神经网络,研究人员在长周期轨道上发现了四个新的行星候选者,其中两个候选者分别具有777.78天和505.495天的周期,以及3.55和2.74倍地球半径的大小。这些发现有助于完善对长周期系外行星系统的理解。

原文 · arXiv cs.LG

Exploring Long-period Architectures: Four New Planet Candidates from Kepler with Periods >342 days

The Kepler detection pipeline, as well as the transit method, has a bias towards shorter periods, leaving a dearth of detections at longer orbital periods. This relative lack of detections has left an incomplete picture of the architectures of exoplanet systems within the long-period regime. We have built a single transit detection pipeline, utilizing a classification convolutional neural network and the onboard spacecraft diagnostics of the Kepler spacecraft, to detect long-period planets. We apply our pipeline to all currently known planetary systems in the Kepler field hosting at least one planet with an orbital period longer than 6 days. We manually vet all new signals from our pipeline, and identify four new planetary candidates, all of which are in systems where the inner planets exhibit transit timing variations (TTVs). Two of these candidates, Kepler 1752.02 and Kepler 199.03, cause two transit events that are consistent with periods of $777.78^{+0.01}_{-0.02}$ and $505.495^{+0.004}_{-0.004}$ days, and radii of $3.55^{+0.15}_{-0.15}$ and $2.74^{+0.05}_{-0.05}$ $R_{\oplus}$, respectively. Our remaining two candidates, Kepler 1897.02 and Kepler 1811.02, are single transit candidates with radii $4.81^{+0.20}_{-0.19}$ and $3.25^{+0.28}_{-0.30}$ $R_{\oplus}$, respectively. The shortest orbital periods for these candidates, consistent with the Kepler dataset (gaps and coverage), are 342 days for Kepler 1897.02 and 544 days for Kepler 1811.02. The new planetary candidates, on their own, are incapable of reproducing the observed TTV signals in the inner system. Although difficult to schedule, follow-up observations are needed to further constrain the new candidates and potentially discover the planets causing the perturbations.