Non‑local mean denoising in diffusion tensor space

  • Authors:
    • Baihai Su
    • Qiang Liu
    • Jie Chen
    • Xi Wu
  • View Affiliations

  • Published online on: June 6, 2014     https://doi.org/10.3892/etm.2014.1764
  • Pages: 447-453
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Abstract

The aim of the present study was to present a novel non‑local mean (NLM) method to denoise diffusion tensor imaging (DTI) data in the tensor space. Compared with the original NLM method, which uses intensity similarity to weigh the voxel, the proposed method weighs the voxel using tensor similarity measures in the diffusion tensor space. Euclidean distance with rotational invariance, and Riemannian distance and Log‑Euclidean distance with affine invariance were implemented to compare the geometric and orientation features of the diffusion tensor comprehensively. The accuracy and efficacy of the proposed novel NLM method using these three similarity measures in DTI space, along with unbiased novel NLM in diffusion‑weighted image space, were compared quantitatively and qualitatively in the present study.

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August-2014
Volume 8 Issue 2

Print ISSN: 1792-0981
Online ISSN:1792-1015

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Spandidos Publications style
Su B, Liu Q, Chen J and Wu X: Non‑local mean denoising in diffusion tensor space. Exp Ther Med 8: 447-453, 2014
APA
Su, B., Liu, Q., Chen, J., & Wu, X. (2014). Non‑local mean denoising in diffusion tensor space. Experimental and Therapeutic Medicine, 8, 447-453. https://doi.org/10.3892/etm.2014.1764
MLA
Su, B., Liu, Q., Chen, J., Wu, X."Non‑local mean denoising in diffusion tensor space". Experimental and Therapeutic Medicine 8.2 (2014): 447-453.
Chicago
Su, B., Liu, Q., Chen, J., Wu, X."Non‑local mean denoising in diffusion tensor space". Experimental and Therapeutic Medicine 8, no. 2 (2014): 447-453. https://doi.org/10.3892/etm.2014.1764