Multi-level Feature Fusion-based CNN for Local Climate Zone Classification from Sentinel-2 Images: Benchmark Results on the So2Sat LCZ42 Dataset
Chunping Qiu, Xiaochong Tong, Michael Schmitt, Benjamin, Bechtel, Xiao Xiang Zhu

TL;DR
This paper introduces a new CNN architecture, Sen2LCZ-Net-MF, for classifying urban climate zones from Sentinel-2 images, demonstrating superior performance on the large-scale So2Sat LCZ42 benchmark dataset with fewer resources.
Contribution
The study proposes a novel multi-level feature fusion CNN, Sen2LCZ-Net-MF, tailored for LCZ classification, and provides comprehensive benchmark results on a large dataset.
Findings
Sen2LCZ-Net-MF outperforms state-of-the-art CNNs in accuracy.
The proposed network requires less computation and fewer parameters.
Large-scale classification results demonstrate practical applicability.
Abstract
As a unique classification scheme for urban forms and functions, the local climate zone (LCZ) system provides essential general information for any studies related to urban environments, especially on a large scale. Remote sensing data-based classification approaches are the key to large-scale mapping and monitoring of LCZs. The potential of deep learning-based approaches is not yet fully explored, even though advanced convolutional neural networks (CNNs) continue to push the frontiers for various computer vision tasks. One reason is that published studies are based on different datasets, usually at a regional scale, which makes it impossible to fairly and consistently compare the potential of different CNNs for real-world scenarios. This study is based on the big So2Sat LCZ42 benchmark dataset dedicated to LCZ classification. Using this dataset, we studied a range of CNNs of varying…
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Taxonomy
TopicsUrban Heat Island Mitigation · Remote-Sensing Image Classification · Remote Sensing and Land Use
