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Pairing-based Ensemble Classifier Learning using Convolutional Brain Multiplexes and Multi-view Brain Networks for Early Dementia Diagnosis

机译:基于卷积脑多路复用和多视图脑网络的基于配对的集成分类器学习,用于早期痴呆诊断

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摘要

The majority of works using brain connectomics for dementia diagnosis heavily relied on using structural (diffusion MRI) and functional brain connectivity (functional MRI). However, how early dementia affects the morphology of the cortical surface remains poorly understood. In this paper, we first introduce multi-view morphological brain network architecture which stacks multiple networks, each quantifying a cortical attribute (e.g., thickness). Second, to model the relationship between brain views, we propose a subject-specific convolutional brain multiplex composed of intra-layers (brain views) and inter-layers between them by convolving two consecutive views. By reordering the intra-layers, we generate different multiplexes for each subject. Third, to distinguish demented brains from healthy ones, we propose a pairing-based ensemble classifier learning strategy, which projects each pair of brain multiplex sets onto a low-dimensional space where they are fused, then classified. Our framework achieved the best classification results for the right hemisphere 90.8% and the left hemisphere 89.5%.
机译:使用脑部连接组学进行痴呆症诊断的大多数工作严重依赖于使用结构性(扩散MRI)和功能性脑部连接(功能性MRI)。但是,早期痴呆如何影响皮质表面形态仍然知之甚少。在本文中,我们首先介绍了多视图形态学脑网络体系结构,该体系结构堆叠了多个网络,每个网络都量化了皮层属性(例如厚度)。其次,为了对大脑视图之间的关系进行建模,我们提出了一个特定于对象的卷积脑多路复用器,它由两个连续的视图进行卷积,包括层内(大脑视图)和它们之间的层间。通过对内层进行重新排序,我们为每个主题生成不同的多路复用。第三,为了区分痴呆的大脑与健康的大脑,我们提出了一种基于配对的整体分类器学习策略,该策略将每对大脑多路复用集投影到一个低维空间,将它们融合并进行分类。我们的框架为右半球90.8%和左半球89.5%获得了最佳分类结果。

著录项

  • 来源
    《Connectomics in NeuroImaging》|2017年|42-50|共9页
  • 会议地点 Quebec City(CA)
  • 作者单位

    BASIRA Lab, CVIP Group, School of Science and Engineering, Computing, University of Dundee, Dundee, UK;

    BASIRA Lab, CVIP Group, School of Science and Engineering, Computing, University of Dundee, Dundee, UK;

    BASIRA Lab, CVIP Group, School of Science and Engineering, Computing, University of Dundee, Dundee, UK;

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  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-26 14:07:00

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