Automated occupation coding with hierarchical features: a data-centric approach to classification with pre-trained language models

Author:

Safikhani Parisa,Avetisyan Hayastan,Föste-Eggers Dennis,Broneske David

Abstract

AbstractOccupation coding is the classification of information on occupation that is collected in the context of demographic variables. Occupation coding is an important, but a tedious task for researchers in social science and official statistics that calls for automation. Due to the complexity of the task, currently, researchers carry out hand-coding or computer-assisted coding. However, we argue that, with the rise of transformer-based language models, hand-coding can be displaced by models, such as BERT or GPT3. Hence, we compare these models with state-of-the-art encoding approaches, showing that language models have a clear advantage in Cohen’s kappa compared to related approaches, but also allow for flexible fine-grained coding of single digits. Taking into consideration the hierarchical structure of the occupational group, we also develop an approach that achieves better performance for the classification of different single digit combinations.

Funder

Deutsches Zentrum für Hochschul- und Wissenschaftsforschung GmbH (DZHW)

Publisher

Springer Science and Business Media LLC

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Opportunities and Challenges in Data-Centric AI;IEEE Access;2024

2. Potential Impact of Data-Centric AI on Society;IEEE Technology and Society Magazine;2023-09

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