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Smart Underwater Monitoring Through Image Enhancement and Object Detection using AI

Prof. Archana Kotakar, Pallavi Gawai, Kajal Shelke, Priyanka Gujale, Dnyaneshwari Suke
June 20, 2026
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Research Abstract & Technology Focus

Abstract - This literature survey examines the rapid advancement of Artificial Intelligence (AI) techniques for underwater image enhancement and object detection. It covers a wide range of approaches, starting from traditional methods such as manual feature extraction and histogram equalization to advanced deep learning models, including Convolutional Neural Networks (CNNs), Generative Adversarial Networks (GANs), and Transformer-based architectures. Recent studies indicate that one-stage detectors, particularly the You Only Look Once (YOLO) family, offer an effective balance between detection speed and accuracy, achieving up to 96–99% mean Average Precision (mAP) in several applications. In addition, GAN-based enhancement techniques combined with attention mechanisms have significantly improved image quality by restoring color and contrast in challenging underwater conditions. Despite these advancements, several challenges remain, including high computational complexity, which limits real-time deployment on resource-constrained Autonomous Underwater Vehicles (AUVs). Moreover, issues such as limited dataset availability, lack of standard evaluation benchmarks, and poor generalization across different underwater environments continue to affect performance. Future research should focus on developing lightweight and explainable AI models to improve efficiency, reliability, and adaptability in real-world underwater applications.
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What is the core focus of the research titled 'Smart Underwater Monitoring Through Image Enhancement and Object Detection using AI'?

This literature focuses on: Abstract - This literature survey examines the rapid advancement of Artificial Intelligence (AI) techniques for underwater image enhancement and object detection. It covers a wide range of approaches, starting from traditional methods such as manu...

What other academic literature is closely related to 'Smart Underwater Monitoring Through Image Enhancement and Object Detection using AI'?

Yes, highly correlated activity was mapped. An entry titled 'Physical prior-guided SAM adaptation for underwater scene segmentation' discusses this: Underwater image segmentation is fundamental to marine exploration and autonomous underwater vehicle navigation, yet its accuracy is severely compr...

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