JOURNAL ARTICLE

Adaptive Filtering Remote Sensing Image Segmentation Network based on Attention Mechanism

Abstract

It is difficult to segment small objects and the edge of the object because of larger-scale variation, larger intra-class variance of background and foreground-background imbalance in the remote sensing imagery. In convolutional neural networks, high frequency signals may degenerate into completely different ones after downsampling. We define this phenomenon as aliasing. Meanwhile, although dilated convolution can expand the receptive field of feature map, a much more complex background can cause serious alarms. To alleviate the above problems, we propose an attention-based mechanism adaptive filtered segmentation network. Experimental results on the Deepglobe Road Extraction dataset and Inria Aerial Image Labeling dataset showed that our method can effectively improve the segmentation accuracy. The F1 value on the two data sets reached 82.67% and 85.71% respectively.

Keywords:
Computer science Artificial intelligence Upsampling Segmentation Image segmentation Pattern recognition (psychology) Computer vision Convolutional neural network Feature (linguistics) Feature extraction Convolution (computer science) Image (mathematics) Artificial neural network

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Topics

Automated Road and Building Extraction
Physical Sciences →  Engineering →  Ocean Engineering
Remote Sensing and LiDAR Applications
Physical Sciences →  Environmental Science →  Environmental Engineering
Advanced Image Fusion Techniques
Physical Sciences →  Engineering →  Media Technology

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