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Mining Chinese Historical Sources At Scale: A Machine Learning-Approach to Qing State Capacity

Author

Listed:
  • Wolfgang Keller
  • Carol H. Shiue
  • Sen Yan

Abstract

Primary historical sources are often by-passed for secondary sources due to high human costs of accessing and extracting primary information–especially in lower-resource settings. We propose a supervised machine-learning approach to the natural language processing of Chinese historical data. An application to identifying different forms of social unrest in the Veritable Records of the Qing Dynasty shows that approach cuts dramatically down the cost of using primary source data at the same time when it is free from human bias, reproducible, and flexible enough to address particular questions. External evidence on triggers of unrest also suggests that the computer-based approach is no less successful in identifying social unrest than human researchers are.

Suggested Citation

  • Wolfgang Keller & Carol H. Shiue & Sen Yan, 2024. "Mining Chinese Historical Sources At Scale: A Machine Learning-Approach to Qing State Capacity," NBER Working Papers 32982, National Bureau of Economic Research, Inc.
  • Handle: RePEc:nbr:nberwo:32982
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    More about this item

    JEL classification:

    • C8 - Mathematical and Quantitative Methods - - Data Collection and Data Estimation Methodology; Computer Programs
    • N45 - Economic History - - Government, War, Law, International Relations, and Regulation - - - Asia including Middle East

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