PREDICTION OF TELECOM SERVICES CONSUMERS CHURN BY USING MACHINE LEARNING ALGORITHMS

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Abstract

Machine learning, or as it is also called automated learning, is a special subfield of scientific information technologies. The name "machine learning" refers to the automated detection of meaningful patterns in large data sets. Machine learning is gaining importance in many different areas of the economy. One of those areas is the prediction and prevention of consumer churn. There are two basic types of consumer churn, complete churn and partial churn. Machine learning is used to determine the most significant characteristics that play a role in the churn/retention of consumers, and with the help of machine learning it is possible to establish the probability of churn for each individual consumer. Some of the most commonly used machine learning algorithms for this issue are Logistic Regression, Gaussian Naive Bayes, Bernoulli Naive Bayes, Decision Tree, and Random Forest.
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利用机器学习算法预测电信服务消费者流失
机器学习,也被称为自动学习,是科学信息技术的一个特殊子领域。“机器学习”这个名字指的是在大型数据集中自动检测有意义的模式。机器学习在经济的许多不同领域越来越重要。其中一个领域是预测和预防消费者流失。消费者流失有两种基本类型:完全流失和部分流失。机器学习用于确定在消费者流失/留存中发挥作用的最重要特征,并且在机器学习的帮助下,可以确定每个消费者的流失概率。在这个问题上最常用的机器学习算法是逻辑回归、高斯朴素贝叶斯、伯努利朴素贝叶斯、决策树和随机森林。
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