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Implementing ID3 algorithm for gender identification of Bangladeshi people

机译:实现孟加拉国人民性别识别ID3算法

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Data mining is the procedure of breaking down data from unlike perspectives and resuming it into useful information. It is very important in the field of classification of the objects. It has been fruitfully applied in expert systems to get knowledge. We can determine appropriate classification of unknown objects according to decision tree rules by applying inductive methods to the given values of attributes of those objects. In this paper a decision tree learning algorithm ID3 is applied to build a decision tree in achieving our goal to gender identification of unknown objects. Our experiments have used records of 50 individuals among which 26 were male and 24 were female subjects having age groups of 19 to 25 years. The classification related to the training sets is done by proper calculation. The output of the work is the classified decision tree and the decision rules. It has been observed that the proposed decision tree can recognize 45 subjects gender from 50 individuals. It is a faster process in recognition of individuals' gender and having accuracy level 85% to 90%.
机译:数据挖掘是将数据与视角不同的数据分解并将其恢复为有用的信息。它在对象的分类领域非常重要。它已被效果充分应用于专家系统以获得知识。通过将归纳方法应用于这些对象的特征的给定值,我们可以根据决策树规则确定适当分类的未知对象。在本文中,应用了决策树学习算法ID3来构建决策树,以实现我们对未知对象的性别识别的目标。我们的实验使用了50个人的记录,其中26名是男性,24名是女性受试者,年龄组为19至25岁。与培训集相关的分类是通过正确计算完成的。工作的输出是分类决策树和决策规则。已经观察到,所提出的决策树可以从50个个人识别45个科目性别。这是一个较快的过程,以确认个人的性别,准确度为85%至90%。

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