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Papers/Abnormal Event Detection in Videos using Spatiotemporal Au...

Abnormal Event Detection in Videos using Spatiotemporal Autoencoder

Yong Shean Chong, Yong Haur Tay

2017-01-06Abnormal Event Detection In VideoSemi-supervised Anomaly DetectionEvent DetectionAnomaly Detectionobject-detectionObject Detection
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Abstract

We present an efficient method for detecting anomalies in videos. Recent applications of convolutional neural networks have shown promises of convolutional layers for object detection and recognition, especially in images. However, convolutional neural networks are supervised and require labels as learning signals. We propose a spatiotemporal architecture for anomaly detection in videos including crowded scenes. Our architecture includes two main components, one for spatial feature representation, and one for learning the temporal evolution of the spatial features. Experimental results on Avenue, Subway and UCSD benchmarks confirm that the detection accuracy of our method is comparable to state-of-the-art methods at a considerable speed of up to 140 fps.

Results

TaskDatasetMetricValueModel
Anomaly DetectionUBI-FightsAUC0.541LSTM-VAE
Anomaly DetectionUBI-FightsDecidability0.059LSTM-VAE
Anomaly DetectionUBI-FightsEER0.48LSTM-VAE
Anomaly DetectionUBI-FightsAUC0.541LSTM-AE
Anomaly DetectionUBI-FightsDecidability0.059LSTM-AE
Anomaly DetectionUBI-FightsEER0.48LSTM-AE
Abnormal Event Detection In VideoUBI-FightsAUC0.541LSTM-VAE
Abnormal Event Detection In VideoUBI-FightsDecidability0.059LSTM-VAE
Abnormal Event Detection In VideoUBI-FightsEER0.48LSTM-VAE
Abnormal Event Detection In VideoUBI-FightsAUC0.541LSTM-AE
Abnormal Event Detection In VideoUBI-FightsDecidability0.059LSTM-AE
Abnormal Event Detection In VideoUBI-FightsEER0.48LSTM-AE
Semi-supervised Anomaly DetectionUBI-FightsAUC0.541LSTM-AE
Semi-supervised Anomaly DetectionUBI-FightsDecidability0.059LSTM-AE
Semi-supervised Anomaly DetectionUBI-FightsEER0.48LSTM-AE

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