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3D Automatic Segmentation of the Hippocampus Using Wavelets with Applications to Radiotherapy Planning

机译:使用具有应用到放射治疗计划的小波自动分割海马的自动分割

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During the past half-century, the cornerstone of treatment for brain metastases has been whole brain irradiation (WBI). WBI has multiple salutary effects including rapid relief of neurological signs and symptoms as well as enhanced local control. Unfortunately, WBI may also engender side effects including memory deficits and decrements in quality of life. Since memory control is thought to be mediated by the hippocampus, attention has been turned to whole brain radiotherapeutic techniques that allow sparing of the hippocampus. In order to be able to minimize dose deposition within the hippocampus, clinicians must beable to confidently identify that structure. However, manually tracing out the hippocampus for each patient is time consuming and subject to individual bias. To this end, an automated method can be very useful for such a task. In this paper, we present a method for extracting the hippocampus from magnetic resonance imaging (MRI) data. Our method is based on a multi-scale shape representation using statistical learning in conjunction with spherical wavelets for shape representation. Indeed, the hippocampus shape information is statistically learned by the algorithm and is further utilized to extract a hippocampus from the given 3D MR image. Results are shown on data-sets provided by Brigham and Women's Hospital.
机译:在过去的半个世纪中,脑转移的治疗基石一直是全脑照射(WBI)。 WBI具有多种良好的效果,包括快速缓解神经系统症状和症状以及增强的局部控制。不幸的是,WBI还可以参加副作用,包括内存缺陷和造成生活质量下降。由于想到内存控制被海马介导,因此注意力已经转向整个脑放射治疗技术,以便允许对海马进行制备。为了能够最大限度地减少海马内的剂量沉积,临床医生必须自信地识别该结构。然而,手动追踪每个患者的海马是耗时的,并且受到个体偏差的耗时。为此,自动方法对于这种任务来说非常有用。在本文中,我们提出了一种从磁共振成像(MRI)数据中提取海马的方法。我们的方法基于使用统计学习的多尺度形状表示,与用于形状表示的球形小波结合。实际上,通过该算法统计学地学习海马形状信息,并且还用于从给定的3D MR图像中提取海马。结果显示在Brigham和女性医院提供的数据集上。

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