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Interactive fusion and contrast enhancement for whole body PET/CT data using multi-image pixel composting

机译:使用多图像像素堆肥技术对全身PET / CT数据进行交互式融合和对比度增强

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摘要

The most important application of the dual-modality PET/CT is the ability to efficiently display the fused data. However, in PET/CT fusion, the amount of information displayed is often impaired as the CT data occupies greater range of contrast than that is possible to display without enhancements. A common approach to improving the CT information in the PET/CT fusion is by enhancing the contrast range of the CT data which can improve on the accuracy of structure localization and PET/CT interpretation. In this study, we present an interactive multi-image fusion which optimizes the display of the information from dual-modality PET/CT data. By interactively selecting a specific CT contrast range and assigning the resultant image as a layer, the multi-layers can be constructed and then fused using the multi-image pixel compositing. The enhanced CT data is further fused with the PET data for PET/CT diagnosis. The proposed algorithm is able to simultaneously display greater amount of information from the fused PET/CT data and reveal substantial details of the CT data that would not have been possible with standard PET/CT fusion. The preliminary results are encouraging and show potential in the PET/CT diagnosis and interpretation.
机译:双模式PET / CT的最重要应用是有效显示融合数据的能力。但是,在PET / CT融合中,显示的信息量通常会受到损害,因为CT数据所占的对比度范围要比没有增强显示的对比度范围大。改善PET / CT融合中CT信息的常用方法是扩大CT数据的对比度范围,从而可以提高结构定位和PET / CT解释的准确性。在这项研究中,我们提出了一种交互式的多图像融合,可以优化双模态PET / CT数据信息的显示。通过交互式选择特定的CT对比度范围并将所得图像分配为一层,可以构造多层,然后使用多图像像素合成技术对其进行融合。增强的CT数据进一步与PET数据融合在一起,以进行PET / CT诊断。所提出的算法能够从融合的PET / CT数据中同时显示更多信息,并揭示CT数据的实质细节,而标准PET / CT融合是不可能的。初步结果令人鼓舞,并显示出在PET / CT诊断和解释中的潜力。

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