论文标题
GECAM高能量瞬变和系统误差的定位
GECAM Localization of High Energy Transients and the Systematic Error
论文作者
论文摘要
引力波高能量电磁对应物全套监测器(GECAM)是一对专门用于监视包括引力波的伽马射波瞬变的微卫星(即GECAM-A和GECAM-B)闪烁。自2020年12月推出以来,GECAM-B发现了数百起天文和地面事件。对于这些爆发,定位是爆发识别和分类以及多波长中的随访观测值的关键。在这里,我们提出了一种带有高斯背景曲线可能性的泊松数据的贝叶斯定位方法,以基于具有不同方向的检测器中的爆发计数分布来定位GECAM爆发。我们证明,这种方法可以很好地适用于各种爆发,尤其是对于极短的爆发。此外,我们提出了一种新方法,以根据置信度测试来估计本地化的系统误差,这可以克服文献中现有方法的某些问题。我们通过Monte Carlo模拟验证此方法,然后将其应用于具有准确位置的突发样本,并发现GECAM-B定位的系统误差的平均值为$ \ sim 2.5^{\ Circ} $。通过考虑此系统误差,我们可以获得GECAM爆发的可靠定位概率图。我们的方法可以应用于其他伽马射线监测器。
Gravitational wave high-energy Electromagnetic Counterpart All-sky Monitor (GECAM) is a pair of microsatellites (i.e. GECAM-A and GECAM-B) dedicated to monitoring gamma-ray transients including gravitational waves high-energy electromagnetic counterparts, Gamma-ray Bursts, Soft Gamma-ray Repeaters, Solar Flares and Terrestrial Gamma-ray Flashes. Since launch in December 2020, GECAM-B has detected hundreds of astronomical and terrestrial events. For these bursts, localization is the key for burst identification and classification as well as follow-up observations in multi-wavelength. Here, we propose a Bayesian localization method with Poisson data with Gaussian background profile likelihood to localize GECAM bursts based on the burst counts distribution in detectors with different orientations. We demonstrate that this method can work well for all kinds of bursts, especially for extremely short ones. In addition, we propose a new method to estimate the systematic error of localization based on a confidence level test, which can overcome some problems of the existing method in literature. We validate this method by Monte Carlo simulations, and then apply it to a burst sample with accurate location and find that the mean value of the systematic error of GECAM-B localization is $\sim 2.5^{\circ}$. By considering this systematic error, we can obtain a reliable localization probability map for GECAM bursts. Our methods can be applied to other gamma-ray monitors.