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Multimedia human brain database system for surgical candidacy determination in temporal lobe epilepsy with content-based image retrieval

机译:基于内容的图像检索的颞叶癫痫颞叶癫痫患者的多媒体人脑数据库系统

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This paper presents the development of a human brain multimedia database for surgical candidacy determination in temporal lobe epilepsy. The focus of the paper is on content-based image management, navigation and retrieval. Several medical image-processing methods including our newly developed segmentation method are utilized for information extraction/correlation and indexing. The input data includes T1-, T2-Weighted MRI and FLAIR MRI and ictal and interictal SPECT modalities with associated clinical data and EEG data analysis. The database can answer queries regarding issues such as the correlation between the attribute X of the entity Y and the outcome of a temporal lobe epilepsy surgery. The entity Y can be a brain anatomical structure such as the hippocampus. The attribute X can be either a functionality feature of the anatomical structure Y, calculated with SPECT modalities, such as signal average, or a volumetric/morphological feature of the entity Y such as volume or average curvature. The outcome of the surgery can be any surgery assessment such as memory quotient. A determination is made regarding surgical candidacy by analysis of both textual and image data. The current database system suggests a surgical determination for the cases with relatively small hippocampus and high, signal intensity average on FLAIR images within the hippocampus. This indication pretty much fits with the surgeons' expectations/observations. Moreover, as the database gets more populated with patient profiles and individual surgical outcomes, using data mining methods one may discover partially invisible correlations between the contents of different modalities of data and the outcome of the surgery.
机译:本文提出了人脑多媒体数据库的发展,用于颞叶癫痫的外科候选候选。本文的重点是基于内容的图像管理,导航和检索。包括我们的新开发的分段方法的几种医学图像处理方法用于信息提取/相关性和索引。输入数据包括具有相关临床数据和EEG数据分析的T1-,T2加权的MRI和FLAIR MRI和ICTAL和Interrictal Spect模态。数据库可以回答关于实体y属性X之间的相关性的问题的查询以及颞叶癫痫手术的结果。实体y可以是脑解剖结构,例如海马。属性X可以是解剖结构Y的功能特征,其利用SPECT模态计算,例如信号平均值,或实体Y的体积/形态特征,例如诸如体积或平均曲率。手术的结果可以是任何手术评估,如记忆商。通过分析文本和图像数据来进行关于手术候选的确定。目前的数据库系统表明海马海马和高,信号强度平均水平相对小,信号强度平均水平的外科测定。这种迹象几乎符合外科医生的期望/观察。此外,由于数据库获得更多地利用患者简档和单独的外科结果,使用数据挖掘方法可以发现不同数据模式的内容和手术的结果之间的部分不可见相关性。

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