2021
DOI: 10.1007/978-3-030-89814-4_53
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Study on the Influence of Attention Mechanism in Large-Scale Sea Surface Temperature Prediction Based on Temporal Convolutional Network

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Cited by 1 publication
(2 citation statements)
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“…Recently, several spatiotemporal attention mechanisms have since been developed to classify or predict sea surface data such as SSH, SST. Feng et al applied time attention mechanism and temporal convolutional network to construct fullfeature and partial-feature prediction models for large-scale SST data, achieving similar accuracy with less data [60]. Based on spatial attention mechanism, Ren et al proposed a dualattention U-Net for pixel-level segmentation of sea ice and open water, with better classification results than the original U-Net [30].…”
Section: B Prediction Network With Attention Mechanismsmentioning
confidence: 99%
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“…Recently, several spatiotemporal attention mechanisms have since been developed to classify or predict sea surface data such as SSH, SST. Feng et al applied time attention mechanism and temporal convolutional network to construct fullfeature and partial-feature prediction models for large-scale SST data, achieving similar accuracy with less data [60]. Based on spatial attention mechanism, Ren et al proposed a dualattention U-Net for pixel-level segmentation of sea ice and open water, with better classification results than the original U-Net [30].…”
Section: B Prediction Network With Attention Mechanismsmentioning
confidence: 99%
“…Furthermore, to probe the effect of compressed data layer number on CSA-Encoder's MSE loss, the results with different compressed layer numbers (Compressed Data Layers: 1,5,10,20,30,40,50,60)…”
Section: B Comparison Of Mse Loss In Csa-encodermentioning
confidence: 99%