A direct comparison of high-speed methods for the numerical Abel transform

被引:97
|
作者
Hickstein, Daniel D. [1 ]
Gibson, Stephen T. [2 ]
Yurchak, Roman [3 ]
Das, Dhrubajyoti D. [4 ]
Ryazanov, Mikhail [5 ,6 ]
机构
[1] Kapteyn Murnane Labs Inc, Boulder, CO 80301 USA
[2] Australian Natl Univ, Res Sch Phys & Engn, Canberra, ACT 2601, Australia
[3] Symerio, F-91120 Palaiseau, France
[4] Yale Univ, Dept Chem & Environm Engn, New Haven, CT 06511 USA
[5] Natl Inst Stand & Technol, JILA, Boulder, CO 80309 USA
[6] Univ Colorado, Boulder, CO 80309 USA
来源
REVIEW OF SCIENTIFIC INSTRUMENTS | 2019年 / 90卷 / 06期
基金
澳大利亚研究理事会;
关键词
SOOT VOLUME FRACTION; INVERSION; RECONSTRUCTION; IMAGES; FLAME;
D O I
10.1063/1.5092635
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
The Abel transform is a mathematical operation that transforms a cylindrically symmetric three-dimensional (3D) object into its two-dimensional (2D) projection. The inverse Abel transform reconstructs the 3D object from the 2D projection. Abel transforms have wide application across numerous fields of science, especially chemical physics, astronomy, and the study of laser-plasma plumes. Consequently, many numerical methods for the Abel transform have been developed, which makes it challenging to select the ideal method for a specific application. In this work, eight published transform methods have been incorporated into a single, open-source Python software package (PyAbel) to provide a direct comparison of the capabilities, advantages, and relative computational efficiency of each transform method. Most of the tested methods provide similar, high-quality results. However, the computational efficiency varies across several orders of magnitude. By optimizing the algorithms, we find that some transform methods are sufficiently fast to transform 1-megapixel images at more than 100 frames per second on a desktop personal computer. In addition, we demonstrate the transform of gigapixel images.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Comparison of Forecasting Methods for Thermal Error on High-speed Motorized Spindle
    Lei, Chunli
    Rui, Zhiyuan
    Liu, Jun
    Fang, Jingfang
    MATERIALS PROCESSING TECHNOLOGY, PTS 1-4, 2011, 291-294 : 2991 - 2994
  • [22] HIGH-SPEED ACCESSING BY DIRECT ACCESSING
    KOUMURA, K
    TAKIZAWA, F
    TSUJISAWA, T
    INADA, H
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS SHORT NOTES & REVIEW PAPERS, 1989, 28 : 73 - 76
  • [23] NOVEL OPTICAL METHODS FOR HIGH-SPEED DIRECT MODULATION OF SEMICONDUCTOR-LASERS
    KOBAYASHI, K
    LANG, R
    MINEMURA, K
    JAPANESE JOURNAL OF APPLIED PHYSICS, 1976, 15 : 281 - 287
  • [24] Numerical simulation of high-speed impacts on brittle materials using the particle methods
    Dept. of Aero. Eng., Nagoya Univ., Chikusa-ku Nagoya 464-8603, Japan
    Zairyo, 8 (825-829):
  • [25] High-speed and acceleration micrometric jets induced by GHz streaming: A numerical study with direct numerical simulations
    Daru, Virginie
    Vincent, Bjarne
    Baudoin, Michael
    JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2024, 155 (04): : 2470 - 2481
  • [26] Comparison of Direct-Detection Approaches for High-Speed Datacenter Campus Networks
    Wettlin, Tom
    Calabro, Stefano
    Rahman, Talha
    Sabbir-Bin Hossain, Md
    Wei, Jinlong
    Stojanovic, Nebojsa
    Pachnicke, Stephan
    2021 EUROPEAN CONFERENCE ON OPTICAL COMMUNICATION (ECOC), 2021,
  • [27] Performance comparison of flux schemes for numerical simulation of high-speed inviscid flows
    John, Bibin
    Sarath, G.
    Kulkarni, Vinayak
    Natarajan, Ganesh
    PROGRESS IN COMPUTATIONAL FLUID DYNAMICS, 2014, 14 (02): : 83 - 96
  • [28] High-speed object detection methods
    Okon-Fafara, Marta
    Kawalec, Adam
    2017 RADIOELECTRONIC SYSTEMS CONFERENCE, 2018, 10715
  • [29] PERFORMANCE METHODS FOR HIGH-SPEED AIRCRAFT
    HAYES, WD
    JOURNAL OF THE AERONAUTICAL SCIENCES, 1945, 12 (03): : 345 - 348
  • [30] HIGH-SPEED MACHINING BY CUTTING METHODS
    MILBERG, J
    WERKSTATTSTECHNIK ZEITSCHRIFT FUR INDUSTRIELLE FERTIGUNG, 1983, 73 (01): : 5 - 10