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Haote Yang

5 accepted papers

2025

Leveraging BEV Paradigm for Ground-to-Aerial Image Synthesis

ICCV 2025poster

Ground-to-aerial image synthesis focuses on generating realistic aerial images from corresponding ground street view images while maintaining consistent content layout, simulating a top-down view. The significant viewpoint difference leads to domain gaps between views, and dense urban scenes limit t…

2025

OpenHuEval: Evaluating Large Language Model on Hungarian Specifics

ACL 2025finding

We introduce OpenHuEval, the first benchmark for LLMs focusing on the Hungarian language and specifics. OpenHuEval is constructed from a vast collection of Hungarian-specific materials sourced from multiple origins. In the construction, we incorporated the latest design principles for evaluating LLM…

2025

UrBench: A Comprehensive Benchmark for Evaluating Large Multimodal Models in Multi-View Urban Scenarios

AAAI 2025technical

Recent evaluations of Large Multimodal Models (LMMs) have explored their capabilities in various domains, with only few benchmarks specifically focusing on urban environments. Moreover, existing urban benchmarks have been limited to evaluating LMMs with basic region-level urban tasks under singular…

2024

3D Building Reconstruction from Monocular Remote Sensing Images with Multi-level Supervisions

CVPR 2024poster

3D building reconstruction from monocular remote sensing images is an important and challenging research problem that has received increasing attention in recent years owing to its low cost of data acquisition and availability for large-scale applications. However existing methods rely on expensive…

2024

Cross-view image geo-localization with Panorama-BEV Co-Retrieval Network

ECCV 2024poster

"Cross-view geolocalization identifies the geographic location of street view images by matching them with a georeferenced satellite database. Significant challenges arise due to the drastic appearance and geometry differences between views. In this paper, we propose a new approach for cross-view im…