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Acceleration of the noise suppression component of the DUCHAMP source-finder.

机译:加速DUCHAMP寻源器的噪声抑制组件。

摘要

The next-generation of radio interferometer arrays - the proposed Square Kilometre Array (SKA) and its precursor instruments, The Karoo Array Telescope (MeerKAT) and Australian Square Kilometre Pathfinder (ASKAP) - will produce radio observation survey data orders of magnitude larger than current sizes. The sheer size of the imaged data produced necessitates fully automated solutions to accurately locate and produce useful scientific data for radio sources which are (for the most part) partially hidden within inherently noisy radio observations (source extraction). Automated extraction solutions exist but are computationally expensive and do not yet scale to the performance required to process large data in practical time-frames. The DUCHAMP software package is one of the most accurate source extraction packages for general (source shape unknown) source finding. DUCHAMP's accuracy is primarily facilitated by the ue0 trous wavelet reconstruction algorithm, a multi-scale smoothing algorithm which suppresses erratic observation noise. This algorithm is the most computationally expensive and memory intensive within DUCHAMP and consequently improvements to it greatly improve overall DUCHAMP performance. We present a high performance, multithreaded implementation of the ue0 trous algorithm with a focus on `desktop' computing hardware to enable standard researchers to do their own accelerated searches. Our solution consists of three main areas of improvement: single-core optimisation, multi-core parallelism and the efficient out-of-core computation of large data sets with memory management libraries. Efficient out-of-core computation (data partially stored on disk when primary memory resources are exceeded) of the ue0 trous algorithm accounts for `desktop' computing's limited fast memory resources by mitigating the performance bottleneck associated with frequent secondary storage access. Although this work focuses on `desktop' hardware, the majority of the improvements developed are general enough to be used within other high performance computing models. Single-core optimisations improved algorithm accuracy by reducing rounding error and achieved a 4 serial performance increase which scales with the filter size used during reconstruction. Multithreading on a quad-core CPU further increased performance of the filtering operations within reconstruction to 22 (performance scaling approximately linear with increased CPU cores) and achieved 13 performance increase overall. All evaluated out-of-core memory management libraries performed poorly with parallelism. Single-threaded memory management partially mitigated the slow disk access bottleneck and achieved a 3.6 increase (uniform for all tested large data sets) for filtering operations and a 1.5 increase overall. Faster secondary storage solutions such as Solid State Drives or RAID arrays are required to process large survey data on `desktop' hardware in practical time-frames.
机译:下一代无线电干涉仪阵列-拟议的平方公里阵列(SKA)及其前身仪器Karoo阵列望远镜(MeerKAT)和澳大利亚平方公里探路仪(ASKAP)-将产生比当前大几个数量级的无线电观测测量数据大小。所生成图像数据的绝对大小需要全自动解决方案,以准确定位并产生有用的科学数据,以用于无线电源,这些无线电源(大部分)被部分隐藏在固有噪声的无线电观测中(源提取)。存在自动提取解决方案,但其计算量很大,并且尚未扩展到在实际时间范围内处理大数据所需的性能。 DUCHAMP软件包是用于常规(未知源形状)源查找的最准确的源提取软件包之一。杜氏小波重构算法主要是提高了DUCHAMP的准确性,后者是一种多尺度平滑算法,可抑制不稳定的观测噪声。该算法在DUCHAMP中是计算上最昂贵且占用大量内存的算法,因此,对其进行的改进极大地提高了DUCHAMP的整体性能。我们介绍 ue0 trous算法的高性能,多线程实现,重点放在“台式”计算硬件上,以使标准研究人员能够进行自己的加速搜索。我们的解决方案包括三个主要方面的改进:单核优化,多核并行性以及使用内存管理库对大型数据集进行有效的核外计算。 ue0 trous算法的有效核外计算(超出主存储器资源时部分存储在磁盘上的数据)通过减轻与频繁的辅助存储访问相关的性能瓶颈,解决了“台式机”计算有限的快速存储器资源。尽管这项工作侧重于“台式机”硬件,但是开发的大多数改进都足够通用,可以在其他高性能计算模型中使用。单核优化通过减少舍入误差提高了算法精度,并实现了4串行性能的提高,该性能随重建期间使用的滤波器大小成比例增长。四核CPU上的多线程将重构过程中的过滤操作性能进一步提高到22(性能随着CPU内核的增加而线性扩展),总体上实现了13的性能提升。所有评估的内核外内存管理库在并行性方面均表现不佳。单线程内存管理部分缓解了缓慢的磁盘访问瓶颈,并实现了3.6的增长(对于所有经过测试的大型数据集都是统一的)以进行过滤操作,总体上提高了1.5。需要更快的二级存储解决方案,例如固态驱动器或RAID阵列,才能在实际时间内在“台式”硬件上处理大型测量数据。

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    Badenhorst Scott;

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  • 年度 2015
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