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UrbanFusion: Stochastic Multimodal Fusion for Contrastive Learning of Robust Spatial Representations

About

Forecasting urban phenomena such as housing prices and public health indicators requires the effective integration of various geospatial data. Current methods primarily utilize task-specific models, while recent generic models for spatial representations often support only limited modalities and lack multimodal fusion capabilities. To overcome these challenges, we present UrbanFusion, a spatial representation model that features Stochastic Multimodal Fusion (SMF). The framework employs modality-specific encoders to process different types of inputs, including street view imagery, remote sensing data, cartographic maps, and points of interest (POIs) data. These multimodal inputs are integrated via a Transformer-based fusion module that learns unified representations. An extensive evaluation across 41 tasks in 56 cities worldwide demonstrates UrbanFusion's strong generalization and predictive performance compared to state-of-the-art GeoAI models. Specifically, it 1) outperforms prior models on location-encoding, 2) allows multimodal input during inference, and 3) generalizes well to regions unseen during training. UrbanFusion can flexibly utilize any subset of available modalities for a given location during both pretraining and inference, enabling broad applicability across diverse data availability scenarios.

Dominik J. M\"uhlematter, Lin Che, Ye Hong, Martin Raubal, Nina Wiedemann• 2025

Related benchmarks

TaskDatasetResultRank
ClassificationLand Cover
F1 Score67.1
76
ClassificationLand Use Fine
F1 Score55.7
70
ClassificationLand Use Coarse
F1 Score61.7
70
RegressionUrban Perception avg. 6 tasks
R2 Score18.8
58
RegressionCrime Incidence
R-squared (%)89.4
48
Urban PerceptionPlace Pulse 2.0
Cleanliness7.4
44
RegressionZIP Code weighted avg. 29 tasks (cross-regional)
R^256.7
40
RegressionZIP Code weighted avg. 29 tasks
R^2 (%)74.3
38
RegressionHousing Prices
R^278.7
35
RegressionEnergy Consumption
R^2 (%)20.1
35
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