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Video Action Understanding

delete2021-01-01
delete17
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OA
AI
M
Matthew Hutchinson *
V
Vijay Gadepally
DOI:10.1109/ACCESS.2021.3115476delete
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摘要

摘要

En 中文
Many believe that the successes of deep learning on image understanding problems can be replicated in the realm of video understanding. However, due to the scale and temporal nature of video, the span of video understanding problems and the set of proposed deep learning solutions is arguably wider and more diverse than those of their 2D image siblings. Finding, identifying, and predicting actions are a few of the most salient tasks in this emerging and rapidly evolving field. With a pedagogical emphasis, this tutorial introduces and systematizes fundamental topics, basic concepts, and notable examples in supervised video action understanding. Specifically, we clarify a taxonomy of action problems, catalog and highlight video datasets, describe common video data preparation methods, present the building blocks of state-of-the-art deep learning model architectures, and formalize domain-specific metrics to baseline proposed solutions. This tutorial is intended to be accessible to a general computer science audience and assumes a conceptual understanding of supervised learning.
Keyword:
Proposals
Tutorials
Deep learning
Measurement
Task analysis
Spatiotemporal phenomena
Data models
Action detection
action localization
action prediction
action proposal
action recognition
action understanding
video understanding

期刊

IEEE Access 封面图
IEEE Access
IF:
3.6
论文数:
9.8W
被引数:
29.4W

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