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Titlebook: Computational Intelligence in Biomedical Imaging; Kenji Suzuki Book 2014 Springer Science+Business Media New York 2014 artificial neural n

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楼主: 果园
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Individual Productivity: A Sourcing Analysisnifest with gross anatomical changes that are visually similar, which limits the use of MRI in differentiating between them. Computer-aided image analysis enables a quantitative description of brain anatomy and detection of subtle, but important, anatomical changes that may be difficult to detect by
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A Novel Image-Based Approach for Early Detection of Prostate Cancer Using DCE-MRIence of the patient. In the final step, we collect two features from these curves and use a .-nearest neighbor (KNN) classifier to distinguish between malignant and benign detected tumors. Moreover, in this chapter we introduce a new approach to generate color maps that illustrate the propagation of
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Computational Anatomy in the Abdomen: Automated Multi-Organ and Tumor Analysis from Computed Tomogratraint. The liver, spleen, left kidney, right kidney and pancreas are concomitantly analyzed in the multi-organ analysis framework. Finally, the automated detection and segmentation of abdominal tumors (i.e., hepatic tumors) from abdominal CT images is presented using once again shape and enhancemen
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Computer-Aided Image Analysis for Vertebral Anatomy on X-Ray CT Imageserized scheme to quantify the vertebral geometry. The scheme provided appropriate values on the vertebral geometry with numerous CT cases. It is likely that such computer-based attempts will help us to achieve the sophisticated vertebral anatomy.
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Bone Suppression in Chest Radiographs by Means of Anatomically Specific Multiple Massive-Training ANnsity of bones are different from location to location and the capability of a single set of multi-resolution MTANNs is limited. To address this issue, the anatomically specific multiple MTANNs developed in this work were designed to separate bones from soft tissue in different anatomic segments of
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Image Segmentation for Connectomics Using Machine Learningudying small neural circuits using mostly manual analysis. In this chapter, we describe our image analysis pipeline that makes use of novel supervised machine learning techniques to tackle this problem.
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Image Analysis Techniques for the Quantification of Brain Tumors on MR Imagesnifest with gross anatomical changes that are visually similar, which limits the use of MRI in differentiating between them. Computer-aided image analysis enables a quantitative description of brain anatomy and detection of subtle, but important, anatomical changes that may be difficult to detect by
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