Online Estimation of Evolving Human Visual Interest

Author:

Katti Harish1,Rajagopal Anoop Kolar1,Kankanhalli Mohan2,Kalpathi Ramakrishnan1

Affiliation:

1. Indian Institute of Science, India

2. National University of Singapore, Singapore

Abstract

Regions in video streams attracting human interest contribute significantly to human understanding of the video. Being able to predict salient and informative Regions of Interest (ROIs) through a sequence of eye movements is a challenging problem. Applications such as content-aware retargeting of videos to different aspect ratios while preserving informative regions and smart insertion of dialog (closed-caption text) 1 into the video stream can significantly be improved using the predicted ROIs. We propose an interactive human-in-the-loop framework to model eye movements and predict visual saliency into yet-unseen frames. Eye tracking and video content are used to model visual attention in a manner that accounts for important eye-gaze characteristics such as temporal discontinuities due to sudden eye movements, noise, and behavioral artifacts. A novel statistical- and algorithm-based method gaze buffering is proposed for eye-gaze analysis and its fusion with content-based features. Our robust saliency prediction is instantiated for two challenging and exciting applications. The first application alters video aspect ratios on-the-fly using content-aware video retargeting, thus making them suitable for a variety of display sizes. The second application dynamically localizes active speakers and places dialog captions on-the-fly in the video stream. Our method ensures that dialogs are faithful to active speaker locations and do not interfere with salient content in the video stream. Our framework naturally accommodates personalisation of the application to suit biases and preferences of individual users.

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Networks and Communications,Hardware and Architecture

Cited by 12 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Attention-based automatic editing of virtual lectures for reduced production labor and effective learning experience;International Journal of Human-Computer Studies;2024-01

2. Automatic Subtitle Placement Through Active Speaker Identification in Multimedia Documents;2021 International Conference on e-Health and Bioengineering (EHB);2021-11-18

3. A View on the Viewer: Gaze-Adaptive Captions for Videos;Proceedings of the 2020 CHI Conference on Human Factors in Computing Systems;2020-04-21

4. Recognition of Advertisement Emotions with Application to Computational Advertising;IEEE Transactions on Affective Computing;2020

5. DEEP-HEAR: A Multimodal Subtitle Positioning System Dedicated to Deaf and Hearing-Impaired People;IEEE Access;2019

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