High Performance Partial Coherent X-Ray Ptychography

被引:5
|
作者
Enfedaque, Pablo [1 ]
Chang, Huibin [1 ,2 ]
Enders, Bjoern [3 ]
Shapiro, David [4 ]
Marchesini, Stefano [1 ]
机构
[1] Lawrence Berkeley Natl Lab, Computat Res Div, Berkeley, CA 94720 USA
[2] Tianjin Normal Univ, Sch Math Sci, Tianjin, Peoples R China
[3] Lawrence Berkeley Natl Lab, Natl Energy Res Sci Comp Ctr, Berkeley, CA USA
[4] Lawrence Berkeley Natl Lab, Adv Light Source, Berkeley, CA USA
来源
COMPUTATIONAL SCIENCE - ICCS 2019, PT I | 2019年 / 11536卷
基金
中国国家自然科学基金;
关键词
PHASE RETRIEVAL; RESOLUTION;
D O I
10.1007/978-3-030-22734-0_4
中图分类号
TP301 [理论、方法];
学科分类号
081202 ;
摘要
During the last century, X-ray science has enabled breakthrough discoveries in fields as diverse as medicine, material science or electronics, and recently, ptychography has risen as a reference imaging technique in the field. It provides resolutions of a billionth of a meter, macroscopic field of view, or the capability to retrieve chemical or magnetic contrast, among other features. The goal of ptychography is to reconstruct a 2D visualization of a sample from a collection of diffraction patterns generated from the interaction of a light source with the sample. Reconstruction involves solving a nonlinear optimization problem employing a large amount of measured data-typically two orders of magnitude bigger than the reconstructed sample-so high performance solutions are normally required. A common problem in ptychography is that the majority of the flux from the light sources is often discarded to define the coherence of an illumination. Gradient Decomposition of the Probe (GDP) is a novel method devised to address this issue. It provides the capability to significantly improve the quality of the image when partial coherence effects take place, at the expense of a three-fold increase of the memory requirements and computation. This downside, along with the fine-grained degree of parallelism of the operations involved in GDP, makes it an ideal target for GPU acceleration. In this paper we propose the first high performance implementation of GDP for partial coherence X-ray ptychography. The proposed solution exploits an efficient data layout and multi-gpu parallelism to achieve massive acceleration and efficient scaling. The experimental results demonstrate the enhanced reconstruction quality and performance of our solution, able process up to 4 million input samples per second on a single high-end workstation, and compare its performance with a reference HPC ptychography pipeline.
引用
收藏
页码:46 / 59
页数:14
相关论文
共 50 条
  • [31] X-ray Microspectroscopy and Ptychography on Nanoscale Structures in Rock Varnish
    Foerster, Jan-David
    Bykova, Iuliia
    Macholdt, Dorothea S.
    Jochum, Klaus Peter
    Kappl, Michael
    Kilcoyne, A. L. David
    Mueller, Maren
    Sorowka, Antje
    Weber, Bettina
    Weigand, Markus
    Schuetz, Gisela
    Andreae, Meinrat O.
    Poehlker, Christopher
    JOURNAL OF PHYSICAL CHEMISTRY C, 2021, 125 (41) : 22684 - 22697
  • [32] Multislice imaging of integrated circuits by precession X-ray ptychography
    Shimomura, Kei
    Hirose, Makoto
    Takahashi, Yukio
    ACTA CRYSTALLOGRAPHICA A-FOUNDATION AND ADVANCES, 2018, 74 : 66 - 70
  • [33] X-ray nanotomography using near-field ptychography
    Stockmar, Marco
    Hubert, Maxime
    Dierolf, Martin
    Enders, Bjoern
    Clare, Richard
    Allner, Sebastian
    Fehringer, Andreas
    Zanette, Irene
    Villanova, Julie
    Laurencin, Jerome
    Cloetens, Peter
    Pfeiffer, Franz
    Thibault, Pierre
    OPTICS EXPRESS, 2015, 23 (10): : 12720 - 12731
  • [34] High-resolution 3D imaging of integrated circuits by X-ray ptychography
    Odstrcil, Michal
    Holler, Mirko
    Raabe, Jorg
    Guizar-Sicairos, Manuel
    IMAGE SENSING TECHNOLOGIES: MATERIALS, DEVICES, SYSTEMS, AND APPLICATIONS V, 2018, 10656
  • [35] Coherent lensless X-ray imaging
    Chapman, Henry N.
    Nugent, Keith A.
    NATURE PHOTONICS, 2010, 4 (12) : 833 - 839
  • [36] Coherent X-Ray Diffraction Imaging
    Miao, Jianwei
    Sandberg, Richard L.
    Song, Changyong
    IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 2012, 18 (01) : 399 - 410
  • [37] Optics for coherent X-ray applications
    Yabashi, Makina
    Tono, Kensuke
    Mimura, Hidekazu
    Matsuyama, Satoshi
    Yamauchi, Kazuto
    Tanaka, Takashi
    Tanaka, Hitoshi
    Tamasaku, Kenji
    Ohashi, Haruhiko
    Goto, Shunji
    Ishikawa, Tetsuya
    JOURNAL OF SYNCHROTRON RADIATION, 2014, 21 : 976 - 985
  • [38] Broadband X-ray ptychography using multi-wavelength algorithm
    Yao, Yudong
    Jiang, Yi
    Klug, Jeffrey
    Nashed, Youssef
    Roehrig, Christian
    Preissner, Curt
    Marin, Fabricio
    Wojcik, Michael
    Cossairt, Oliver
    Cai, Zhonghou
    Vogt, Stefan
    Lai, Barry
    Deng, Junjing
    JOURNAL OF SYNCHROTRON RADIATION, 2021, 28 : 309 - 317
  • [39] Instrumentation and method developments of x-ray ptychography at the Advanced Photon Source
    Deng, Junjing
    Yao, Yudong
    Jiang, Yi
    Chen, Si
    Klug, Jeffrey A.
    Wojcik, Michael
    Marin, Fabricio S.
    Preissner, Curt
    Roehrig, Christian
    Cai, Zhonghou
    Vogt, Stefan
    Lai, Barry
    X-RAY NANOIMAGING: INSTRUMENTS AND METHODS IV, 2019, 11112
  • [40] X-Ray Near-Field Ptychography for Optically Thick Specimens
    Stockmar, Marco
    Zanette, Irene
    Dierolf, Martin
    Enders, Bjoern
    Clare, Richard
    Pfeiffer, Franz
    Cloetens, Peter
    Bonnin, Anne
    Thibault, Pierre
    PHYSICAL REVIEW APPLIED, 2015, 3 (01):