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Classification of Interview Sheets Using Self-Organizing Maps for Determination of Ophthalmic Examinations

机译:使用自组织图确定眼科检查的面试纸分类

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In this paper, a method of determining examinations is presented for outpatients visiting the department of ophthalmology. It assumes that each of the interview sheets belongs to one of the four classes, and copes with the examination determination as the classification of the sheets using self-organizing maps. Training data presented to the maps are generated from handwriting sentences in the sheets. Some nouns, adjectives and adverbs that ophthalmologists consider to be of comparative importance are chosen as elements of the training data. The element values basically depend on frequencies of the chosen words appearing in the sentences. After map learning is complete, neurons in the map are labeled. The data class associated with the sheet to be checked is given as the label of the winner neuron for the presented data. It is established that the proposed method achieves as favorable classification accuracy as initial determination made by ophthalmologists.
机译:本文提出了一种确定检查方法的门诊就诊的眼科。假设每个采访表属于四个类别之一,并使用自组织映射图将检查确定作为表的分类来处理。呈现给地图的训练数据是根据工作表中的手写句子生成的。选择一些眼科医生认为比较重要的名词,形容词和副词作为训练数据的要素。元素值基本上取决于出现在句子中的所选单词的频率。地图学习完成后,将标记地图中的神经元。与要检查的工作表相关的数据类别将作为显示数据的获胜者神经元的标签给出。可以确定,所提出的方法可以达到与眼科医生最初确定的分类精度相同的分类精度。

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