4.6 Article

A Phase Congruency and Local Laplacian Energy Based Multi-Modality Medical Image Fusion Method in NSCT Domain

期刊

IEEE ACCESS
卷 7, 期 -, 页码 20811-20824

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/ACCESS.2019.2898111

关键词

Medical image fusion; multi-modality sensor fusion; NSCT; phase congruency; Laplacian energy

资金

  1. National Natural Science Foundation of China [61803061, 61703347]
  2. Science and Technology Research Program of Chongqing Municipal Education Commission [KJQN201800603]
  3. Major Science and Technology Project of Yunnan Province [2018ZF017]
  4. Chongqing Natural Science Foundation [cstc2018jcyjAX0167]
  5. Common Key Technology Innovation Special of Key Industries of Chongqing Science and Technology Commission [cstc2017zdcy-zdyfX0067, cstc2017zdcy-zdyfX0055]
  6. Artificial Intelligence Technology Innovation Significant Theme Special Project of Chongqing Science and Technology Commission [cstc2017rgzn-zdyfX0014, cstc2017rgzn-zdyfX0035]

向作者/读者索取更多资源

Multi-modality image fusion provides more comprehensive and sophisticated information in modern medical diagnosis, remote sensing, video surveillance, and so on. This paper presents a novel multi-modality medical image fusion method based on phase congruency and local Laplacian energy. In the proposed method, the non-subsampled contourlet transform is performed on medical image pairs to decompose the source images into high-pass and low-pass subbands. The high-pass subbands are integrated by a phase congruency-based fusion rule that can enhance the detailed features of the fused image for medical diagnosis. A local Laplacian energy-based fusion rule is proposed for low-pass subbands. The local Laplacian energy consists of weighted local energy and the weighted sum of Laplacian coefficients that describe the structured information and the detailed features of source image pairs, respectively. Thus, the proposed fusion rule can simultaneously integrate two key components for the fusion of low-pass subbands. The fused high-pass and low-pass subbands are inversely transformed to obtain the fused image. In the comparative experiments, three categories of multi-modality medical image pairs are used to verify the effectiveness of the proposed method. The experiment results show that the proposed method achieves competitive performance in both the image quantity and computational costs.

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