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Future Fixation Sequence Prediction for Audio-Visual 360° Videos

Yucheng Zhu, Guangtao Zhai, Xiongkuo Min, Yunhao Li, Long Teng, Huiyu Duan, Liang Yuan, Xiaokang Yang

2025IEEE Transactions on Circuits and Systems for Video Technology9 citationsDOI

Abstract

Future fixation sequence prediction plays a crucial role in various aspects of virtual reality content production, transmission, rendering, and display. Accurate prediction of future fixation sequence can significantly enhance the quality of user experience, particularly in resource-constrained scenarios. In this paper, we present a novel framework for predicting future fixation sequence and achieves state-of-the-art performance. Specifically, the anti-projection-distortion FoV patch extraction algorithm is proposed to mitigate projection distortions. A comprehensive contextual representation is then constructed by integrating multiple data sources, including visual and audio information, historical fixation sequence, user identity, timestamp, and positional embeddings. The transformer-based predictor is proposed to perform the future fixation sequence prediction based on the integrated contextual representations. Additionally, we propose a framework that effectively utilizes saliency information as supervision and conduct saliency contrastive distillation during the training phase, eliminating the need for saliency data during inference. Overall, by integrating anti-projection-distortion and multimodal representations, along with key embeddings, a dedicated predictor, and contrastive distillation, our approach is designed to accurately predict future fixation sequences. Extensive experiments validate the effectiveness of our framework, demonstrating its superior performance in fixation prediction tasks.

Topics & Concepts

Computer scienceSequence (biology)Artificial intelligenceComputer visionVisualizationSpeech recognitionMultimediaGeneticsBiologySpeech and Audio ProcessingVideo Surveillance and Tracking MethodsVideo Analysis and Summarization
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