Enhancing Ship Classification in Optical Satellite Imagery: Integrating Convolutional Block Attention Module with ResNet for Improved Performance
Ryan Donghan Kwon, Gangjoo Robin Nam, Jisoo Tak, Junseob Shin, Hyerin, Cha, Seung Won Lee

TL;DR
This paper introduces an enhanced CNN architecture combining CBAM and architectural innovations to significantly improve ship classification accuracy in optical satellite imagery, demonstrating near-perfect results for key ship classes.
Contribution
The study integrates CBAM with ResNet50 and architectural enhancements to achieve substantial accuracy improvements in satellite-based ship classification.
Findings
Accuracy increased from 85% to 95%.
Near-perfect precision and recall for bulk carrier and oil tanker classes.
Attention heatmaps show more focused feature detection.
Abstract
In this study, we present an advanced convolutional neural network (CNN) architecture for ship classification based on optical satellite imagery, which significantly enhances performance through the integration of a convolutional block attention module (CBAM) and additional architectural innovations. Building upon the foundational ResNet50 model, we first incorporated a standard CBAM to direct the model's focus toward more informative features, achieving an accuracy of 87% compared to 85% of the baseline ResNet50. Further augmentations involved multiscale feature integration, depthwise separable convolutions, and dilated convolutions, culminating in an enhanced ResNet model with improved CBAM. This model demonstrated a remarkable accuracy of 95%, with precision, recall, and F1 scores all witnessing substantial improvements across various ship classes. In particular, the bulk carrier and…
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Taxonomy
TopicsRemote-Sensing Image Classification
Methods*Communicated@Fast*How Do I Communicate to Expedia? · Kaiming Initialization · Global Average Pooling · Focus · Heatmap · Average Pooling · Convolution · Dense Connections · Max Pooling · Sigmoid Activation
