Automated Road Extraction from Satellite Imagery Integrating Dense Depthwise Dilated Separable Spatial Pyramid Pooling with DeepLabV3+
Arpan Mahara, Md Rezaul Karim Khan, Naphtali D. Rishe, Wenjia Wang,, Seyed Masoud Sadjadi

TL;DR
This paper introduces a novel Dense Depthwise Dilated Separable Spatial Pyramid Pooling (DenseDDSSPP) module integrated into DeepLabV3+ for improved automatic road extraction from satellite imagery, addressing multi-scale and complex structures.
Contribution
It proposes a new DenseDDSSPP module and its integration into DeepLabV3+ to enhance multi-scale feature extraction for road segmentation in satellite images.
Findings
Outperforms state-of-the-art models in accuracy
Improves extraction of complex road structures
Demonstrates robustness across diverse satellite images
Abstract
Road Extraction is a sub-domain of Remote Sensing applications; it is a subject of extensive and ongoing research. The procedure of automatically extracting roads from satellite imagery encounters significant challenges due to the multi-scale and diverse structures of roads; improvement in this field is needed. The DeepLab series, known for its proficiency in semantic segmentation due to its efficiency in interpreting multi-scale objects' features, addresses some of these challenges caused by the varying nature of roads. The present work proposes the utilization of DeepLabV3+, the latest version of the DeepLab series, by introducing an innovative Dense Depthwise Dilated Separable Spatial Pyramid Pooling (DenseDDSSPP) module and integrating it in place of the conventional Atrous Spatial Pyramid Pooling (ASPP) module. This modification enhances the extraction of complex road structures…
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Taxonomy
TopicsAutomated Road and Building Extraction · Remote Sensing and LiDAR Applications · Image and Object Detection Techniques
MethodsDense Connections · Feedforward Network · Conditional Random Field · Dilated Convolution · Spatial Pyramid Pooling · DeepLab
