Towards Measuring and Modeling "Culture" in LLMs: A Survey
Muhammad Farid Adilazuarda, Sagnik Mukherjee, Pradhyumna Lavania, Siddhant Singh, Alham Fikri Aji, Jacki O'Neill, Ashutosh Modi, Monojit Choudhury
Abstract
We present a survey of more than 90 recent papers that aim to study cultural representation and inclusion in large language models (LLMs). We observe that none of the studies explicitly define "culture", which is a complex, multifaceted concept; instead, they probe the models on some specially designed datasets which represent certain aspects of "culture." We call these aspects the proxies of culture, and organize them across two dimensions of demographic and semantic proxies. We also categorize the probing methods employed. Our analysis indicates that only certain aspects of "culture," such as values and objectives, have been studied, leaving several other interesting and important facets, especially the multitude of semantic domains (Thompson et al., 2020) and aboutness (Hershcovich et al., 2022) , unexplored. Two other crucial gaps are the lack of robustness of probing techniques and situated studies on the impact of cultural misand under-representation in LLM-based applications. Compilation and details of papers used for the survey can be found via our GitHub repository 1 * Equal contribution 1 https://github.com/faridlazuarda/ cultural-llm-papers
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Install the CLIlune papers fulltext 7430a701-c8e5-4113-863d-3493eee1fdf5Cited by top-tier papers38
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