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Using machine learning to uncover the relation between age and life satisfaction.


ABSTRACT: This study applies a machine learning (ML) approach to around 400,000 observations from the German Socio-Economic Panel to assess the relation between life satisfaction and age. We show that with our ML-based approach it is possible to isolate the effect of age on life satisfaction across the lifecycle without explicitly parameterizing the complex relationship between age and other covariates-this complex relation is taken into account by a feedforward neural network. Our results show a clear U-shape relation between age and life satisfaction across the lifespan, with a minimum at around 50 years of age.

SUBMITTER: Kaiser M 

PROVIDER: S-EPMC8960822 | biostudies-literature | 2022 Mar

REPOSITORIES: biostudies-literature

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Using machine learning to uncover the relation between age and life satisfaction.

Kaiser Micha M   Otterbach Steffen S   Sousa-Poza Alfonso A  

Scientific reports 20220328 1


This study applies a machine learning (ML) approach to around 400,000 observations from the German Socio-Economic Panel to assess the relation between life satisfaction and age. We show that with our ML-based approach it is possible to isolate the effect of age on life satisfaction across the lifecycle without explicitly parameterizing the complex relationship between age and other covariates-this complex relation is taken into account by a feedforward neural network. Our results show a clear U-  ...[more]

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