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A Statistical Analysis of the Social Status of Chinese Women: Data Mining Method Based on MapReduce

机译:中国女性社会地位的统计分析:基于MapReduce的数据挖掘方法

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By studying the influencing indicators of women's social status, we perform an ordered Logit regression analysis on the data of the China Comprehensive Social Survey in 2012, 2013 and 2015, and then select the assessment of self-social status in the female sample as the dependent variable. Using the impact indicators as independent variables to explore the impact of each variable on women's social status. At the same time, applying k-means clustering analysis based on MapReduce to mine the relationship between employment and education level between different genders. We find out the fact that women have a high level of education does not necessarily result in good employment treatment. Gender discrimination in the Chinese labor market is also persistent.
机译:通过研究妇女社会地位的影响指标,我们对2012年,2013年和2015年中国全面社会调查数据进行了有序的Logit回归分析,然后选择对依赖的女性样本中的自我社会地位评估 多变的。 使用影响指标作为独立变量,以探索每个变量对妇女的社会地位的影响。 同时,基于Mapreduce应用K-Means聚类分析,挖掘不同性别之间的就业与教育水平之间的关系。 我们发现女性有高等教育的事实并不一定会导致良好的就业待遇。 中国劳动力市场的性别歧视也持久。

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