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An adaptive local weighted image reconstruction algorithm for EIT/UTT dual-modality imaging

机译:EIT / UTT双模态成像的自适应局部加权图像重建算法

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Electrical Impedance Tomography (EIT) and Ultrasound Transmission Tomography (UTT) are widely used in industrial process detection and medical diagnosis. EIT has a higher sensitivity near the edge of the sensitive domain, while the UTT has a higher sensitivity near the center of the sensitive domain. Based on the point, high accuracy image reconstruction is feasible by fusing the EIT and UTT together. In the paper, an adaptive local-weighted image reconstruction algorithm was proposed to solve the EIT/UTT dual-modality imaging problem. In the method, an image segmentation algorithm was introduced to obtain the high-contrast EIT and UTT images, and an adaptive local weighted method is proposed to fuse the EIT and UTT images together. Since the weights in the image fusing operator are automatically selected based on the differences between the sensitivity mappings in EIT and UTT, the fusion images from the proposed method are robust to the errors in the signal modality, and are with less artifacts and noise. In order to test our method, some simulation experiments were carried out. The results show that the proposed algorithm has a higher accuracy than the conventional single-modality imaging algorithm.
机译:电阻抗层析成像(EIT)和超声透射层析成像(UTT)广泛用于工业过程检测和医学诊断。 EIT在敏感域的边缘附近具有较高的敏感度,而UTT在敏感域的中心附近具有较高的敏感度。基于这一点,通过将EIT和UTT融合在一起,可以实现高精度的图像重建。提出了一种自适应局部加权图像重建算法来解决EIT / UTT双模态成像问题。该方法引入了图像分割算法来获取高对比度的EIT和UTT图像,并提出了一种自适应的局部加权方法将EIT和UTT图像融合在一起。由于图像融合算子中的权重是根据EIT和UTT中的灵敏度映射之间的差异自动选择的,因此,所提出方法的融合图像对于信号模态中的错误具有鲁棒性,并且伪像和噪声更少。为了测试我们的方法,进行了一些仿真实验。结果表明,与传统的单模态成像算法相比,该算法具有更高的精度。

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