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首页> 外文期刊>Revista Ingenierías Universidad de Medellín >Towards a 3D modeling of brain tumors by using endoneurosonography and neural networks
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Towards a 3D modeling of brain tumors by using endoneurosonography and neural networks

机译:使用神经内镜和神经网络对脑肿瘤进行3D建模

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Minimally invasive surgeries have become popular because they reduce the typical risks of traditional interventions. In neurosurgery, recent trends suggest the combined use of endoscopy and ultrasound (endoneurosonography or ENS) for 3D virtualization of brain structures in real time. The ENS information can be used to generate 3D models of brain tumors during a surgery. This paper introduces a methodology for 3D modeling of brain tumors using ENS and unsupervised neural networks. The use of self-organizing maps (SOM) and neural gas networks (NGN) is particularly studied. Compared to other techniques, 3D modeling using neural networks offers advantages, since tumor morphology is directly encoded in synaptic weights of the network, no a priori knowledge is required, and the representation can be developed in two stages: off-line training and on-line adaptation. Experimental tests were performed using virtualized phantom brain tumors. At the end of the paper, the results of 3D modeling from an ENS database are presented
机译:微创外科手术已经普及,因为它们降低了传统干预措施的典型风险。在神经外科中,最近的趋势表明,内窥镜检查和超声(神经内镜或ENS)结合使用可以实时地对大脑结构进行3D虚拟化。 ENS信息可用于在手术过程中生成脑肿瘤的3D模型。本文介绍了使用ENS和无监督神经网络对脑肿瘤进行3D建模的方法。特别研究了自组织图(SOM)和神经气体网络(NGN)的使用。与其他技术相比,使用神经网络进行3D建模具有优势,因为肿瘤形态学是直接在网络的突触权重中编码的,因此无需先验知识,并且可以在两个阶段开发表示形式:离线训练和在线训练线路适应。实验测试是使用虚拟的幻影脑肿瘤进行的。最后,介绍了ENS数据库中3D建模的结果

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