GPT-4V with Emotion: A Zero-shot Benchmark for Generalized Emotion Recognition

December 07, 2023 ยท Entered Twilight ยท ๐Ÿ› Information Fusion

๐Ÿ’ค TWILIGHT: Eternal Rest
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Repo contents: chatgpt.py, config.py, image, main.py, readme.md, results

Authors Zheng Lian, Licai Sun, Haiyang Sun, Kang Chen, Zhuofan Wen, Hao Gu, Bin Liu, Jianhua Tao arXiv ID 2312.04293 Category cs.CV: Computer Vision Cross-listed cs.MM Citations 86 Venue Information Fusion Repository https://github.com/zeroQiaoba/gpt4v-emotion โญ 96 Last Checked 2 months ago
Abstract
Recently, GPT-4 with Vision (GPT-4V) has demonstrated remarkable visual capabilities across various tasks, but its performance in emotion recognition has not been fully evaluated. To bridge this gap, we present the quantitative evaluation results of GPT-4V on 21 benchmark datasets covering 6 tasks: visual sentiment analysis, tweet sentiment analysis, micro-expression recognition, facial emotion recognition, dynamic facial emotion recognition, and multimodal emotion recognition. This paper collectively refers to these tasks as ``Generalized Emotion Recognition (GER)''. Through experimental analysis, we observe that GPT-4V exhibits strong visual understanding capabilities in GER tasks. Meanwhile, GPT-4V shows the ability to integrate multimodal clues and exploit temporal information, which is also critical for emotion recognition. However, it's worth noting that GPT-4V is primarily designed for general domains and cannot recognize micro-expressions that require specialized knowledge. To the best of our knowledge, this paper provides the first quantitative assessment of GPT-4V for GER tasks. We have open-sourced the code and encourage subsequent researchers to broaden the evaluation scope by including more tasks and datasets. Our code and evaluation results are available at: https://github.com/zeroQiaoba/gpt4v-emotion.
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