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A Statistical Approach to Adult Census Income Level Prediction

机译:成人人口普查收入水平预测的统计方法

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摘要

The prominent inequality of wealth and income is a huge concern especially in the United States. The likelihood of diminishing poverty is one valid reason to reduce the world's surging level of economic inequality. The principle of universal moral equality ensures sustainable development and improve the economic stability of a nation. Governments in different countries have been trying their best to address this problem and provide an optimal solution. This study aims to show the usage of machine learning and data mining techniques in providing a solution to the income equality problem. The UCI Adult Dataset has been used for the purpose. Classification has been done to predict whether a person's yearly income in US falls in the income category of either greater than 50K Dollars or less equal to 50K Dollars category based on a certain set of attributes. The Gradient Boosting Classifier Model was deployed which clocked the highest accuracy of 88.16%, eventually breaking the benchmark accuracy of existing works.
机译:财富和收入的突出不等式是特别关注的局面尤其是在美国。减少贫困的可能性是降低世界经济不平等水平的一个有效原因。普遍德国平等的原则可确保可持续发展,提高国家的经济稳定。不同国家的政府一直在尽力解决这个问题并提供最佳解决方案。本研究旨在展示机器学习和数据挖掘技术的使用,为收入平等问题提供解决方案。 UCI成人数据集已用于此目的。已经完成了分类来预测,根据某一组属性,美国在美国的年收入是否落在大于50k美元或更少等于50k美元类别的收入类别中。部署梯度升压分类器模型,最高精度为88.16%,最终打破现有工作的基准准确性。

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