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Loic Landrieu

19 accepted papers

2026

Order Matters: 3D Shape Generation from Sequential VR Sketches

CVPR 2026

VR sketching lets users explore and iterate on ideas directly in 3D, offering a faster and more intuitive alternative to conventional CAD software. However, existing sketch-to-shape models ignore the temporal ordering of strokes, discarding crucial cues about structure and design intent. We introduc

Cited by 0SourcecodeScholar
2025

AnySat: One Earth Observation Model for Many Resolutions, Scales, and Modalities

CVPR 2025highlight

Geospatial models must adapt to the diversity of Earth observation data in terms of resolutions, scales, and modalities. However, existing approaches expect fixed input configurations, which limits their practical applicability. We propose AnySat, a multimodal model based on joint embedding predicti…

2025

Around the World in 80 Timesteps: A Generative Approach to Global Visual Geolocation

CVPR 2025poster

Global visual geolocation predicts where an image was captured on Earth. Since images vary in how precisely they can be localized, this task inherently involves a significant degree of ambiguity. However, existing approaches are deterministic and overlook this aspect. In this paper, we aim to close…

2025

Open-Canopy: Towards Very High Resolution Forest Monitoring

CVPR 2025highlight

Estimating canopy height and its changes at meter resolution from satellite imagery is a significant challenge in computer vision with critical environmental applications. However, the lack of open-access datasets at this resolution hinders the reproducibility and evaluation of models. We introduce…

2024

Archaeoscape: Bringing Aerial Laser Scanning Archaeology to the Deep Learning Era

NeurIPS 2024spotlight

Airborne Laser Scanning (ALS) technology has transformed modern archaeology by unveiling hidden landscapes beneath dense vegetation. However, the lack of expert-annotated, open-access resources has hindered the analysis of ALS data using advanced deep learning techniques. We address this limitation…

Cited by 1SourcePDFScholar
2024

Learnable Earth Parser: Discovering 3D Prototypes in Aerial Scans

CVPR 2024poster

We propose an unsupervised method for parsing large 3D scans of real-world scenes with easily-interpretable shapes. This work aims to provide a practical tool for analyzing 3D scenes in the context of aerial surveying and mapping without the need for user annotations. Our approach is based on a prob…

2024

OmniSat: Self-Supervised Modality Fusion for Earth Observation

ECCV 2024poster

"The diversity and complementarity of sensors available for Earth Observations (EO) calls for developing bespoke self-supervised multimodal learning approaches. However, current multimodal EO datasets and models typically focus on a single data type, either mono-date images or time series, which lim…

2024

OpenStreetView-5M: The Many Roads to Global Visual Geolocation

CVPR 2024poster

Determining the location of an image anywhere on Earth is a complex visual task which makes it particularly relevant for evaluating computer vision algorithms. Determining the location of an image anywhere on Earth is a complex visual task which makes it particularly relevant for evaluating computer…

2024

StegoGAN: Leveraging Steganography for Non-Bijective Image-to-Image Translation

CVPR 2024poster

Most image-to-image translation models postulate that a unique correspondence exists between the semantic classes of the source and target domains. However this assumption does not always hold in real-world scenarios due to divergent distributions different class sets and asymmetrical information re…

2023

FLAIR : a Country-Scale Land Cover Semantic Segmentation Dataset From Multi-Source Optical Imagery

NeurIPS 2023poster

We introduce the French Land cover from Aerospace ImageRy (FLAIR), an extensive dataset from the French National Institute of Geographical and Forest Information (IGN) that provides a unique and rich resource for large-scale geospatial analysis. FLAIR contains high-resolution aerial imagery with a g…

2022

Learning Multi-View Aggregation in the Wild for Large-Scale 3D Semantic Segmentation

CVPR 2022oral

Recent works on 3D semantic segmentation propose to exploit the synergy between images and point clouds by processing each modality with a dedicated network and projecting learned 2D features onto 3D points. Merging large-scale point clouds and images raises several challenges, such as constructing…

Cited by 105PDFcodeScholar
2021

Panoptic Segmentation of Satellite Image Time Series With Convolutional Temporal Attention Networks

ICCV 2021poster

Unprecedented access to multi-temporal satellite imagery has opened new perspectives for a variety of Earth observation tasks. Among them, pixel-precise panoptic segmentation of agricultural parcels has major economic and environmental implications. While researchers have explored this problem for s…

Cited by 204PDFcodeScholar
2020

Satellite Image Time Series Classification With Pixel-Set Encoders and Temporal Self-Attention

CVPR 2020oral

Satellite image time series, bolstered by their growing availability, are at the forefront of an extensive effort towards automated Earth monitoring by international institutions. In particular, large-scale control of agricultural parcels is an issue of major political and economic importance. In th…

Cited by 227PDFcodeScholar
2018

Cut-Pursuit Algorithm for Regularizing Nonsmooth Functionals with Graph Total Variation

ICML 2018oral

We present an extension of the cut-pursuit algorithm, introduced by Landrieu and Obozinski (2017), to the graph total-variation regularization of functions with a separable nondifferentiable part. We propose a modified algorithmic scheme as well as adapted proofs of convergence. We also present a he…

Cited by 11SourcePDFScholar