Sound2Center
收藏DataCite Commons2025-11-13 更新2026-05-05 收录
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The adaptive masking component is the cornerstone of the proposed algorithm,enabling segmented processing of coal mine images. While dividing each image into smaller blocks,the module operates by sequentially applying a mask to the edge and corner pixels of each block, deliberately excluding the central pixels. Subsequently once the masking process is complete, the mask integration module is employed. This module is responsible for fusing the neural network’s output with the masked areas to reconstruct a coherent and denoised image. Furthermore, this module incorporates a quality evaluation mechanism to assess the effectiveness of the integration. The final component of the algorithm is an adaptive integrated loss function, which guides the model during training. This loss function is specifically designed to address the unique challenges of coal mine image denoising, including complex noise patterns and the need to preserve subtle image details. Additionally,by incorporating the original noisy image, the loss function increases the model’s sensitivity to signal changes,enhancing its adaptability across various denoising scenarios and noise conditions.
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Science Data Bank
创建时间:
2025-11-13



