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8篇 您的检索式:作者名="Eric AJ"
    题名 作者 年代 出处 被引量
1Clinical review: Use of renal re- placement therapies in special groups of ICU patients 显示文摘Eric AJ Hoste Annemieke Dhondt 2012Critical Care2012,16,1:1
2RIFLE criteria for acute kidney injury are associated with hospital mortality in critically ill patients: a cohort analysis显示文摘Eric AJ Hoste Gilles Clermont Alexander Kersten 2006Crit Care2006,10,2:1
3Clinical review: Use of renal replacement therapies in special groups of ICU patients显示文摘Eric AJ Hoste Annemieke Dhondt 2012Hoste and Dhondt Critical Care2012,16,:1
4Effect of nosocomial bloodstream infection on the outcome of critically Ⅲ patients with acute renal failure treated with renal replacement therapy显示文摘Eric AJ Hoste Stijn I Blot Norbert H 2004J Am Soc Nephrol2004,15,5:1
5Persistent chorea triggered by hyperglycemic crisis in diabetics显示文摘Eric AJ Hiroshi N Evidente VGH 2001Mov Disord2001,16,:1
6RIFLE criteria for acute kidney injury are associated with hospital mortality in critically ill patients:a cohort analysis显示文摘Hoste Eric Aj Clermont Gilles Kersten Alexander 2006Critical Care2006,10,:1
7Modulation of Apoptic and inflammatory genes by bioflavonoids and angiotensin Ⅱ inhibition in ureteral obstruction显示文摘Eric AJ Asha Shahed Daniel AS 2000Urology2000,56,2:1
8On strong-scaling and open-source tools for analyzing atom probe tomography data显示文摘The development of strong-scaling computational tools for high-throughput methods with an open-source code and transparent metadata standards has successfully transformed many computational materials science communities.While such tools are mature already in the condensed-matter physics community,the situation is still very different for many experimentalists.Atom probe tomography(APT)is one example.This microscopy and microanalysis technique has matured into a versatile nano-analytical characterization tool with applications that range from materials science to geology and possibly beyond.Here,data science tools are required for extracting chemo-structural spatial correlations from the reconstructed point cloud.For APT and other high-end analysis techniques,post-processing is mostly executed with proprietary software tools,which are opaque in their execution and have often limited performance.Software development by members of the scientific community has improved the situation but compared to the sophistication in the field of computational materials science several gaps remain.This is particularly the case for open-source tools that support scientific computing hardware,tools which enable high-throughput workflows,and open welldocumented metadata standards to align experimental research better with the fair data stewardship principles.To this end,we introduce paraprobe,an open-source tool for scientific computing and high-throughput studying of point cloud data,here exemplified with APT.We show how to quantify uncertainties while applying several computational geometry,spatial statistics,and clustering tasks for post-processing APT datasets as large as two billion ions.These tools work well in concert with Python and HDF5 to enable several orders of magnitude performance gain,automation,and reproducibility.Markus Kühbach Priyanshu Bajaj Huan Zhao Murat HÇelik Eric AJägle Baptiste Gault 2021npj Computational Materials2021,,1:0
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