利用层次聚类算法检测阿博特综合征的异常情况

Nur Syahirah Zulkipli, Siti Zanariah Satari, Wan Nur Syahidah Wan Yusoff
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引用次数: 0

摘要

颅骨发育异常综合症是一种先天性疾病,由于头骨发育异常,导致头骨形态异常。阿博特综合征是马来西亚常见的颅骨发育异常综合征之一,该综合征可归类为严重的颅面疾病。阿博特综合征患者的头骨形态异常可被识别为异常值,本研究对其进行了调查。本研究基于一项病例研究,对六名被诊断为阿博特综合征的儿童患者以及 22 名年龄在 0 至 12 岁之间的对照组患者进行了头骨形态分析,所有患者均在马来亚大学医疗中心(UMMC)接受了治疗。计算机断层扫描(CTSCAN)数据由马来亚大学医疗中心提供,记录时间为 2012 年至 2020 年,数据使用 MIMICS 软件测量头颅角度。基于聚类的程序将用于识别头颅角度数据集中的异常。头骨角度共有 12 个,使用分层聚类算法对这些角度进行分析,以识别异常值或异常情况。目的是使用基于聚类的程序检测异常情况,并确定马来西亚人群中与阿博特综合征(AS)相关的头骨角度。该算法成功地检测出了阿博特综合征数据集中的异常情况,研究发现,有些头骨角度的特定位置与阿博特综合征有关。这项研究还发现,0-24 个月和大于 24 个月的患者头骨角度的位置是不同的。这项研究的结果可以帮助手术团队在制定干预计划时,将更多的注意力集中在头骨的特定区域。这种指导有可能优化手术效果并降低潜在并发症的风险。
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Abnormalities Detection in Apert Syndrome using Hierarchical Clustering Algorithms
Craniosynostosis syndrome is a congenital condition occurring due to the abnormal development of the skull, leading to abnormalities in skull morphology. Apert syndrome is one of common craniosynostosis syndrome in Malaysia and this syndrome can be categorized as the severe craniofacial disorders. The abnormalities of skull morphological in Apert syndrome patient can be identified as outliers which are investigated in this study. This study presents a skull morphological analysis based on a case study involving six paediatric patients diagnosed with Apert syndrome, alongside 22 control patients aged 0 to 12 years, all of whom underwent treatment at the University Malaya Medical Centre (UMMC). The computerized tomography scan (CTSCAN) data is provided by UMMC recorded from year 2012 until 2020 and the data is measured using MIMICS software by taking the measurement of cranial angles. The clustering-based procedures will be applied to identify the abnormalities in skull angle dataset. There are 12 skull angles and these angles are analysed using hierarchical clustering algorithms for identifying the outliers or abnormalities. The objective is to detect the abnormalities and determine the skull angles that associated with Apert syndrome (AS) in Malaysia population using clustering-based procedure. The abnormalities in Apert syndrome datasets are successfully detected by the algorithms and this study found that there are skull angles with specific location of angles are associated with Apert syndrome. This study also found that the location of skull angles for patients age 0-24 months old and >24 months old are different. The findings of this study can assist the surgical team in directing additional focus towards specific regions of the skull during the planning of interventions. This guidance has the potential to optimize surgical outcomes and reduce the risk of potential complications.
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