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Medical diagnostic image data fusion based on wavelet transformation and self-organising features mapping neural networks

机译:基于小波变换和自组织特征映射神经网络的医学诊断图像数据融合

摘要

In recent years, the collection of various data coming from anatomical and functional imagery is becoming very common for the study of a given pathology, and their aggregation generally allows for a better medical decision in clinical studies. However, it is difficult to simulate the human ability of image fusion when algorithms of image processing are piled up merely. On the basis of the review of researches on psychophysics and physiology of human vision, this paper presents an effective multi-resolution image data fusion methodology, which is based on discrete wavelet transform theory and self-organizing features mapping neural network (SOFMNN), to simulate the processes of images recognition and understanding implemented in the human vision system. Through the two-dimensional wavelet transform, original images can be decomposed into different types of details and levels. The integration rule can be built using self-organizing neural networks, just like the automatic work in human brain. As an example, the fusion process is applied in the clinical case: the study of some particular disease by MR/SPECT fusion. Results are presented and evaluated, and a preliminary clinical validation is achieved. The assessment of the method is encouraging, allowing its application on several clinical diagnostic problems.
机译:近年来,对于特定病理学的研究,从解剖学和功能影像中收集各种数据变得非常普遍,它们的聚集通常可以在临床研究中做出更好的医学决策。但是,仅堆积图像处理算法时,难以模拟人类的图像融合能力。在回顾人类视觉心理学和生理学研究的基础上,提出了一种有效的多分辨率图像数据融合方法,该方法基于离散小波变换理论和自组织特征映射神经网络(SOFMNN),模拟在人类视觉系统中实现的图像识别和理解过程。通过二维小波变换,原始图像可以分解为不同类型的细节和级别。可以使用自组织神经网络来构建集成规则,就像人脑中的自动工作一样。例如,融合过程应用于临床案例:通过MR / SPECT融合研究某些特定疾病。介绍并评估结果,并获得初步的临床验证。该方法的评估令人鼓舞,使其可用于一些临床诊断问题。

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