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A Shallow 3d Convolutional Neural Network for Violence Detection in Videos

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Date

2024

Journal Title

Journal ISSN

Volume Title

Publisher

Cairo Univ, Fac Computers & information

Open Access Color

GOLD

Green Open Access

No

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Publicly Funded

No
Impulse
Top 10%
Influence
Average
Popularity
Top 10%

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Journal Issue

Abstract

With the recent worldwide statistical rise in the amount of public violence, automated violence detection in surveillance cameras has become a matter of high importance. This work introduces an end-to-end, trainable 3D Convolutional Neural Network (3D CNN) for detecting violence in video footage. The proposed network is inherently capable of processing both spatial and temporal information, thereby obviating the need for additional models that would introduce higher computational requirements and complexity. This work has two main contributions: 1) developing a lightweight 3D CNN suitable for inference on edge devices as mobile systems, and 2) a comprehensive explanation of all components comprising a CNN model, thereby enhances model interpretability. Experiments were conducted to assess the performance of the proposed model using a consolidated dataset combining four benchmark datasets. The results of the experiments support the asserted contributions, which are discussed in detail.

Description

Dundar, Naz/0009-0004-4899-5016

Keywords

Electronic computers. Computer science, QA75.5-76.95

Fields of Science

0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology

Citation

Dündar, Naz...et asl. (2024). "A shallow 3D convolutional neural network for violence detection in videos", Egyptian Informatics Journal, Vol. 26.

WoS Q

Q2

Scopus Q

Q1
OpenCitations Logo
OpenCitations Citation Count
4

Source

Egyptian Informatics Journal

Volume

26

Issue

Start Page

100455

End Page

PlumX Metrics
Citations

CrossRef : 6

Scopus : 10

Captures

Mendeley Readers : 21

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1.8381

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