SOTAVerified

Earth Observation

Earth Observation (EO) refers to the use of remote sensing technologies to monitor land, marine (seas, rivers, lakes) and atmosphere. Satellite-based EO relies on the use of satellite-mounted payloads to gather imaging data about the Earth’s characteristics. The images are then processed and analyzed in order to extract different types of information that can serve a very wide range of applications and industries.

Papers

Showing 451–500 of 518 papers

TitleStatusHype
Living in the Physics and Machine Learning Interplay for Earth Observation—0
Unsupervised Self-training Algorithm Based on Deep Learning for Optical Aerial Images Change Detection—0
Semi-Supervised Semantic Segmentation in Earth Observation: The MiniFrance Suite, Dataset Analysis and Multi-task Network Study—0
Interactive Learning for Semantic Segmentation in Earth ObservationCode0
Learning from Multimodal and Multitemporal Earth Observation Data for Building Damage Mapping—0
Deep Neural Networks for automatic extraction of features in time series satellite images—0
Bottom-up mechanism and improved contract net protocol for the dynamic task planning of heterogeneous Earth observation resources—0
OpenStreetMap: Challenges and Opportunities in Machine Learning and Remote Sensing—0
A Perspective on Gaussian Processes for Earth Observation—0
X-ModalNet: A Semi-Supervised Deep Cross-Modal Network for Classification of Remote Sensing Data—0
Convolutional Neural Networks for Global Human Settlements Mapping from Sentinel-2 Satellite ImageryCode0
Attentive Weakly Supervised land cover mapping for object-based satellite image time series data with spatial interpretation—0
A Cycle GAN Approach for Heterogeneous Domain Adaptation in Land Use Classification—0
SMArtCast: Predicting soil moisture interpolations into the future using Earth observation data in a deep learning framework—0
Simulated annealing based heuristic for multiple agile satellites scheduling under cloud coverage uncertainty—0
Agile Earth observation satellite scheduling over 20 years: formulations, methods and future directions—0
Edge Preserving CNN SAR Despeckling Algorithm—0
Cloud Removal with Fusion of High Resolution Optical and SAR Images Using Generative Adversarial Networks—0
Hyperspectral and multispectral image fusion under spectrally varying spatial blurs -- Application to high dimensional infrared astronomical imaging—0
Improving land cover segmentation across satellites using domain adaptationCode0
Schedule Earth Observation satellites with Deep Reinforcement Learning—0
Self-attention for raw optical Satellite Time Series ClassificationCode0
Machine Learning for Generalizable Prediction of Flood Susceptibility—0
Spacecraft design optimisation for demise and survivability—0
End-to-end learning of energy-based representations for irregularly-sampled signals and imagesCode0
Generative Adversarial Training for Weakly Supervised Cloud Matting—0
Apache Spark Accelerated Deep Learning Inference for Large Scale Satellite Image Analytics—0
Optimal Dynamic Multi-Resource Management in Earth Observation Oriented Space Information Networks—0
Satellite-Net: Automatic Extraction of Land Cover Indicators from Satellite Imagery by Deep Learning—0
AI-based evaluation of the SDGs: The case of crop detection with earth observation data—0
Super-Resolution of PROBA-V Images Using Convolutional Neural Networks—0
Transfer Learning for Segmenting Dimensionally-Reduced Hyperspectral Images—0
Providentia -- A Large-Scale Sensor System for the Assistance of Autonomous Vehicles and Its Evaluation—0
End-to-End Change Detection for High Resolution Satellite Images Using Improved UNet++Code0
Fusion of Heterogeneous Earth Observation Data for the Classification of Local Climate Zones—0
Robust Semantic Segmentation By Dense Fusion Network On Blurred VHR Remote Sensing Images—0
First assessment of the plant phenology index (PPI) for estimating gross primary productivity in African semi-arid ecosystems—0
Convolutional LSTMs for Cloud-Robust Segmentation of Remote Sensing ImageryCode0
Urban Change Detection for Multispectral Earth Observation Using Convolutional Neural NetworksCode0
Multitask Learning for Large-scale Semantic Change Detection—0
Fully Convolutional Siamese Networks for Change DetectionCode0
DuPLO: A DUal view Point deep Learning architecture for time series classificatiOn—0
MRFusion: A Deep Learning architecture to fuse PAN and MS imagery for land cover mapping—0
Modeling Dengue Vector Population Using Remotely Sensed Data and Machine Learning—0
Automatic image annotation : the case of deforestation—0
Learning Spectral-Spatial-Temporal Features via a Recurrent Convolutional Neural Network for Change Detection in Multispectral Imagery—0
M3Fusion: A Deep Learning Architecture for Multi-Scale/Modal/Temporal satellite data fusionCode0
Multi-Temporal Land Cover Classification with Sequential Recurrent Encoders—0
ORBIT: Ordering Based Information Transfer Across Space and Time for Global Surface Water Monitoring—0
Object Detection of Satellite Images Using Multi-Channel Higher-order Local Autocorrelation—0
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