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重新构想GPT在竞争环境中公共管理研究的认知可能性

Re‐Imagining the Epistemic Possibilities of GPT for Public Administration Research in Competitive Settings

Public Administration Review · 2026
被引 0
ABS 4*

中文导读

本研究提出一个使用GPT进行量表开发和合成数据生成的方法框架,用于测量、预测和校准公共部门创新成果,帮助研究者分析竞争环境中的创新项目。

Abstract

ABSTRACT Innovation is desirable for the public sector. Yet understanding what and how some innovation projects survive and thrive in a competitive landscape—or public sector innovation—is often challenging. The challenges not only rest in the invisibility of the features of an innovation to human eyes but also in the lack of their accessibility for analysis. This study showcases a methodological framework using a generative pre‐trained transformer (GPT) for scale development and synthetic data generation to measure, predict, retrodict, and calibrate innovation outcomes using real‐world and synthetic data and a human‐in‐the‐loop process. This study demonstrates the epistemic gains of the framework in predicting and manipulating competitive texts to simulate the past, present, and possibly the future. The approach offers avenues for future research on a wide range of competitive phenomena using large‐scale text analysis across the social sciences.

公共管理创新研究生成式预训练变换模型文本分析社会科学方法