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Paper Citation Record · LEDGER

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis

As of 11 August 2026, this Paper Citation Record lists 100 of 232 outbound references and 0 inbound Pith citation observations for arXiv:2607.11256.

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

pith.paper-citation-record.v1
2607.11256 v1

Coverage vector

measured 100 of 232 reference resolution

Typed states for the displayed outbound observations.

Source: paper_references, paper_reference_links, observed 2026-07-14T05:58:32.336515Z

measured 100 of 100 standing notices

One-hop event checks from named stored sources.

Source: scholarly_work_events, retraction_status_cache, observed 2026-08-11T06:34:44.6726+00:00

measured 0 of 0 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links

measured 0 of 1 external citation measurements

A source-named dated measurement, never combined with another source.

Source: cited_works

Reference resolution

100 of 232 outbound references displayed

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External citation measurements

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Outbound references

Observation 66e62ef0-5907-464c-ae44-f7d5ebdd92b2 · outbound

This paper cites Electronic Journal of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Electronic Journal of Statistics , volume=

Reference 1

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Observation a8fbc46a-0e21-43cf-ab16-eb844f4bbcfb · outbound

This paper cites Nature genetics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Nature genetics , volume=

Reference 2

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Observation e67d2779-d198-4ca9-af7e-eb075a6f6fc7 · outbound

This paper cites Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume =.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume =

Reference 3

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Observation ada821f2-e707-4c60-8d53-465cb5894967 · outbound

This paper cites Jackknife multiplier bootstrap: finite sample approximations to the.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Jackknife multiplier bootstrap: finite sample approximations to the

Reference 4

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Observation 3e60d11e-dcdb-42d7-97d9-cbdc4c0dca50 · outbound

This paper cites Journal of Multivariate Analysis , volume =.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of Multivariate Analysis , volume =

Reference 5

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Observation 4ec23f30-5258-4810-8808-a36397396f4f · outbound

This paper cites and Owens, D.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis and Owens, D

Reference 6

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Observation c7bc0737-b1f2-4374-a67f-30740ab9f938 · outbound

This paper cites and Zhu, H.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis and Zhu, H

Reference 7

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Observation 5787e07f-32b8-4c8d-87c9-eda3ded2c4a4 · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 8

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Observation 61ff5a4f-1003-4777-8f04-5b31435f06f8 · outbound

This paper cites Test , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Test , volume=

Reference 9

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Observation 291424d5-6fe4-4ff0-b080-a285580fe889 · outbound

This paper cites Statistica Sinica , pages=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Statistica Sinica , pages=

Reference 10

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Observation a3c1582d-e726-4420-800e-6eb3b56f8e09 · outbound

This paper cites High-dimensional data segmentation in regression settings permitting temporal dependence and non-Gaussianity.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis High-dimensional data segmentation in regression settings permitting temporal dependence and non-Gaussianity

Reference 12

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Observation 854874fe-9619-4742-9e78-598d72bf2efb · outbound

This paper cites 2021 , journal =.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis 2021 , journal =

Reference 13

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Observation c29cc2b4-1fe4-4dd1-ae19-ae8deca3fd50 · outbound

This paper cites arXiv preprint arXiv:2308.04368 , year=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis arXiv preprint arXiv:2308.04368 , year=

Reference 14

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Observation 0db73b99-cd30-482b-9b46-3246831eb9e1 · outbound

This paper cites Statistica Sinica , pages=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Statistica Sinica , pages=

Reference 15

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Observation b24e15af-5355-4a56-a1d4-fe54d1fd7bb0 · outbound

This paper cites 2021 , journal=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis 2021 , journal=

Reference 16

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Observation 4c337eb0-688d-427a-8923-cec37af37da9 · outbound

This paper cites Change point inference in high-dimensional regression models under temporal dependence.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Change point inference in high-dimensional regression models under temporal dependence

Reference 17

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Observation 8db09a07-30b7-41b4-ad91-b6f2e20a10b3 · outbound

This paper cites International Conference on Artificial Intelligence and Statistics , pages=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis International Conference on Artificial Intelligence and Statistics , pages=

Reference 18

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Observation 52e43089-54fc-4d54-8c7b-97731d574bb9 · outbound

This paper cites Journal of Royal Statistical Society, Series B , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of Royal Statistical Society, Series B , volume=

Reference 19

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Observation 907f5c74-1f8f-4752-97cd-dd27408412ed · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 20

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Observation 452d3e05-935d-4d3e-a86b-afdf82410dd1 · outbound

This paper cites The Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Annals of Statistics , volume=

Reference 21

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Observation b0ff7e0c-5c1b-428e-a06d-5bc63f0a95ec · outbound

This paper cites Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=

Reference 22

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Observation 56bf094b-54fa-4b4f-bdaf-9c95c4b3dc18 · outbound

This paper cites Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=

Reference 23

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Observation bd08c1cc-2424-448b-bb37-3eb0ab29aad0 · outbound

This paper cites an unresolved cited work.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Unresolved cited work

Reference 24

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Observation c959895b-9ae1-4dc8-aef2-97ad5a6439d9 · outbound

This paper cites The Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Annals of Statistics , volume=

Reference 25

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Observation 30153c61-60ff-4fea-80b1-9600fb305508 · outbound

This paper cites Journal of.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of

Reference 26

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Observation 16be6631-6c1d-48fd-8df0-1d6cfe5cdb76 · outbound

This paper cites Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=

Reference 27

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Observation 7433515f-bd40-4784-a512-d94014ae4db4 · outbound

This paper cites Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=

Reference 28

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Observation ca40bef6-eac0-455c-8f18-03faf5157622 · outbound

This paper cites Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=

Reference 29

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Observation da6e23c7-ea50-4b72-ab70-12f9cbbd8271 · outbound

This paper cites A Unified Framework for Testing High Dimensional Parameters: A Data-Adaptive Approach.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis A Unified Framework for Testing High Dimensional Parameters: A Data-Adaptive Approach

Reference 30

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Observation 9003d161-e2b4-4733-862b-3b24390789f2 · outbound

This paper cites On the Maximal Perimeter of a Convex Set in.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis On the Maximal Perimeter of a Convex Set in

Reference 31

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Observation 6fabc464-0977-498c-ad3e-4e02f40a4d1f · outbound

This paper cites Electronic Journal of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Electronic Journal of Statistics , volume=

Reference 32

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Observation 3a5c6807-a96b-49bd-a284-90d46bc67ace · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 33

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Observation b9de5844-311c-456b-a700-46c3b3ca8824 · outbound

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A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Concentration

Reference 34

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Observation c227af38-dbf0-4fe6-9934-79dd384ef433 · outbound

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A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Submitted , year=

Reference 35

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Observation 9a872ebd-640e-47ec-bf47-0bd82150d4e3 · outbound

This paper cites The Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Annals of Statistics , volume=

Reference 36

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Observation 1e8a384c-f3c9-4e50-a194-d1e9f811c27d · outbound

This paper cites Journal of Royal Statistical Society, Series B (Statistical Methodology) , pages=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of Royal Statistical Society, Series B (Statistical Methodology) , pages=

Reference 37

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Observation 222257cb-918a-4dba-bb96-943312027d03 · outbound

This paper cites The Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Annals of Statistics , volume=

Reference 38

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Observation 120d6d93-ac4b-4737-a333-396112ae106a · outbound

This paper cites Statistica Sinica , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Statistica Sinica , volume=

Reference 39

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Observation 73624a07-d753-4725-acad-d974197df05d · outbound

This paper cites The Annals of Probability , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Annals of Probability , volume=

Reference 40

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:3e7e3eac355ded387df15907eabbe4ca81ddd34fbe156e3a31c40c6891c36f58

Observation 18c3a4a5-b3ee-4fcd-94b3-7027cfba1486 · outbound

This paper cites Gaussian and bootstrap approximations for high-dimensional.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Gaussian and bootstrap approximations for high-dimensional

Reference 41

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:8389d7289446b95a38cda49a80d674c166f94fb38986150f1e266fd2b426dd2d

Observation b9ee1398-b3c8-4fe8-9b8b-6cb21e91fc7a · outbound

This paper cites The Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Annals of Statistics , volume=

Reference 42

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:bd6825e6824a2b843d65c2e6387d2c8a72cf3033a95c96f49a939f26d13f38d2

Observation 3dc393d2-160c-4d52-a3e7-56acc545abbe · outbound

This paper cites The Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Annals of Statistics , volume=

Reference 43

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:a0d7fd9117fc918813cd2fa7337e5c360111b034aee703fe62a16ec08d1a630a

Observation e3ca4c16-4f69-42a9-83d3-29aa21e1457d · outbound

This paper cites Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Annals of Statistics , volume=

Reference 44

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:819f49345c5b07a9b7ef258008f68a455573e1b251f0f0b15353bbdb57b2403d

Observation 10c3e938-a852-448c-b9d8-c024a9b04436 · outbound

This paper cites The Journal of Machine Learning Research , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Journal of Machine Learning Research , volume=

Reference 45

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:ac037aa37d15015a9005eb9248bf0c64b010a5717050b22863ee6c5f68daa869

Observation 60550007-074e-4346-a621-fd13be87da32 · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 46

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:ee6cf00c8a01da7cb3b676ab571d4231f8e2ea40515b41d23fdaf57fe2f60723

Observation 69ce9d77-f811-41b7-8b24-b06acb292277 · outbound

This paper cites The Journal of Machine Learning Research , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Journal of Machine Learning Research , volume=

Reference 47

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:689efdd68679ae183b81e735314662f5df1f62da135b7973185b0423fc2b5cf6

Observation 0549905a-79f8-4f24-8246-6923875bccdf · outbound

This paper cites 2011 , publisher=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis 2011 , publisher=

Reference 48

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:372e786fa5d626aca3147db94eb9f76b32b03ae044a5bb271724033b1f64198d

Observation 5affb57f-7007-407a-a973-919e848f736d · outbound

This paper cites Biometrika , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Biometrika , volume=

Reference 49

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:047607b0739e8449a240a248d822798d4b6098a5b3c1c124b89d8d91efca68a4

Observation cf1de3c6-9089-4493-bc83-0f8168d48f54 · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 50

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:da57c178bbe233d5dc353448373559da1217c185da1554e88c71fbdb0cfbd863

Observation 6e1e4d1a-4910-430d-963a-9a7aa0e0d559 · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 51

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:d5463acc268df82baf6ce50676b8d678ddb323ca46c196aded0a2dd68877bef1

Observation a64198ec-3370-43bd-9cf2-356037620236 · outbound

This paper cites Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Statistics , volume=

Reference 52

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:dc018d683c446004371672facf883fdf2c7fc6af313d1b13af08bea64b1ffb7c

Observation 062412e1-3188-410e-9be2-789a8874a4a3 · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 53

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:2bd4bf41c39e3048434aefc9c5eafdd022146e4dbf77317034700b7e2c44d3d2

Observation 36476dc9-77c9-499f-8df1-cd1f894acaef · outbound

This paper cites Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=

Reference 54

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:7b1da1ffb7dfe5f69c4d8b97edb81cc0ee98790fe0c851a035073599d37874df

Observation 2359d0f3-4679-47aa-9fa3-40206eebd9c2 · outbound

This paper cites Journal of Multivariate Analysis , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of Multivariate Analysis , volume=

Reference 55

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:b38cf8fa131b132369e71a91434087fc595a1804c39f6f3a45458de6ce25bfc7

Observation cf90f097-3aba-470c-b9f6-f8301133276b · outbound

This paper cites Econometrica , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Econometrica , volume=

Reference 56

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:50eec362c541f894a0239c4e19b09fee4d01a686d0a2122b9ee680c3b680a63f

Observation 1e4c182c-754e-4279-8be2-3eadc9a2656d · outbound

This paper cites 1997 , publisher=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis 1997 , publisher=

Reference 57

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:a00827f92bff32de1acd748a1190d48aaf085917308859045a8d61b3a49b75c6

Observation 4be20f06-7bda-4e7d-bc5e-d82cf968b441 · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 58

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:4c0c3b8bbc299590f3639a82c5e71649ec241c5593f603b8c6af44a7a48e8075

Observation c2fb889e-7984-427e-8663-46718687bd0e · outbound

This paper cites In: 53rd Annual Allerton Conference on Communication, Control, and Computing (Allerton) , publisher=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis In: 53rd Annual Allerton Conference on Communication, Control, and Computing (Allerton) , publisher=

Reference 60

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:100fb46f5f9b6e321ed5f18def5020df80473eedd561b6ca1142ebc5d05f0545

Observation ffc993a9-f19d-41a5-82ef-ef8149e1ba4c · outbound

This paper cites Journal of Royal Statistical Society, Series B (Statistical Methodology) , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of Royal Statistical Society, Series B (Statistical Methodology) , volume=

Reference 61

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:d94a632f8c99dd3e7df4bd9ce8838c48ff2c3ae4591524f4c7075e3f7ffc0346

Observation 4a370a21-a378-41d7-83eb-9155c74227dd · outbound

This paper cites Soviet Math.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Soviet Math

Reference 62

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:7f6872f385d5e0eefe666d4a6dbac7110b4c773200a6c33fb23840b33d91217d

Observation b4882196-d71d-49f9-91d4-b7b087f555c6 · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 63

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:a9c5935348b28175a4ef8e76e126338cd30d09ab3bd03a314e28e1670025c666

Observation ebee3879-08fc-4245-91fc-de1493ef136b · outbound

This paper cites Quarterly Journal of Economics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Quarterly Journal of Economics , volume=

Reference 64

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:b922681e05a925c592dd9fad1fbfc8b1bf25f8ea8546765225e76b031b35b823

Observation 8e3caa79-7804-488d-a7f7-9253897a0f43 · outbound

This paper cites Journal of Economic Dynamics and Control , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of Economic Dynamics and Control , volume=

Reference 65

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:87bd7c7a086fb052de59d439b333d4961ee81bbf35c4d5a315073f3206587d25

Observation fa1a3118-e0ce-4839-9111-a819c917620e · outbound

This paper cites Statistics and Computing , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Statistics and Computing , volume=

Reference 66

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:f1103ea30a2bc7cda7994b7c6da067f7ea838df5d91e74ad1418dc19c529626a

Observation d5ce94ac-c958-42da-92d8-d287ab380e18 · outbound

This paper cites Technometrics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Technometrics , volume=

Reference 67

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:f1e040ab10888fd361f813b1abfc676db0995d719e0b729559936dca1d7e44a4

Observation fff874c0-3eea-417b-91f6-a702c24d5719 · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 68

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:01b20429104b88f01201c4a1b4e1b0739b9fdcaa7e0d108db22c6a048106bd65

Observation d78d1c50-ced9-49e3-9d2e-09dfed796024 · outbound

This paper cites Statistics and Computing , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Statistics and Computing , volume=

Reference 69

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:ffa1d6538337460c3b131f1ea1447e133c080fae4d273a2bbca58952ebf191ed

Observation 80a5182a-fc16-485a-8208-230d0a3f7090 · outbound

This paper cites Journal of the American Statistical Association , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , volume=

Reference 70

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:4347319359719b46289aeb05dd2fa831e913db2cc2b99ed40ec639b3481215c4

Observation e459977d-ced8-413d-8923-74a940c0b398 · outbound

This paper cites Bernoulli , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Bernoulli , volume=

Reference 71

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:d01af022a8026d9b86ce213e727379dbf02755851672ffdc9a0d1d733b219657

Observation 2810231d-8d97-4b7a-84ad-3901d145ede1 · outbound

This paper cites Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Annals of Statistics , volume=

Reference 72

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:838e18801efd993dbbbb72215e5239ec64d0f45cbcf9e7521434b6f04af4d79d

Observation 6c34c6d9-7c5d-4725-a0e0-50cc13bddaa5 · outbound

This paper cites Statistica Sinica , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Statistica Sinica , volume=

Reference 73

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:fdb29fcb5cbd2a7543f4ec929727931adb51e0b747c0c117673f92e05a519f2c

Observation 055c7da6-d294-4c22-b478-fc5d82b8b2d5 · outbound

This paper cites and Folstein, Susan E.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis and Folstein, Susan E

Reference 74

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:1dad59bad7bfdbdc0f19c7085ad70df0076835932015e2306c069d2e1d8d6c2c

Observation 967f150c-5dd0-4d10-8f53-0458a7d407a7 · outbound

This paper cites Journal of the American Statistical Association , year=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association , year=

Reference 75

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:7eeaab77012d3e85ebe6867643781809644fc536a2ed3ba33c42c85db7066d39

Observation c53338c0-6ae4-4c8d-bd9f-bbaa92a0ffb5 · outbound

This paper cites Multi-Modal Multi-Task Learning for Joint Prediction of Multiple Regression and Classification Variables in.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Multi-Modal Multi-Task Learning for Joint Prediction of Multiple Regression and Classification Variables in

Reference 76

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:5d4099eeb3a13aeb2106b4818df6597d3124976a0796b529fd71ddfad4358733

Observation 4fbdbe19-9946-4bd5-a127-c0f0a5b9c93d · outbound

This paper cites The Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Annals of Statistics , volume=

Reference 77

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:b296e5b455e69d6240b5d9ebf1a3f18701aa55e217ddd29d28617b79853fa5a9

Observation 2745f268-f7cc-4a8f-8ad9-1e6b888a7156 · outbound

This paper cites Structural Break Detection in High-Dimensional Non-Stationary.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Structural Break Detection in High-Dimensional Non-Stationary

Reference 78

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:f1543551d90796656e2ea152c2415df7025a3e6e64568d3c7450501f0615bf19

Observation 1fc6e894-b9ee-475a-a4cb-45261827e8a3 · outbound

This paper cites Biometrics , year=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Biometrics , year=

Reference 79

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:c8c5dcb6a82fa3417d70e17e075b6e1731335dd7ce4f088cfb19911bc9cb56a7

Observation eddc6cc4-d2af-4fd3-acf5-00b17c753f15 · outbound

This paper cites Lin and Rebecca Willett , title =.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Lin and Rebecca Willett , title =

Reference 80

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:0ec5c9b3aab96bfc12c07f000197d6d61405740838dff8d48d4c3eae2a60da4f

Observation 82494e2b-d90f-402d-94d1-e412861c8c95 · outbound

This paper cites Restricted eigenvalue properties for correlated.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Restricted eigenvalue properties for correlated

Reference 81

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:4d839bcba9eaf43c64784210f78bcc868816d0265651f40dade2401cf1bed95e

Observation e2afb8a9-d81f-4dcc-8633-06864cd41153 · outbound

This paper cites Electronic Journal of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Electronic Journal of Statistics , volume=

Reference 82

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:880f180cae5058f0f0268b9d61e4e40ad36060fbb64f7cce45b85c72e371ccdb

Observation 8154d5a4-c25f-41ea-9bd1-0257f2954ed7 · outbound

This paper cites , author=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis , author=

Reference 83

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:92aa47aa072f5fcc1e3abd16d1c8c431c981b65e817f609182e6d92dbc2e57ac

Observation 59707852-8214-4aed-8030-7c3f07c9363f · outbound

This paper cites Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the Royal Statistical Society: Series B (Statistical Methodology) , volume=

Reference 84

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:c57567c9da9edae59a4dd24802cf5663adbf90756e7a1dce31867927e856f35b

Observation 6ebe8272-3884-49a0-9604-d55f5744e678 · outbound

This paper cites The Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Annals of Statistics , volume=

Reference 85

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:68f7834fd22c3ab85fd8cb651840c9d992002f9c04321e2eaacd875b3f03684b

Observation b98a10ce-bdd9-4aae-b6a8-ccf2827d5600 · outbound

This paper cites International Conference on Artificial Intelligence and Statistics , pages=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis International Conference on Artificial Intelligence and Statistics , pages=

Reference 86

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:6c300a45984ee310a7a400866a9536ea255de0fe3aae3e273829f4446068b876

Observation f24c4b4f-9f75-447a-80fb-0938d3638a9d · outbound

This paper cites Journal of Econometrics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of Econometrics , volume=

Reference 87

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:54a4ae507f376418cd01908bbed29bea3e483b694aef0958854c52081812396e

Observation fe0b1f00-dd03-42a3-8766-1b2a8b6b370e · outbound

This paper cites Common change point estimation in panel data from the least squares and maximum likelihood viewpoints.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Common change point estimation in panel data from the least squares and maximum likelihood viewpoints

Reference 88

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:4311bf5a4981d7b2686706c4e7271f882a193f50c04c4ac3baf80dd2cf14c766

Observation ba66c5f5-6c9c-40ab-b2aa-67f5a9157af3 · outbound

This paper cites Journal of the American Statistical Association, to appear , year=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association, to appear , year=

Reference 90

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:2e392074ca19310609571b3a7085ce2b000f513fb6a71664de80460d55ae9f2e

Observation 614bbb78-bbdc-4ab7-9ba4-84420cac7d30 · outbound

This paper cites Dating the Break in High-dimensional Data.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Dating the Break in High-dimensional Data

Reference 91

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:77ac8f8e8c5c6fc78792c8ff9daa7be4f181d7564fd542655a124a4d2579d400

Observation 3ef81535-eaf1-4999-b59e-5280923e119f · outbound

This paper cites Electronic Journal of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Electronic Journal of Statistics , volume=

Reference 92

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:50ea607cad89513d64f6d776a05f470cfe8fb73dab43351943817a5eb945abea

Observation 457423a9-6688-4203-9a2c-dc823969a39b · outbound

This paper cites Review of Economics and Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Review of Economics and Statistics , volume=

Reference 93

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:f09c4b69b3a0d0acc9f0708fb545edd048fd6bbf9db9dfa6ee10649ed87ac1fc

Observation b3b4489a-2e3b-4f47-bfea-d3978ae9852b · outbound

This paper cites Change-point detection in panel data via double.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Change-point detection in panel data via double

Reference 94

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:57cca4b016f2370da5166fabbd264abbff179fdfd3810cb2760f6fb1a86ca803

Observation 779afb9a-064c-4636-a859-00d7176abaf8 · outbound

This paper cites Inference for Change Points in High Dimensional Data via Self-Normalization.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Inference for Change Points in High Dimensional Data via Self-Normalization

Reference 95

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:840c30a4185f594494aa89dfb1b11e5a4bb37c38494f93d214937e0e36410f00

Observation 28c58e4f-1d9e-4b50-87ae-0f95904ae27e · outbound

This paper cites The Annals of Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis The Annals of Statistics , volume=

Reference 96

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:b004a9d6d696c91107b3a3bd0b88f4ac199137481dd89eeaf98d175a5077b9c5

Observation 7d16c501-f9ec-4117-9ca7-5d0edde5f178 · outbound

This paper cites Journal of the American Statistical Association,to appear , pages=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the American Statistical Association,to appear , pages=

Reference 97

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:48f00c75fdcb8ef0fa6b8beba06a47476dd0b57809777361fefeb6ee60536615

Observation e99250e6-9db4-4ffb-96bf-25b650a68a52 · outbound

This paper cites Disentangling sex-dependent effects of APOE on diverse trajectories of cognitive decline in.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Disentangling sex-dependent effects of APOE on diverse trajectories of cognitive decline in

Reference 98

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:dfa76a08253bd32628f345bf1ff1d14ee09df116c6a9b7cc251cb48797d0172e

Observation e66ead41-1c3c-4602-83d3-d643a20d194a · outbound

This paper cites Annals of Applied Statistics , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Annals of Applied Statistics , volume=

Reference 99

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:c2591af99e7f85386f7e716081e707675471a7d274676c882aa887ef77442cba

Observation a0a167cc-80c1-42cb-ab3b-a07338feca72 · outbound

This paper cites 2002 , publisher =.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis 2002 , publisher =

Reference 100

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:31d2bc9d682a66a4c96c15e8888bab3eeaeb24d283487fc502fd64f5aa6ad9eb

Observation afbbe8e6-d14b-4c2f-bade-17bcca2a9377 · outbound

This paper cites Journal of Multivariate Analysis , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of Multivariate Analysis , volume=

Reference 101

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:f26545bedcf461e73d2707c6d6b1df499e9752cc6de510c4ca42fcf4537fc815

Observation 933d8475-d26c-4958-8dd5-bb71d9a36a55 · outbound

This paper cites Journal of the Royal Statistical Society Series B: Statistical Methodology , volume=.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Journal of the Royal Statistical Society Series B: Statistical Methodology , volume=

Reference 102

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:a6aec3927ce0977b9847bdfc8cd9a2f72a3aa79e71e57b58acbc2cb9675e87e3

Observation f8a44d5f-4b5c-43b9-b5c0-e4767adfe6bb · outbound

This paper cites Inference for.

A General U-Statistic Framework for High-Dimensional Multiple Change-Point Analysis Inference for

Reference 103

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source=arxiv_source observed=2026-07-14T05:58:32.336515Z digest=sha256:fdf5412478ce2f276cc8cbd78af3cdbe2919314128bee837e114c00e58f38f79

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