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Patterns of functional vision loss in glaucoma determined with archetypal analysis

机译:原型分析确定青光眼功能性视力丧失的模式

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摘要

Glaucoma is an optic neuropathy accompanied by vision loss which can be mapped by visual field (VF) testing revealing characteristic patterns related to the retinal nerve fibre layer anatomy. While detailed knowledge about these patterns is important to understand the anatomic and genetic aspects of glaucoma, current classification schemes are typically predominantly derived qualitatively. Here, we classify glaucomatous vision loss quantitatively by statistically learning prototypical patterns on the convex hull of the data space. In contrast to component-based approaches, this method emphasizes distinct aspects of the data and provides patterns that are easier to interpret for clinicians. Based on 13 231 reliable Humphrey VFs from a large clinical glaucoma practice, we identify an optimal solution with 17 glaucomatous vision loss prototypes which fit well with previously described qualitative patterns from a large clinical study. We illustrate relations of our patterns to retinal structure by a previously developed mathematical model. In contrast to the qualitative clinical approaches, our results can serve as a framework to quantify the various subtypes of glaucomatous visual field loss.
机译:青光眼是伴有视力丧失的视神经病变,可以通过视野(VF)测试进行映射,揭示与视网膜神经纤维层解剖结构相关的特征性模式。尽管有关这些模式的详细知识对于理解青光眼的解剖学和遗传学方面很重要,但是当前的分类方案通常主要是定性的。在这里,我们通过统计学习数据空间凸包上的原型模式,对青光眼视力丧失进行定量分类。与基于组件的方法相比,此方法强调数据的不同方面,并提供了易于为临床医生解释的模式。基于来自大型临床青光眼实践的13 231个可靠的Humphrey VF,我们确定了具有17个青光眼视力丧失原型的最佳解决方案,该原型与大型临床研究中先前描述的定性模式非常吻合。我们通过先前开发的数学模型说明了我们的模式与视网膜结构的关系。与定性的临床方法相反,我们的结果可以作为量化青光眼视野丧失的各种亚型的框架。

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