• DocumentCode
    792511
  • Title

    Beam Hardening Correction for Middle-Energy Industrial Computerized Tomography

  • Author

    Gao, Hewei ; Zhang, Li ; Chen, Zhiqiang ; Xing, Yuxiang ; Li, Shuanglei

  • Author_Institution
    Dept. of Eng. Phys., Tsinghua Univ., Beijing
  • Volume
    53
  • Issue
    5
  • fYear
    2006
  • Firstpage
    2796
  • Lastpage
    2807
  • Abstract
    In this paper, a new beam hardening correction (BHC) method for middle-energy industrial computerized tomography (CT) is presented. Our method is derived from linearization and is straightforward without iteration involved. The linearization is commonly used as a preprocessing method in BHC. Conventionally, only one-material objects can be conveniently corrected by linearization. In industrial CT, two-material objects, especially cylinders with high-Z material outside and low-Z material inside are frequently encountered. Our approach focuses on this kind of objects. The new method works well as long as the two-material object meets the conditions that the thickness of the outer material (usually wall) is thick enough and the second-order item of the Taylor expansion of the linearization is relatively small. We pointed out and proved that there is an approximately constant scaling factor difference between our linearization step and an ideal correction based on prior knowledge of objects. The scaling factor magnifies the attenuation coefficient of the inner material after reconstruction. Therefore, a weighting function is introduced into our algorithm as a restoration. To sum up, there are three steps in our method: 1) correct raw projections by the mapping function of the outer material; 2) reconstruct the cross-section image from the modified projections; 3) scale the image by a weighting function. With this method, the beam hardening artifacts are greatly reduced and the overall attenuation coefficients are accurately obtained. We also presented a compensation step to remove the countercupping artifacts in case that the conditions are not fully met. Our method is well verified in both numerical simulations and practical experiments on a 450-KeV CT system
  • Keywords
    boilers; computerised tomography; image reconstruction; pipes; Taylor expansion; attenuation coefficient; beam hardening correction; boilers; constant scaling factor; correct raw projections; countercupping artifacts; cylinders; high-Z outer material; image reconstruction; iteration; linearization; low-Z inner material; mapping function; middle-energy industrial computerized tomography; numerical simulations; one-material objects; pipes; polychromatic X-ray computerized tomography system; preprocessing method; two-material objects; Attenuation; Computed tomography; Computer industry; Filtration; Image reconstruction; Image restoration; Physics; Raw materials; Taylor series; X-ray imaging; Beam hardening correction; cupping artifacts; industrial computerized tomography; linearization;
  • fLanguage
    English
  • Journal_Title
    Nuclear Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9499
  • Type

    jour

  • DOI
    10.1109/TNS.2006.879825
  • Filename
    1710270