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Paper Citation Record · LEDGER

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels

As of 22 August 2026, this Paper Citation Record lists 44 of 44 outbound references and 0 inbound Pith citation observations for arXiv:2601.06135.

A citation records a reference. It does not transfer a finding from one paper to another.

pith.paper-citation-record.v1
2601.06135 v3

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measured 44 of 44 reference resolution

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measured 44 of 44 standing notices

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44 of 44 outbound references displayed

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Outbound references

Observation bf2454f1-051c-46e8-b2ad-8680abc256f2 · outbound

This paper cites Defense Mapping Agency.Department of Defense World Geodetic System 1984: its definition and relationships with local geodetic systems, volume 8350.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Defense Mapping Agency.Department of Defense World Geodetic System 1984: its definition and relationships with local geodetic systems, volume 8350

Reference 1

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Observation a91bf8ae-439a-4736-b89a-4ea3f0728e12 · outbound

This paper cites A genetic- based incremental local outlier factor algorithm for efficient data stream processing.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels A genetic- based incremental local outlier factor algorithm for efficient data stream processing

Reference 2

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Observation bb0e5471-8920-4135-9944-ed35ce1989bc · outbound

This paper cites John Wiley & Sons, 2001.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels John Wiley & Sons, 2001

Reference 3

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Observation ebe593f3-1744-4a6c-bb4d-1764f78cc225 · outbound

This paper cites A weighted k-nearest neighbor density estimate for geometric inference.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels A weighted k-nearest neighbor density estimate for geometric inference

Reference 4

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Observation 143e119f-017f-4446-95f1-055d63850d12 · outbound

This paper cites Springer, 2006.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Springer, 2006

Reference 5

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Observation 42c446e2-e3e7-4342-a954-08e9fe2727e4 · outbound

This paper cites On the Opportunities and Risks of Foundation Models.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels On the Opportunities and Risks of Foundation Models

Reference 6

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Observation 33e2c624-619a-44c8-9db2-05f56b68eb59 · outbound

This paper cites Geometric Deep Learning: Grids, Groups, Graphs, Geodesics, and Gauges.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Geometric Deep Learning: Grids, Groups, Graphs, Geodesics, and Gauges

Reference 7

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Observation 6ef96adf-b325-4ac9-82c8-45f96f8c6ee7 · outbound

This paper cites Anomaly detection: A survey.ACM computing surveys (CSUR), 41(3):1–58, 2009.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Anomaly detection: A survey.ACM computing surveys (CSUR), 41(3):1–58, 2009

Reference 8

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Observation 06e5cb42-9ee8-4141-b28e-147c066ab817 · outbound

This paper cites Rethinking Attention with Performers.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Rethinking Attention with Performers

Reference 9

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Observation b37ac4b0-f702-4e0c-8c5c-34e9eb8a0836 · outbound

This paper cites Nearest neighbor pattern classification.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Nearest neighbor pattern classification

Reference 10

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Observation b7760d37-1e8a-4c7b-b585-41a2f48ed7bb · outbound

This paper cites springer New York, 1978.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels springer New York, 1978

Reference 11

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Observation 5276cc1d-e54b-493f-83a0-82a26b98fd40 · outbound

This paper cites Spatial data mining: A database approach.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Spatial data mining: A database approach

Reference 12

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Observation 01bd73af-8c49-4fa5-b5bc-7473b2a95cbe · outbound

This paper cites Evaluating pattern matching queries for spatial databases.The VLDB Journal, 28(5):649–673, 2019.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Evaluating pattern matching queries for spatial databases.The VLDB Journal, 28(5):649–673, 2019

Reference 13

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This paper cites Geographical information science.International journal of geographical information systems, 6(1):31–45, 1992.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Geographical information science.International journal of geographical information systems, 6(1):31–45, 1992

Reference 14

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This paper cites Exploration- based statistical learning for selecting kernel density estimates of spatial point patterns.Transactions in GIS, 29(2):e70051, 2025.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Exploration- based statistical learning for selecting kernel density estimates of spatial point patterns.Transactions in GIS, 29(2):e70051, 2025

Reference 15

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Observation 5056156d-c5a0-4b9c-8951-4c671eba9492 · outbound

This paper cites Global positioning system: theory and practice.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Global positioning system: theory and practice

Reference 16

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Observation d7ed17ca-9198-44df-ba55-e35b3f637f6f · outbound

This paper cites Product quantization for nearest neighbor search.IEEE transactions on pattern analysis and machine intelligence, 33(1):117–128, 2011.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Product quantization for nearest neighbor search.IEEE transactions on pattern analysis and machine intelligence, 33(1):117–128, 2011

Reference 17

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This paper cites Billion-scale similarity search with gpus.IEEE Transactions on Big Data, 2017.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Billion-scale similarity search with gpus.IEEE Transactions on Big Data, 2017

Reference 18

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Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Unresolved cited work

Reference 19

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This paper cites Trajectory clustering: a partition-and-group framework.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Trajectory clustering: a partition-and-group framework

Reference 20

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Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Unresolved cited work

Reference 21

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Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Unresolved cited work

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This paper cites Data-driven geography.Geo- Journal, 80(4):449–461, 2015.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Data-driven geography.Geo- Journal, 80(4):449–461, 2015

Reference 23

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This paper cites Knn-kernel based clustering for spatio-temporal database.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Knn-kernel based clustering for spatio-temporal database

Reference 24

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This paper cites Continuous spatial query processing: A survey of safe region based techniques.ACM Computing Surveys (CSUR), 51(3):1–39, 2018.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Continuous spatial query processing: A survey of safe region based techniques.ACM Computing Surveys (CSUR), 51(3):1–39, 2018

Reference 25

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This paper cites A pid-based knn query processing algorithm for spatial data.Sensors, 22(19):7651, 2022.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels A pid-based knn query processing algorithm for spatial data.Sensors, 22(19):7651, 2022

Reference 26

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This paper cites John Wiley & Sons, 2015.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels John Wiley & Sons, 2015

Reference 27

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This paper cites Benchmarking spatial big data.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Benchmarking spatial big data

Reference 28

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Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Springer Science & Business Media, 2007

Reference 29

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Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Unresolved cited work

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This paper cites Variable kernel density estimation.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Variable kernel density estimation

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This paper cites Ancient lowland maya neighborhoods: Average nearest neighbor analysis and kernel density models, environments, and urban scale.PloS one, 17(11):e0275916, 2022.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Ancient lowland maya neighborhoods: Average nearest neighbor analysis and kernel density models, environments, and urban scale.PloS one, 17(11):e0275916, 2022

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This paper cites Research on urban landscape accessibility assessment model based on gis and spatial analysis.GeoJournal, 90(2):67, 2025.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Research on urban landscape accessibility assessment model based on gis and spatial analysis.GeoJournal, 90(2):67, 2025

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This paper cites Solution of incorrectly formulated problems and the regularization method.Sov Dok, 4:1035–1038, 1963.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Solution of incorrectly formulated problems and the regularization method.Sov Dok, 4:1035–1038, 1963

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This paper cites Attention is all you need.Advances in Neural Information Processing Systems, 2017.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Attention is all you need.Advances in Neural Information Processing Systems, 2017

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This paper cites Scipy 1.0: fundamental algorithms for scientific computing in python.Nature methods, 17(3):261–272, 2020.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Scipy 1.0: fundamental algorithms for scientific computing in python.Nature methods, 17(3):261–272, 2020

Reference 36

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Observation 5ee7e784-e320-4cd0-ab92-bcd2ec65ca28 · outbound

This paper cites Fast computation of multivariate kernel estimators.Journal of Computational and Graphical Statistics, 3(4):433–445, 1994.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Fast computation of multivariate kernel estimators.Journal of Computational and Graphical Statistics, 3(4):433–445, 1994

Reference 37

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Source-reported events for the cited work

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Observation 4f5625ba-87f0-465a-9b05-ff58a81ace5a · outbound

This paper cites an unresolved cited work.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Unresolved cited work

Reference 38

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no resolver link, observed 2026-08-03T12:48:20.609996Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

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Observation b17b8d67-5301-4913-93a1-9f33f19c8e88 · outbound

This paper cites Trajectory data mining: an overview.ACM Transactions on Intelligent Systems and Technology (TIST), 6(3):1–41, 2015.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Trajectory data mining: an overview.ACM Transactions on Intelligent Systems and Technology (TIST), 6(3):1–41, 2015

Reference 39

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Source-reported events for the cited work

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Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels coords": [],

Reference 40

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This paper cites an unresolved cited work.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Unresolved cited work

Reference 41

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Source-reported events for the cited work

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Observation a863a3d3-9ccd-4984-8c3d-d339e340b85e · outbound

This paper cites an unresolved cited work.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Unresolved cited work

Reference 42

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Source-reported events for the cited work

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Observation 381b1bab-c0b5-47c4-af38-f6136834aa36 · outbound

This paper cites an unresolved cited work.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels Unresolved cited work

Reference 43

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Source-reported events for the cited work

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Observation 62510ac6-f44a-47a9-bf3c-be9e99e0f1c0 · outbound

This paper cites These points often correspond to sharp maneuvers, abnormal motion, or sensor irregularities, and they serve as valuable markers for downstream analysis.

Attention in Geometry: Scalable Spatial Modeling via Adaptive Density Fields and FAISS-Accelerated Kernels These points often correspond to sharp maneuvers, abnormal motion, or sensor irregularities, and they serve as valuable markers for downstream analysis

Reference 44

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Source-reported events for the cited work

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Pith citing papers

No inbound Pith citation observations are available.