Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-05T23:04:10.235277Z
Paper Citation Record · LEDGER
As of 21 August 2026, this Paper Citation Record lists 72 of 72 outbound references and 0 inbound Pith citation observations for arXiv:2508.06584.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-05T23:04:10.235277Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-20T06:33:59.587034+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
72 of 72 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 686ca77e-156d-4729-b7ea-7ac54f16e264 · outbound
Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Gazetteer matching for natural features in switzerland
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Machine learning for cross-gazetteer matching of natural features
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Assessment of the accuracy of geonames gazetteer data
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Geospatial entity resolution
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Mining geospatial relationships from text
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Enriching word vectors with subword information
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Palm: Scaling language modeling with pathways
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution An overview of end-to-end entity resolution for big data
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution and Barbosa, L., 2021
Reference 13
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution A survey on in-context learning
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution and Peucker, T.K., 1973
Reference 17
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Cost-effective in-context learning for entity resolution: A design space exploration
Reference 18
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Constructing gazetteers from volunteered big geo-data based on hadoop
Reference 19
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Deep residual learning for image recognition
Reference 21
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Large language models are zero-shot reasoners
Reference 23
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Evaluation of entity resolution approaches on real-world match problems
Reference 24
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Geographic ontologies, gazetteers and multilingualism
Reference 25
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution BART: Denoising Sequence-to-Sequence Pre-training for Natural Language Generation, Translation, and Comprehension
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Observation c8aeaf50-38d9-42d8-a32f-137ede8ee583 · outbound
Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Booster: Leveraging large language models for enhancing entity resolution
Reference 27
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Pointcnn: Convolution on x-transformed points
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Deep entity matching with pre-trained language models
Reference 29
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution RoBERTa: A Robustly Optimized BERT Pretraining Approach
Reference 30
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Presence-only geographical priors for fine-grained image classification
Reference 31
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Observation 44de9e16-95a8-4e4b-a04d-32a8c72cecf1 · outbound
Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution On the Opportunities and Challenges of Foundation Models for Geospatial Artificial Intelligence
Reference 32
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution A review of location encoding for geoai: methods and applications
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Multi-Scale Representation Learning for Spatial Feature Distributions using Grid Cells
Reference 34
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Towards general-purpose representation learning of polygonal geometries
Reference 35
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution A supervised machine learning approach for duplicate detection over gazetteer records
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Weighted multi-attribute matching of user-generated points of interest
Reference 37
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Reference 38
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Can foundation models wrangle your data? Proceedings of the VLDB Endowment, 16 (4), 738--746
Reference 39
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution A multi-facet analysis of bert-based entity matching models
Reference 40
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution and Bizer, C., 2021
Reference 41
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Reference 42
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Pointnet: Deep learning on point sets for 3d classification and segmentation
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution A critical evaluation of location based services and their potential
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Toponym matching through deep neural networks
Reference 46
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Reference 49
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Improving image classification with location context
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Learning localized generative models for 3d point clouds via graph convolution
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Omni Geometry Representation Learning vs Large Language Models for Geospatial Entity Resolution Encoding crowd interaction with deep neural network for pedestrian trajectory prediction
Reference 59
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Reference 60
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