人工知能学会第二種研究会資料
Online ISSN : 2436-5556
Facebook を活用した貧困層推定の課題と展望 —日米比較と Random Forest の適用—
八木 真理奈
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研究報告書・技術報告書 フリー

2024 年 2024 巻 BI-024 号 p. 02-

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As inclusive business progresses, estimating the annual income status of users on SNS offers the possibility of appropriate intervention methods for people with low incomes. This paper analyzed people with low incomes in Japan and the United States using Facebook advertising data. It used Random Forest to examine the differences between regions with high and low poverty rates. The results showed that high interest in tobacco in the United States is associated with poverty rates. However, there is room for improvement in the model's accuracy and the difficulty of estimating income status from Facebook advertising data. Future challenges include increasing the types of data and further consideration of analytical methods.

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