Submarine cable detection using an end-to-end neural network-based magnetic data inversion
Yutao Liu,
Yuquan Wu,
Gang Li
et al.
Abstract:To process magnetic anomaly data, appropriate parameters for field separation, denoising, and Euler deconvolution have to be manually selected. The traditional workflow is inefficient and cannot fulfill the rapid detection of submarine cables due to the complex processing and manual parameter tuning. This study presents an end-to-end deep learning approach for the identification and positioning of submarine cables based on magnetic anomalies. The proposed approach effectively establishes a direct mapping corre… Show more
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