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SDG Mapping Results for 1,000 Publications from Large Language Models: GPT-4o, Mixtral, Llmma 2, Llmma 3, Gemma 2, and Qwen 2

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Zenodo2024-07-31 更新2026-05-26 收录
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Randomly selected 1,000 publications from the Swinburne University of Technology research bank were used for SDG mapping tasks with the large language model GPT-4o and the open-source models Mixtral, Llmma 2, Llmma 3, Gemma 2, and Qwen 2. The input to each model consisted of the publication’s title and abstract. The designed prompt is as follows: PROMPT = '''Analyze the publication and determine the SDGs it aligns with. Evaluate against all the 17 SDGs provide the reason for alignment. In the end summarise the confidence levels(%) for each assigned SDG in JSON format. For example: {example}. Title: {title} Description: {description}''' example = '''{ 'Goal 6': 0.67, 'Goal 11': 0.50, 'Goal 3': 0.25}'''

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2024-07-22
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