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  • Washington, D.C : The World Bank  (1)
  • Stanford, Calif : Stanford Social Sciences
  • Annotation  (1)
  • 1
    Language: English
    Pages: 1 Online-Ressource (63 pages)
    Parallel Title: Erscheint auch als Ashwin, Julian Using Large Language Models for Qualitative Analysis can Introduce Serious Bias
    Keywords: Annotation ; Chatgpt ; Economic Theory and Research ; ICT Applications ; ICT Policy and Strategies ; Information and Communication Technologies ; Large Language Models (LLMS) ; LLAMA 2 ; Machine Bias ; Macroeconomics and Economic Growth ; Qualitative Analysis ; Rohingya People ; Social Science Research ; Text as Data
    Abstract: Large Language Models (LLMs) are quickly becoming ubiquitous, but the implications for social science research are not yet well understood. This paper asks whether LLMs can help us analyse large-N qualitative data from open-ended interviews, with an application to transcripts of interviews with displaced Rohingya people in Cox's Bazaar, Bangladesh. The analysis finds that a great deal of caution is needed in using LLMs to annotate text as there is a risk of introducing biases that can lead to misleading inferences. Here this refers to bias in the technical sense, that the errors that LLMs make in annotating interview transcripts are not random with respect to the characteristics of the interview subjects. Training simpler supervised models on high-quality human annotations with flexible coding leads to less measurement error and bias than LLM annotations. Therefore, given that some high quality annotations are necessary in order to asses whether an LLM introduces bias, this paper argues that it is probably preferable to train a bespoke model on these annotations than it is to use an LLM for annotation
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