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THE ROCKSTAR PHASE-SPACE TEMPORAL HALO FINDER AND THE VELOCITY OFFSETS OF CLUSTER CORES

机译:ROCKSTAR相空间临时晕圈和簇芯的速度偏移

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We present a new algorithm for identifying dark matter halos, substructure, and tidal features. The approach is based on adaptive hierarchical refinement of friends-of-friends groups in six phase-space dimensions and one time dimension, which allows for robust (grid-independent, shape-independent, and noise-resilient) tracking of substructure; as such, it is named ROCKSTAR (Robust Overdensity Calculation using K-Space Topologically Adaptive Refinement). Our method is massively parallel (up to 105 CPUs) and runs on the largest current simulations (1010?particles) with high efficiency (10 CPU hours and 60 gigabytes of memory required per billion particles analyzed). A previous paper has shown ROCKSTAR to have excellent recovery of halo properties; we expand on these comparisons with more tests and higher-resolution simulations. We show a significant improvement in substructure recovery compared to several other halo finders and discuss the theoretical and practical limits of simulations in this regard. Finally, we present results that demonstrate conclusively that dark matter halo cores are not at rest relative to the halo bulk or substructure average velocities and have coherent velocity offsets across a wide range of halo masses and redshifts. For massive clusters, these offsets can be up to 350?km?s–1 at z = 0 and even higher at high redshifts. Our implementation is publicly available at http://code.google.com/p/rockstar.
机译:我们提出了一种用于识别暗物质光晕,下部结构和潮汐特征的新算法。该方法基于在六个相空间维度和一个时间维度上对朋友组的自适应分层细化,从而允许对子结构进行可靠的(独立于网格,形状独立和抗噪声的)跟踪。因此,它被命名为ROCKSTAR(使用K空间拓扑自适应细化的鲁棒密度计算)。我们的方法是大规模并行的(最多105个CPU),并在最大的当前模拟(> 1010个粒子)上高效运行(每十亿个粒子需要10个CPU小时和60 GB的内存)。先前的论文表明ROCKSTAR具有出色的光晕特性恢复能力。我们将通过更多的测试和更高分辨率的模拟来扩展这些比较。与其他几个晕轮发现者相比,我们在子结构恢复方面显示出显着改善,并在这方面讨论了模拟的理论和实际限制。最后,我们提供的结果最终证明了暗物质晕芯相对于晕体积或子结构平均速度不是静止的,并且在广泛的晕质量和红移范围内具有相干的速度偏移。对于大型星团,这些偏移在z = 0时可以高达350?km?s–1,在高红移时甚至更高。我们的实现可在http://code.google.com/p/rockstar上公开获得。

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