JOURNAL ARTICLE

Summary of object detection based on convolutional neural network

Abstract

Object detection is one of the most basic and central task in computer vision. Its task is to find all the interested objects in the image, and determine the category and location of the objects. Object detection is widely used and has strong practical value and research prospects. Applications include face detection, pedestrian detection and vehicle detection. In recent years, with the development of convolutional neural network, significant breakthroughs have been made in object detection. This paper describes in detail the classification of object detection algorithms based on deep learning. The algorithms are mainly divided into one-stage object algorithm and two-stage object algorithm, and the general data sets and performance indicators of object detection.

Keywords:
Object detection Convolutional neural network Computer science Artificial intelligence Object (grammar) Object-class detection Viola–Jones object detection framework Task (project management) Computer vision Pedestrian detection Pattern recognition (psychology) Cognitive neuroscience of visual object recognition Face (sociological concept) Face detection Artificial neural network Facial recognition system Pedestrian Engineering

Metrics

7
Cited By
1.73
FWCI (Field Weighted Citation Impact)
0
Refs
0.86
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

E-commerce and Technology Innovations
Social Sciences →  Business, Management and Accounting →  Business and International Management

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