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Papers/Finding Action Tubes

Finding Action Tubes

Georgia Gkioxari, Jitendra Malik

2014-11-21CVPR 2015 6Action DetectionSkeleton Based Action Recognitionobject-detectionObject Detection
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Abstract

We address the problem of action detection in videos. Driven by the latest progress in object detection from 2D images, we build action models using rich feature hierarchies derived from shape and kinematic cues. We incorporate appearance and motion in two ways. First, starting from image region proposals we select those that are motion salient and thus are more likely to contain the action. This leads to a significant reduction in the number of regions being processed and allows for faster computations. Second, we extract spatio-temporal feature representations to build strong classifiers using Convolutional Neural Networks. We link our predictions to produce detections consistent in time, which we call action tubes. We show that our approach outperforms other techniques in the task of action detection.

Results

TaskDatasetMetricValueModel
VideoJ-HMDBAccuracy (RGB+pose)62.5Action Tubes
Temporal Action LocalizationJ-HMDBAccuracy (RGB+pose)62.5Action Tubes
Zero-Shot LearningJ-HMDBAccuracy (RGB+pose)62.5Action Tubes
Activity RecognitionJ-HMDBAccuracy (RGB+pose)62.5Action Tubes
Action LocalizationJ-HMDBAccuracy (RGB+pose)62.5Action Tubes
Action DetectionUCF SportsFrame-mAP 0.568.1Action Tubes
Action DetectionUCF SportsVideo-mAP 0.575.8Action Tubes
Action DetectionJ-HMDBFrame-mAP 0.536.2Action Tubes
Action DetectionJ-HMDBVideo-mAP 0.553.3Action Tubes
Action DetectionJ-HMDBAccuracy (RGB+pose)62.5Action Tubes
3D Action RecognitionJ-HMDBAccuracy (RGB+pose)62.5Action Tubes
Action RecognitionJ-HMDBAccuracy (RGB+pose)62.5Action Tubes

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