JOURNAL ARTICLE

Edge Detection via Fusion Difference Convolution

Zhenyu YinZisong WangChao FanXiaohui WangTong Qiu

Year: 2023 Journal:   Sensors Vol: 23 (15)Pages: 6883-6883   Publisher: Multidisciplinary Digital Publishing Institute

Abstract

Edge detection is a crucial step in many computer vision tasks, and in recent years, models based on deep convolutional neural networks (CNNs) have achieved human-level performance in edge detection. However, we have observed that CNN-based methods rely on pre-trained backbone networks and generate edge images with unwanted background details. We propose four new fusion difference convolution (FDC) structures that integrate traditional gradient operators into modern CNNs. At the same time, we have also added a channel spatial attention module (CSAM) and an up-sampling module (US). These structures allow the model to better recognize the semantic and edge information in the images. Our model is trained from scratch on the BIPED dataset without any pre-trained weights and achieves promising results. Moreover, it generalizes well to other datasets without fine-tuning.

Keywords:
Computer science Convolutional neural network Convolution (computer science) Enhanced Data Rates for GSM Evolution Artificial intelligence Edge detection Pattern recognition (psychology) Scratch Channel (broadcasting) Edge device Computer vision Image (mathematics) Artificial neural network Image processing

Metrics

8
Cited By
1.46
FWCI (Field Weighted Citation Impact)
36
Refs
0.79
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Neural Network Applications
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Image and Object Detection Techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Robotics and Sensor-Based Localization
Physical Sciences →  Engineering →  Aerospace Engineering

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