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Paper Citation Record · LEDGER

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport

As of 20 August 2026, this Paper Citation Record lists 72 of 72 outbound references and 0 inbound Pith citation observations for arXiv:2607.24506.

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

pith.paper-citation-record.v1
2607.24506 v1

Coverage vector

measured 72 of 72 reference resolution

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Source: paper_references, paper_reference_links, observed 2026-07-31T12:59:33.079112Z

measured 72 of 72 standing notices

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Source: scholarly_work_events, retraction_status_cache, observed 2026-08-20T06:33:59.587034+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

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measured 0 of 1 external citation measurements

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Reference resolution

72 of 72 outbound references displayed

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Outbound references

Observation 597be160-5dfc-42ec-989f-b9e1273de6f9 · outbound

This paper cites Complex network topology of transportation systems.Transport reviews, 33(6):658–685, 2013.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Complex network topology of transportation systems.Transport reviews, 33(6):658–685, 2013

Reference 1

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Observation 0e889712-07b4-46a8-9970-f7353bea9953 · outbound

This paper cites The network analysis of urban streets: a primal approach.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport The network analysis of urban streets: a primal approach

Reference 2

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Observation e9b5a74f-22cc-4f50-b345-e45c6ac31315 · outbound

This paper cites The network analysis of urban streets: a dual approach.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport The network analysis of urban streets: a dual approach

Reference 3

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Observation 1dc8c85f-2c6d-4392-a33f-f65d7bd94674 · outbound

This paper cites Network harness: Metropo- lis public transport.Physica A: Statistical Mechanics and its Applications, 380:585–591, 2007.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Network harness: Metropo- lis public transport.Physica A: Statistical Mechanics and its Applications, 380:585–591, 2007

Reference 4

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Observation f3ac4eab-01da-416c-b530-d20d75a8f921 · outbound

This paper cites Role of road network features in the evaluation of incident impacts on urban traffic mobility.Transportation research part B: methodological, 117:101–116, 2018.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Role of road network features in the evaluation of incident impacts on urban traffic mobility.Transportation research part B: methodological, 117:101–116, 2018

Reference 5

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Observation 51f2e282-224b-4060-8539-213933641b16 · outbound

This paper cites Statistical analysis of 22 public transport networks in poland.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Statistical analysis of 22 public transport networks in poland

Reference 6

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Observation b2945ce2-8b0b-47dc-92d3-82de4a93e91b · outbound

This paper cites Enforcing optimal routing through dynamic avoid- ance maps.Transportation Research Part B: Methodological, 149:118–137, 2021.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Enforcing optimal routing through dynamic avoid- ance maps.Transportation Research Part B: Methodological, 149:118–137, 2021

Reference 7

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Observation d30240cf-0b55-47f8-ab92-e57d3beebc98 · outbound

This paper cites On the spatial partitioning of urban transportation networks.Trans- portation Research Part B: Methodological, 46(10):1639–1656, 2012.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport On the spatial partitioning of urban transportation networks.Trans- portation Research Part B: Methodological, 46(10):1639–1656, 2012

Reference 8

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Observation a1710eaa-91ad-4a72-b148-6e0e649c3939 · outbound

This paper cites Identification of communities in urban mobility networks using multi-layer graphs of network traffic.Transportation Research Part C: Emerging Technologies, 89:254–267, 2018.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Identification of communities in urban mobility networks using multi-layer graphs of network traffic.Transportation Research Part C: Emerging Technologies, 89:254–267, 2018

Reference 9

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Observation f8c7e323-c12b-4b4e-970c-264afa8c36a7 · outbound

This paper cites A statistical method for estimating predictable differences between daily traffic flow profiles.Transportation Research Part B: Methodological, 95:196–213, 2017.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport A statistical method for estimating predictable differences between daily traffic flow profiles.Transportation Research Part B: Methodological, 95:196–213, 2017

Reference 10

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Observation 4c2f4e85-5220-477a-8e69-5cc8e207f925 · outbound

This paper cites Valuing travel time variability: Characteristics of the travel time distribution on an urban road.Transportation Research Part C: Emerging Technologies, 24:83–101, 2012.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Valuing travel time variability: Characteristics of the travel time distribution on an urban road.Transportation Research Part C: Emerging Technologies, 24:83–101, 2012

Reference 11

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Observation 7d860566-bd93-4e7c-9a75-d4dd5c2c9ac6 · outbound

This paper cites Clustering of heterogeneous networks with directional flows based on “snake” similarities.Transportation Research Part B: Methodological, 91:250– 269, 2016.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Clustering of heterogeneous networks with directional flows based on “snake” similarities.Transportation Research Part B: Methodological, 91:250– 269, 2016

Reference 12

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Observation 23a06e2b-2ba9-4f41-a550-a3574247ed16 · outbound

This paper cites Current trends in road traffic network division for distributed or parallel road traffic simulation.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Current trends in road traffic network division for distributed or parallel road traffic simulation

Reference 13

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Observation 93be8c2a-1896-481d-9e80-038c110778bd · outbound

This paper cites A decomposition approach to the static traffic assignment problem.Transportation Research Part B: Methodological, 105:270–296, 2017.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport A decomposition approach to the static traffic assignment problem.Transportation Research Part B: Methodological, 105:270–296, 2017

Reference 14

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Observation fd127865-8168-4ea4-8c3c-ed3c0fe9eaf6 · outbound

This paper cites A partitioning strategy for nonuniform problems on multiproces- sors.IEEE Transactions on Computers, 100(5):570–580, 1987.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport A partitioning strategy for nonuniform problems on multiproces- sors.IEEE Transactions on Computers, 100(5):570–580, 1987

Reference 15

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Observation a83febe7-0744-4aa9-a1c9-ced7ace24703 · outbound

This paper cites Spartsim: A space partitioning guided by road network for distributed traffic simulations.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Spartsim: A space partitioning guided by road network for distributed traffic simulations

Reference 16

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Observation eccbc88d-b2c2-4dce-9664-829cc1383844 · outbound

This paper cites an unresolved cited work.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Unresolved cited work

Reference 17

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Observation d7807a47-6c89-4378-b831-6d17bfba6913 · outbound

This paper cites Vu, and Christopher Leckie.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Vu, and Christopher Leckie

Reference 18

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Observation 29f470ce-8923-47a4-af0b-2f6787db271d · outbound

This paper cites Road network partitioning method based on canopyk-means clustering algorithm.Archives of Transport, 54(2):95–106, 2020.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Road network partitioning method based on canopyk-means clustering algorithm.Archives of Transport, 54(2):95–106, 2020

Reference 19

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Observation 604ffea5-d6f6-46a6-b713-cfeb85bd3167 · outbound

This paper cites Dynamics of heterogeneity in urban net- works: aggregated traffic modeling and hierarchical control.Transportation Research Part B: Method- ological, 74:1–19, 2015.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Dynamics of heterogeneity in urban net- works: aggregated traffic modeling and hierarchical control.Transportation Research Part B: Method- ological, 74:1–19, 2015

Reference 20

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Observation 5e9c2cf1-d20a-4eeb-86ce-72e1b973503a · outbound

This paper cites Mode differentiation in par- titioning of mixed bi-modal urban networks.Transportmetrica B: Transport Dynamics, 11(1):463–485, 2023.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Mode differentiation in par- titioning of mixed bi-modal urban networks.Transportmetrica B: Transport Dynamics, 11(1):463–485, 2023

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Observation b072a991-bbbc-466e-9f19-28d7fe638d9f · outbound

This paper cites Exploring dynamic urban mobility patterns from traffic flow data using community detection.Annals of GIS, 30(4):435–454, 2024.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Exploring dynamic urban mobility patterns from traffic flow data using community detection.Annals of GIS, 30(4):435–454, 2024

Reference 22

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Observation 4ce6e05d-6bf4-4063-995f-e336f363486b · outbound

This paper cites Comparing community detection algorithms in transport networks via points of interest.IEEE Access, 6:29729–29738, 2018.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Comparing community detection algorithms in transport networks via points of interest.IEEE Access, 6:29729–29738, 2018

Reference 23

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Observation eaa073b6-511d-4be3-bc10-6e38b338f78f · outbound

This paper cites Analyzing a multilayer comprehen- sive passenger transport network through overlapping community detection.Transportation Research Record, 2678(11):1517–1532, 2024.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Analyzing a multilayer comprehen- sive passenger transport network through overlapping community detection.Transportation Research Record, 2678(11):1517–1532, 2024

Reference 24

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Observation 3146891e-943c-4fb5-8512-110b1b1bd015 · outbound

This paper cites Designing bike networks using the concept of network clusters.Applied network science, 3(1):12, 2018.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Designing bike networks using the concept of network clusters.Applied network science, 3(1):12, 2018

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Observation 1456fa7a-8760-4a94-b0cb-acd1962a7473 · outbound

This paper cites The structure of spatial networks and communities in bicycle sharing systems.PloS One, 8(9):e74685, 2013.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport The structure of spatial networks and communities in bicycle sharing systems.PloS One, 8(9):e74685, 2013

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Observation fe948a09-1c29-4e5d-9228-f00c878aa138 · outbound

This paper cites Exploring the spatiotemporal patterns of shared bicycle usage: a case study of metrobike in austin, texas.Computational Urban Science, 5(1):52, 2025.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Exploring the spatiotemporal patterns of shared bicycle usage: a case study of metrobike in austin, texas.Computational Urban Science, 5(1):52, 2025

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Observation 75cc9c17-7d0e-4770-8077-cdd8567eab35 · outbound

This paper cites Study on community detection method for morning and evening peak shared bicycle trips in urban areas: A case study of six districts in beijing.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Study on community detection method for morning and evening peak shared bicycle trips in urban areas: A case study of six districts in beijing

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Observation 2fb7c8a7-dc9a-458f-b59e-d83b49e6c5eb · outbound

This paper cites A survey of kernel and spectral methods for clustering.Pattern recognition, 41(1):176–190, 2008.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport A survey of kernel and spectral methods for clustering.Pattern recognition, 41(1):176–190, 2008

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Observation b2045935-5d36-4b2b-81cd-18ff44d7db51 · outbound

This paper cites An efficient heuristic procedure for partitioning graphs.The Bell system technical journal, 49(2):291–307, 1970.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport An efficient heuristic procedure for partitioning graphs.The Bell system technical journal, 49(2):291–307, 1970

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Observation aa30b859-ba38-4565-9bd3-4e674ce92a6e · outbound

This paper cites Metis: A software package for partitioning unstructured graphs, partitioning meshes, and computing fill-reducing orderings of sparse matrices.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Metis: A software package for partitioning unstructured graphs, partitioning meshes, and computing fill-reducing orderings of sparse matrices

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Observation cf8d3956-f286-445e-aa0b-f14b60c620b1 · outbound

This paper cites Partitioning of urban transportation networks utilizing real-world traffic parameters for distributed simulation in sumo.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Partitioning of urban transportation networks utilizing real-world traffic parameters for distributed simulation in sumo

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Observation 0bcebf3b-a00a-436b-926d-e348797a1d90 · outbound

This paper cites A graph partitioning algorithm for parallel agent-based road traffic simulation.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport A graph partitioning algorithm for parallel agent-based road traffic simulation

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Observation 2cfe6595-84c6-49ff-915e-3f23a68806ec · outbound

This paper cites Normalized cuts and image segmentation.IEEE Transactions on pattern analysis and machine intelligence, 22(8):888–905, 2000.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Normalized cuts and image segmentation.IEEE Transactions on pattern analysis and machine intelligence, 22(8):888–905, 2000

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source=pdf_text observed=2026-07-31T12:59:32.924968Z digest=sha256:378977c4f081e2faec725bc0fdf11fd18370c579d4795b514322e0d56539fb67

Observation 7ce713b6-8517-4337-8e53-9cc1dc917233 · outbound

This paper cites Investigating transport network vulnerability by capacity weighted spectral analysis.Transportation Research Part B: Methodological, 99:251–266, 2017.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Investigating transport network vulnerability by capacity weighted spectral analysis.Transportation Research Part B: Methodological, 99:251–266, 2017

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source=pdf_text observed=2026-07-31T12:59:32.929066Z digest=sha256:33633099fc964424385f72248c81f0589afe4477c47ed1396966bc6cdf1659c3

Observation 4449e83e-6c83-40ef-8ef4-ff11f717fd38 · outbound

This paper cites Evolutionary spectral clustering by incorporating temporal smoothness.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Evolutionary spectral clustering by incorporating temporal smoothness

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source=pdf_text observed=2026-07-31T12:59:32.932960Z digest=sha256:0e7f336a532af29302dac2395d0845d33b1436418319720a34bb324c1418cbe8

Observation 7ec7753a-4c39-4c26-b6d1-8d933f2885f3 · outbound

This paper cites Partitioning of transporta- tion networks by efficient evolutionary clustering and density peaks.Algorithms, 15(3):76, 2022.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Partitioning of transporta- tion networks by efficient evolutionary clustering and density peaks.Algorithms, 15(3):76, 2022

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source=pdf_text observed=2026-07-31T12:59:32.937763Z digest=sha256:743776496ddcbc71306a1e486897a5e41811fee1bc15f68ae1b251f52d0dc79f

Observation 06c1c7d0-35b0-471c-9b0e-ce2003615b77 · outbound

This paper cites Symnmf: nonnegative low-rank approximation of a simi- larity matrix for graph clustering.Journal of Global Optimization, 62(3):545–574, 2015.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Symnmf: nonnegative low-rank approximation of a simi- larity matrix for graph clustering.Journal of Global Optimization, 62(3):545–574, 2015

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source=pdf_text observed=2026-07-31T12:59:32.941663Z digest=sha256:45578d8d58721702d3aef42632fd5e8ca167f6f54751f975a9e915826e02a044

Observation 71ff4389-bd36-4335-9d3e-7e38a1dfa8f4 · outbound

This paper cites A new combinatorial characteristic parameter for clustering-based traffic network partitioning.IEEE Access, 7:40175–40182, 2019.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport A new combinatorial characteristic parameter for clustering-based traffic network partitioning.IEEE Access, 7:40175–40182, 2019

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source=pdf_text observed=2026-07-31T12:59:32.945984Z digest=sha256:71232bb4a6519f542543c3f68d37ed040bb650c97ca846acb6c5c17d1a1f6a0a

Observation 8f32b259-12ab-486e-adf1-b6535aa56aec · outbound

This paper cites Finding community structure in very large networks.Physical Review E—Statistical, Nonlinear, and Soft Matter Physics, 70(6):066111, 2004.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Finding community structure in very large networks.Physical Review E—Statistical, Nonlinear, and Soft Matter Physics, 70(6):066111, 2004

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source=pdf_text observed=2026-07-31T12:59:32.949769Z digest=sha256:9ff55ded9d1f3d629ef7def5a2889fd03924b65a854cb5bc168e3649b99e4a94

Observation a06cefdb-6303-425e-b5f4-17b056d45c1a · outbound

This paper cites Fast unfolding of communities in large networks.Journal of statistical mechanics: theory and experiment, 2008(10):P10008, 2008.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Fast unfolding of communities in large networks.Journal of statistical mechanics: theory and experiment, 2008(10):P10008, 2008

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source=pdf_text observed=2026-07-31T12:59:32.953608Z digest=sha256:d5521c33d51eef796ffc2c010ab018b678838438f0a3a6d0ffc7e72e0c0ed870

Observation c318a9d1-da5b-4b36-a6c8-a969d5c2e541 · outbound

This paper cites Shared bicycles in a city: A signal processing and data analysis perspective.Advances in Complex Sys- tems, 14(03):415–438, 2011.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Shared bicycles in a city: A signal processing and data analysis perspective.Advances in Complex Sys- tems, 14(03):415–438, 2011

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source=pdf_text observed=2026-07-31T12:59:32.957418Z digest=sha256:e79c94279179a4a65f685b0b56c3c6509bcadaa96155ccd845e04e0f67e99491

Observation 1355f58b-1e3c-4b19-846e-9cb419529ed0 · outbound

This paper cites Multi-scale analysis of the european airspace using network community de- tection.PloS One, 9(5):e94414, 2014.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Multi-scale analysis of the european airspace using network community de- tection.PloS One, 9(5):e94414, 2014

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source=pdf_text observed=2026-07-31T12:59:32.961215Z digest=sha256:30ab4da2f5ea30ceb18f4b364c9aa8db3a940e20b2d8cfebc389012a8aa2405b

Observation aba562e3-3147-404d-a98f-3f309d0ca521 · outbound

This paper cites General optimization tech- nique for high-quality community detection in complex networks.Physical Review E, 90(1):012811, 2014.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport General optimization tech- nique for high-quality community detection in complex networks.Physical Review E, 90(1):012811, 2014

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source=pdf_text observed=2026-07-31T12:59:32.965148Z digest=sha256:ea2f1cb941e37087c12ae647cded941d6bcd06e11589bacb66cff109751ee661

Observation 7100862a-710f-4898-b2e6-e25e9d76e739 · outbound

This paper cites Identifying spatial structure of travel modes through community detection method.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Identifying spatial structure of travel modes through community detection method

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source=pdf_text observed=2026-07-31T12:59:32.969391Z digest=sha256:88aa187aad410900f34f7aaf95b4b623b03d99c50248b2fc33d3409568d1b583

Observation 062d332b-92cd-4b0f-a6b3-8af8e9d59b32 · outbound

This paper cites From louvain to leiden: guaranteeing well- connected communities.Scientific reports, 9(1):1–12, 2019.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport From louvain to leiden: guaranteeing well- connected communities.Scientific reports, 9(1):1–12, 2019

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source=pdf_text observed=2026-07-31T12:59:32.973159Z digest=sha256:2d5e68bacbe86e5436185bd75e36271789c12fde01bf0a7b3df03527f6b39edb

Observation 6a9b15dc-71c5-4cad-8a03-47cfefa77f7d · outbound

This paper cites an unresolved cited work.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Unresolved cited work

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source=pdf_text observed=2026-07-31T12:59:32.977630Z digest=sha256:73584efabcbb83ecc1c7eb1add5bfe22fadad896ed2fda84bf67301f037171da

Observation 139c22ad-3022-4ede-a1d8-6f1682d19138 · outbound

This paper cites Maps of random walks on complex networks reveal community structure.Proceedings of the national academy of sciences, 105(4):1118–1123, 2008.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Maps of random walks on complex networks reveal community structure.Proceedings of the national academy of sciences, 105(4):1118–1123, 2008

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source=pdf_text observed=2026-07-31T12:59:32.981604Z digest=sha256:f5b8426795a7f065ba6c65b68bac3e6ec24dacbde6763be4cd478472bf9210f0

Observation 224f7d31-9c4c-4ad0-ad75-47234b90ec0b · outbound

This paper cites Computing communities in large networks using random walks.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Computing communities in large networks using random walks

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source=pdf_text observed=2026-07-31T12:59:32.985234Z digest=sha256:68f3d000928e460f24e4d3271da89e1f105560e217986b341fd555f8802fa400

Observation c0658b95-430c-46c7-b574-8833938ddc79 · outbound

This paper cites How good is recursive bisection?SIAM Journal on Scientific Computing, 18(5):1436–1445, 1997.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport How good is recursive bisection?SIAM Journal on Scientific Computing, 18(5):1436–1445, 1997

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source=pdf_text observed=2026-07-31T12:59:32.988821Z digest=sha256:52054066f5d97c3f27e5d88a302f3bdd3cccdfb4bc7871c4e7456657ca5489f4

Observation 0355638d-5455-448e-84ec-8fe94d5c6d0a · outbound

This paper cites An improved road network partition algorithm for parallel micro- scopic traffic simulation.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport An improved road network partition algorithm for parallel micro- scopic traffic simulation

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source=pdf_text observed=2026-07-31T12:59:32.992453Z digest=sha256:822436d9f6f19f8c9f93046108a3dc06b48d09d733d37e4b39f934f789ab4b8e

Observation 20296688-0c8c-4826-bdde-d9f5be7cfdf9 · outbound

This paper cites Algorithm as 136: Ak-means clustering algorithm.Journal of the royal statistical society.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Algorithm as 136: Ak-means clustering algorithm.Journal of the royal statistical society

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source=pdf_text observed=2026-07-31T12:59:32.996755Z digest=sha256:ed4ae12533b0704380c0c3d06e1f82a0477c759ba00f0ae46ea405cb74e1e269

Observation e94c1ad1-8463-4938-b24b-935630de65f9 · outbound

This paper cites Generalized net- work voronoi diagrams: Concepts, computational methods, and applications.International Journal of Geographical Information Science, 22(9):965–994, 2008.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Generalized net- work voronoi diagrams: Concepts, computational methods, and applications.International Journal of Geographical Information Science, 22(9):965–994, 2008

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source=pdf_text observed=2026-07-31T12:59:33.002752Z digest=sha256:9d25960ea250022d5ff35762378421106b3552c778a988946d69cd0b930ef6b9

Observation b2379e4c-32bd-4e11-998b-c1c072463ec1 · outbound

This paper cites A spatio-temporal co-clustering framework for discovering mobility patterns: A study of manhattan taxi data.IEEE Access, 9:34338– 34351, 2021.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport A spatio-temporal co-clustering framework for discovering mobility patterns: A study of manhattan taxi data.IEEE Access, 9:34338– 34351, 2021

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source=pdf_text observed=2026-07-31T12:59:33.006793Z digest=sha256:aa8b195c13fef3be2fe2f39c07152e3b6ae2c31505958e2759e390b2f6c34e00

Observation 0ced219b-2a7c-46fd-90cb-f471ba40d06d · outbound

This paper cites Victs: A novel network partition algorithm for scal- able agent-based modeling of mass evacuation.Computers, Environment and Urban Systems, 80:101452, 2020.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Victs: A novel network partition algorithm for scal- able agent-based modeling of mass evacuation.Computers, Environment and Urban Systems, 80:101452, 2020

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source=pdf_text observed=2026-07-31T12:59:33.010659Z digest=sha256:0d85fc31ca0d97171d138668260585e3db63222954461991f940127cf7f9efa7

Observation 81177096-504d-4858-9c73-f0b3c1889a56 · outbound

This paper cites Survey of spectral clustering based on graph theory.Pattern Recognition, 151:110366, 2024.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Survey of spectral clustering based on graph theory.Pattern Recognition, 151:110366, 2024

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source=pdf_text observed=2026-07-31T12:59:33.014714Z digest=sha256:afe83284b376e46df905d2fe5b07779f669d76e8c07428a15ec11039b716ffde

Observation 90a8949d-d8be-481b-b1b9-19ae544b57f5 · outbound

This paper cites Finding and evaluating community structure in networks.Phys- ical review E, 69(2):026113, 2004.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Finding and evaluating community structure in networks.Phys- ical review E, 69(2):026113, 2004

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source=pdf_text observed=2026-07-31T12:59:33.018709Z digest=sha256:e3d90599fbe2e441fdc1848914b9d246b51742523f10c28352aae84b37699135

Observation 6fb1fcbc-521e-46cf-b426-7954342302b8 · outbound

This paper cites Finding overlapping communities in multilayer networks.PloS One, 13(4):e0188747, 2018.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Finding overlapping communities in multilayer networks.PloS One, 13(4):e0188747, 2018

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source=pdf_text observed=2026-07-31T12:59:33.022597Z digest=sha256:0e2f97b8b748b095a3889bba93d6e94a8e99212f3e6981175f7912dc101b02c1

Observation e712f854-136d-4fae-9019-af3cb93c15d6 · outbound

This paper cites Least squares quantization in pcm.IEEE transactions on information theory, 28(2):129–137, 1982.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Least squares quantization in pcm.IEEE transactions on information theory, 28(2):129–137, 1982

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source=pdf_text observed=2026-07-31T12:59:33.026832Z digest=sha256:cbce6f551788f6449d5b00f70c98a2889cbcb950e4dbb9fe3747b4b0a1c99259

Observation 4a43be95-963f-4e7a-8815-f29f05b0789e · outbound

This paper cites Dynamic time warping algorithm review.Information and Computer Science Department University of Hawaii at Manoa Honolulu, USA, 855(1-23):40, 2008.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Dynamic time warping algorithm review.Information and Computer Science Department University of Hawaii at Manoa Honolulu, USA, 855(1-23):40, 2008

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source=pdf_text observed=2026-07-31T12:59:33.031156Z digest=sha256:e0f145c199e0a1cd2b918b88b1c2c5051c36edd0d28d4f5216113e0d1a3891aa

Observation 18bfc9d8-8430-4acb-9ef2-57362d9d8a5b · outbound

This paper cites A modified hausdorff distance for object matching.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport A modified hausdorff distance for object matching

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source=pdf_text observed=2026-07-31T12:59:33.035213Z digest=sha256:b08bd1f025fbcb124d61d61ea6e71c4ada4ec8b304fb7bae2bae5ce6e5378354

Observation 91e74228-47cc-4da7-84ae-55507c855b37 · outbound

This paper cites Community detection in node-attributed social networks: a survey.Computer Science Review, 37:100286, 2020.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Community detection in node-attributed social networks: a survey.Computer Science Review, 37:100286, 2020

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source=pdf_text observed=2026-07-31T12:59:33.039117Z digest=sha256:957f21157e7593be3828433900f95a66bc823c5f3a067f52aae8028719ce34ea

Observation 1f30f464-af59-469c-a75a-78deb16df172 · outbound

This paper cites Gromov-wasserstein averaging of kernel and distance matrices.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Gromov-wasserstein averaging of kernel and distance matrices

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source=pdf_text observed=2026-07-31T12:59:33.042947Z digest=sha256:eb1b3b561ae5071c0ce169ab9430d4690fb37dd76fdedc25fc49cf52f6255ffd

Observation 6a665d4a-db3f-4c10-afb6-1c75c99edb35 · outbound

This paper cites Gromov–wasserstein distances and the metric approach to object matching.Founda- tions of computational mathematics, 11(4):417–487, 2011.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Gromov–wasserstein distances and the metric approach to object matching.Founda- tions of computational mathematics, 11(4):417–487, 2011

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source=pdf_text observed=2026-07-31T12:59:33.047067Z digest=sha256:de5cc419ecae2dbf3c0f3d0ebb63cbc1b152142a00328ed490424d4c4297f14d

Observation 8077ee22-fcdc-44d3-ad25-968634ce9cb2 · outbound

This paper cites Semi-relaxed Gromov-Wasserstein divergence with applications on graphs.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Semi-relaxed Gromov-Wasserstein divergence with applications on graphs

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source=pdf_text observed=2026-07-31T12:59:33.051220Z digest=sha256:4b9c17e27674e8ea7c7041c86990e9297c1f4b274cef824484049a96cb6bbfc0

Observation 88c2b0d3-1b7a-44c7-9655-a6029f804951 · outbound

This paper cites Optimal transport for structured data with application on graphs.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Optimal transport for structured data with application on graphs

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source=pdf_text observed=2026-07-31T12:59:33.055497Z digest=sha256:66bcbe0084ac89a52b30742d4cb27a22e7ccd5de866aabd99ba1bcf8dc569883

Observation 88f504d6-5214-40ac-877a-9957c2c0135a · outbound

This paper cites Optimal Transport-Based Clustering of Attributed Graphs with an Application to Road Traffic Data.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Optimal Transport-Based Clustering of Attributed Graphs with an Application to Road Traffic Data

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source=pdf_text observed=2026-07-31T12:59:33.059125Z digest=sha256:e8795336d8ead2b12dfe9602e1b7f0acd5321d7a47ca5496e2b28cf1b7938252

Observation 52320953-e3d3-4d39-8874-dce3f9de70d4 · outbound

This paper cites Pot: Python optimal transport.Journal of Machine Learning Research, 22(78):1–8, 2021.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Pot: Python optimal transport.Journal of Machine Learning Research, 22(78):1–8, 2021

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source=pdf_text observed=2026-07-31T12:59:33.063448Z digest=sha256:2841c981817a944261da57bf0b979c835335b0c28db76fbfb62045ca1e969a8d

Observation 08f3fc87-c74e-4c28-9e68-1c88ca3eb752 · outbound

This paper cites Cross- comparison of network clustering methods: Potential macroscopic fundamental diagram (mfd)-based applications.Transportation Research Record, 2679(12):514–532, 2025.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Cross- comparison of network clustering methods: Potential macroscopic fundamental diagram (mfd)-based applications.Transportation Research Record, 2679(12):514–532, 2025

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source=pdf_text observed=2026-07-31T12:59:33.067531Z digest=sha256:6ee90c8e7bb25f59c2ef73d17c4e806c3576e97e88efc536ceecd1ac3a8af041

Observation 4fea4445-7bcf-4f5c-9687-bc2eb54f8589 · outbound

This paper cites Modularity and community structure in networks.Proceedings of the national academy of sciences, 103(23):8577–8582, 2006.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Modularity and community structure in networks.Proceedings of the national academy of sciences, 103(23):8577–8582, 2006

Reference 70

Resolution
unresolved
no resolver link, observed 2026-07-31T12:59:33.071464Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-31T12:59:33.071464Z digest=sha256:83cd5f0885d702c201dfa93edcd6a9519a71d3ac98fadf5bab82052d95d813ea

Observation 4c39e842-f13d-4306-89e4-c2522e28024a · outbound

This paper cites Lessons from thirteen years of the london cycle hire scheme: A review of evidence.Multimodal Transportation, 3(3):100156, 2024.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Lessons from thirteen years of the london cycle hire scheme: A review of evidence.Multimodal Transportation, 3(3):100156, 2024

Reference 71

Resolution
unresolved
no resolver link, observed 2026-07-31T12:59:33.075223Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-31T12:59:33.075223Z digest=sha256:559eb5d77a52c12429b3f8e7ae33c5081d42208ac0cd6857079a3e5bbe5bb5fd

Observation c2a5ce6b-b2bc-4799-884f-c1fab243b479 · outbound

This paper cites Community structures, interactions and dynamics in london’s bicycle sharing network.

Integrating Structure and Attributes for Transportation Network Partitioning via Optimal Transport Community structures, interactions and dynamics in london’s bicycle sharing network

Reference 72

Resolution
unresolved
no resolver link, observed 2026-07-31T12:59:33.079112Z

Source-reported events for the cited work

Unavailable: canonical work link unavailable.

source=pdf_text observed=2026-07-31T12:59:33.079112Z digest=sha256:89234058c9947a782b6bb049184ed5d95009f721ecfdf200dcbefc29389fb5fb

Pith citing papers

No inbound Pith citation observations are available.