🌍 Model Card for City Identification using DL-SLICER-models
This model card describes the DL-SLICER deep learning tool, which is designed for satellite-based city identification and feature analysis.
Figure 1: Site images from satellite data, representing cities by their International Air Transport Association (IATA) codes, used for city identification model training.
The models are based on the ResNet architecture and are trained on satellite imagery to classify and distinguish between 45 cities worldwide. The tool utilizes an Explainable AI method, specifically Relevance Class Activation Maps (CAMs), to identify the visual features that characterize each city.
The DL-SLICER repository contains four ResNet models (resnet-18, resnet-34, resnet-50, and resnet-101), each with two sets of checkpoints: best.pth (representing the best-performing model) and last.pth (the final model checkpoint).
The DL-SLICER models are intended for researchers, policymakers, city managers, and urban planners. The models can be used to:
Identify similar cities based on satellite data patterns.
Analyze salient urban features for urban planning, crisis management, and economic policy decisions.
Provide data for indices and concepts related to sustainability and smart cities.
Bias, Risks, and Limitations
[More Information Needed]
Recommendations
Users (both direct and downstream) should be made aware of the risks, biases and limitations of the model. More information needed for further recommendations.
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