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MovieChat+: Question-aware Sparse Memory for Long Video Question Answering

About

Recently, integrating video foundation models and large language models to build a video understanding system can overcome the limitations of specific pre-defined vision tasks. Yet, existing methods either employ complex spatial-temporal modules or rely heavily on additional perception models to extract temporal features for video understanding, and they only perform well on short videos. For long videos, the computational complexity and memory costs associated with long-term temporal connections are significantly increased, posing additional challenges.Taking advantage of the Atkinson-Shiffrin memory model, with tokens in Transformers being employed as the carriers of memory in combination with our specially designed memory mechanism, we propose MovieChat to overcome these challenges. We lift pre-trained multi-modal large language models for understanding long videos without incorporating additional trainable temporal modules, employing a zero-shot approach. MovieChat achieves state-of-the-art performance in long video understanding, along with the released MovieChat-1K benchmark with 1K long video, 2K temporal grounding labels, and 14K manual annotations for validation of the effectiveness of our method. The code along with the dataset can be accessed via the following https://github.com/rese1f/MovieChat.

Enxin Song, Wenhao Chai, Tian Ye, Jenq-Neng Hwang, Xi Li, Gaoang Wang• 2024

Related benchmarks

TaskDatasetResultRank
Video Question AnsweringMSRVTT-QA
Accuracy53.9
481
Video Question AnsweringMSRVTT-QA (test)
Accuracy53.9
371
Video Question AnsweringActivityNet-QA (test)
Accuracy48.1
275
Video Question AnsweringMSVD-QA (test)
Accuracy76.5
274
Video Question AnsweringNExT-QA (test)
Accuracy54.8
204
Video Question AnsweringNExT-QA (val)
Overall Acc54.8
176
Video Question AnsweringNExT-QA Multi-choice
Accuracy54.8
102
Video Question AnsweringVideoMME
Accuracy38.2
99
Video Question AnsweringEgoSchema
Accuracy53.5
88
Multiple-choice Video Question AnsweringEgoSchema
Accuracy56.4
61
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