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基于不同算法的多束X射线源乳腺断层合成重建

Multi-beam X-ray source breast tomosynthesis reconstruction with different algorithms.

作者信息

Zhou Weihua, Qian Xin, Lu Jianping, Zhou Otto, Chen Ying

机构信息

Dept. of Electrical and Computer Engineering, Southern Illinois University, Carbondale, IL 62901.

Dept. of Physics and Astronomy, and Curriculum in Applied Sciences and Engineering, The University of North Carolina, Chapel Hill, NC 27599.

出版信息

Proc SPIE Int Soc Opt Eng. 2010;7622:76220H. doi: 10.1117/12.844295.

Abstract

Digital breast tomosynthesis is a new technique to improve the early detection of breast cancer by providing three-dimensional reconstruction volume of the object with limited-angle projection images. This paper investigated the image reconstruction with a standard biopsy training breast phantom using a novel multi-beam X-ray sources breast tomosynthesis system. Carbon nanotube technology based X-ray tubes were lined up along a parallel-imaging geometry to decrease the motion blur. Five representative reconstruction algorithms, including back projection (BP), filtered back projection (FBP), matrix inversion tomosynthesis (MITS), maximum likelihood expectation maximization (MLEM) and simultaneous algebraic reconstruction technique (SART), were investigated to evaluate the image reconstruction of the tomosynthesis system. Reconstructed images of the masses and micro-calcification clusters embedded in the phantom were studied. The evaluated multi-beam X-ray breast tomosynthesis system is able to generate three-dimensional information of the breast phantom with clearly-identified regions of the masses and calcifications. Future study will be done soon to further improve the imaging parameters' measurement and reconstruction.

摘要

数字乳腺断层合成是一种通过利用有限角度投影图像提供物体的三维重建体积来改善乳腺癌早期检测的新技术。本文使用一种新型多束X射线源乳腺断层合成系统,对一个标准活检训练乳腺体模的图像重建进行了研究。基于碳纳米管技术的X射线管沿平行成像几何结构排列,以减少运动模糊。研究了五种代表性的重建算法,包括反投影(BP)、滤波反投影(FBP)、矩阵反演断层合成(MITS)、最大似然期望最大化(MLEM)和同时代数重建技术(SART),以评估断层合成系统的图像重建。对体模中嵌入的肿块和微钙化簇的重建图像进行了研究。评估的多束X射线乳腺断层合成系统能够生成乳腺体模的三维信息,其中肿块和钙化区域清晰可辨。未来将很快开展进一步研究,以进一步改善成像参数的测量和重建。

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