使用机器学习来探索老年人生活满意度轨迹的预测因素
Honghui Chen1, Xueting Zhang2, Wenjun Bian1
1Department of Psychology and Behavioral Sciences, Zhejiang University, Hangzhou, Zhejiang, China.
Applied psychology. Health and well-being
|August 14, 2024
概括
老年人的生活满意度随着时间的推移遵循不同的模式. 情绪健康和身体健康显著预测这些生活满意度轨迹,指导有针对性的干预.
科学领域:
- 老年学是指老年学的学科.
- 心理学 心理学 心理学
- 公共卫生 公共卫生
背景情况:
- 生活满意度对于老年人的整体福祉至关重要.
- 了解生活满意度轨迹是必不可少的,因为它的动态性质.
研究的目的:
- 为了探索中国老年人的各种生活满意度轨迹.
- 通过机器学习识别这些轨迹的预测因素.
主要方法:
- 来自中国健康与退休长度研究 (CHARLS) 的纵向数据.
- 潜在类增长建模和增长混合建模.
- 机器学习 (随机森林) 用于预测和预测器识别.
主要成果:
- 随着时间的推移,确定了四个不同的生活满意度轨迹.
- 机器学习模型准确地预测了这些轨迹.
- 关键预测因素包括情绪体验 (快乐,孤独),BMI和自我报告的健康.
结论:
- 生活满意度在老年人中表现出微妙的,动态的模式.
- 心理和身体健康是生活满意度轨迹的关键预测因素.
- 研究结果支持针对生活满意度低的人进行有针对性的干预.
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