• Matter and Radiation at Extremes
  • Vol. 9, Issue 2, 027801 (2024)
Jianpeng Gao1、2、*, Liang Sheng2, Xinyi Wang2, Yanhong Zhang2, Liang Li1, Baojun Duan2, Mei Zhang2, Yang Li2, and Dongwei Hei2
Author Affiliations
  • 1Department of Engineering Physics, Tsinghua University, Beijing 100084, China
  • 2National Key Laboratory of Intense Pulsed Radiation Simulation and Effect, Northwest Institute of Nuclear Technology, Xi’an 710024, China
  • show less
    DOI: 10.1063/5.0177342 Cite this Article
    Jianpeng Gao, Liang Sheng, Xinyi Wang, Yanhong Zhang, Liang Li, Baojun Duan, Mei Zhang, Yang Li, Dongwei Hei. Five-view three-dimensional reconstruction for ultrafast dynamic imaging of pulsed radiation sources[J]. Matter and Radiation at Extremes, 2024, 9(2): 027801 Copy Citation Text show less

    Abstract

    Multiaxial neutron/x-ray imaging and three-dimensional (3D) reconstruction techniques play a crucial role in gaining valuable insights into the generation and evolution mechanisms of pulsed radiation sources. Owing to the short emission time (∼200 ns) and drastic changes of the pulsed radiation source, it is necessary to acquire projection data within a few nanoseconds in order to achieve clear computed tomography 3D imaging. As a consequence, projection data that can be used for computed tomography image reconstruction at a certain moment are often available for only a few angles. Traditional algorithms employed in the process of reconstructing 3D images with extremely incomplete data may introduce significant distortions and artifacts into the final image. In this paper, we propose an iterative image reconstruction method using cylindrical harmonic decomposition and a self-supervised denoising network algorithm based on the deep image prior method. We augment the prior information with a 2D total variation prior and a 3D deep image prior. Single-wire Z-pinch imaging experiments have been carried out at Qin-1 facility in five views and four frames, with a time resolution of 3 ns for each frame and a time interval of 40 ns between adjacent frames. Both numerical simulations and experiments verify that our proposed algorithm can achieve high-quality reconstruction results and obtain the 3D intensity distribution and evolution of extreme ultraviolet and soft x-ray emission from plasma.
    Sr=m=MMsm(ρ,z)eimθ,

    View in Article

    sm(ρ,z)=sm*(ρ,z).

    View in Article

    S(r)=s0(ρ,z)+2m=1MResm(ρ,z)cosmθ2m=1MImsm(ρ,z)sinmθ.

    View in Article

    S(r)=s0(ρ,z)+2m=1Msma(ρ,z)cosmθ2m=1Msmb(ρ,z)sinmθ

    View in Article

    sm=arg minsmL(Irec,I),

    View in Article

    Ireci=Pp̂i{S},

    View in Article

    L(Irec,I)=λ2VNxNyi=1VIreci(x,y)Ii(x,y)22+KsTV,

    View in Article

    mins,dλ2IAs22+d1,s.t.d=Ksφ(s),

    View in Article

    mins,dλ2IAs22+d1+μ2dφ(s)22.

    View in Article

    sk+1=minsλ2IAs22+μk2dkφ(s)bk22,

    View in Article

    dk+1=shrinkφ(sk+1)+bk,1μk,

    View in Article

    bk+1=bk+φ(sk+1)dk+1.

    View in Article

    μk+1=γμk,Δk+1ηΔk,μk,Δk+1<ηΔk,

    View in Article

    Δk+11n1sk+1sk22+1n2dk+1dk22+bk+1bk22,

    View in Article

    Jianpeng Gao, Liang Sheng, Xinyi Wang, Yanhong Zhang, Liang Li, Baojun Duan, Mei Zhang, Yang Li, Dongwei Hei. Five-view three-dimensional reconstruction for ultrafast dynamic imaging of pulsed radiation sources[J]. Matter and Radiation at Extremes, 2024, 9(2): 027801
    Download Citation