Papers by Tao Mei

3 papers
Tell-and-Answer: Towards Explainable Visual Question Answering using Attributes and Captions (D18-1)

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Challenge: Existing approaches to visual question answering represent images using pre-trained CNNs . but they rarely provide any insight, apart from the answer, into the VQA process .
Approach: They propose to break up the end-to-end VQA into two steps: explaining and reasoning . they first extract attributes and generate descriptions as explanations for an image . a reasoning module utilizes these explanations in place of the image to infer an answer .
Outcome: The proposed system achieves comparable performance with baselines, but with added benefits of explanability and the ability to improve with higher quality explanations.
InterFeedback: Unveiling Interactive Intelligence of Large Multimodal Models with Human Feedback (2025.findings-emnlp)

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Challenge: Existing benchmarks do not test Large Multimodal Models (LMMs) on their interactive intelligence with human users.
Approach: They propose an interactive framework that can be applied to any LMM and assess their interactive intelligence with human users.
Outcome: The proposed framework can be applied to any LMM and dataset to assess interactive intelligence with human users.
Prompt Refinement with Image Pivot for Text-to-Image Generation (2024.acl-long)

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Challenge: Recent advances in text-to-image generation have markedly expanded the boundaries of digital artistry, enabling the creation of visually compelling images with unprecedented ease.
Approach: They propose to decompose the prompt refinement process into two tasks: inferring user-preferred images from user languages and translating them into system languages.
Outcome: Experiments show that PRIP outperforms baselines and transfers to unseen systems in a zero-shot manner.

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