首页> 外国专利> PHYSICALLY MOTIVATED MACHINE LEARNING SYSTEM FOR AN OPTIMIZED INTRAOCULAR LENS CALCULATION

PHYSICALLY MOTIVATED MACHINE LEARNING SYSTEM FOR AN OPTIMIZED INTRAOCULAR LENS CALCULATION

机译:用于优化的眼内透镜计算的物理动力机器学习系统

摘要

A computer-implemented method for determining the refractive power of an intraocular lens to be inserted is presented. The method includes generating first training data for a machine learning system on the basis of a first physical model for a refractive power for an intraocular lens and training the machine learning system by means of the first training data generated, for the purposes of forming a first learning model for determining the refractive power. Furthermore, the method includes training the machine learning system, which was trained using the first training data, using clinical ophthalmological training data for forming a second learning model for determining the refractive power and providing ophthalmological data of a patient and an expected position of the intraocular lens to be inserted. Moreover, the method includes predicting the refractive power of the intraocular lens to be inserted by means of the trained machine learning system and the second learning model. In the process, the ophthalmological data provided and the position of the intraocular lens are used as input values for the machine learning system with the second learning model.
机译:提出了一种用于确定要插入的眼内透镜的屈光力的计算机实现的方法。该方法包括基于用于人工镜头的屈光力的第一物理模型来为机器学习系统生成第一训练数据,并通过产生第一训练数据,以便形成第一训练数据用于确定屈光力的学习模型。此外,该方法包括使用第一训练数据训练使用第一训练数据训练的机器学习系统,用于形成用于形成屈光力和提供患者眼科数据和眼内的预期位置的第二学习模型的临床眼科训练数据。镜头要插入。此外,该方法包括通过培训的机器学习系统和第二学习模型预测待插入的眼内透镜的屈光力。在该过程中,提供的眼科数据和眼内透镜的位置用作具有第二学习模型的机器学习系统的输入值。

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