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Paper Citation Record · LEDGER

Modeling non-stationary noise: applications in gravitational wave astronomy

As of 20 August 2026, this Paper Citation Record lists 30 of 30 outbound references and 0 inbound Pith citation observations for arXiv:2607.13168.

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pith.paper-citation-record.v1
2607.13168 v1

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measured 30 of 30 reference resolution

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Outbound references

Observation bbe9eda2-c930-4e3b-b517-a45fcfe21927 · outbound

This paper cites [27] the WDM noise covariance matrix was cal- culated analytically for the special casesS(f, t) =S f (f) andS(f, t) =S t(t).

Modeling non-stationary noise: applications in gravitational wave astronomy [27] the WDM noise covariance matrix was cal- culated analytically for the special casesS(f, t) =S f (f) andS(f, t) =S t(t)

Reference 1

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Observation b8df3de0-392c-4c1f-aa6b-912440bb1331 · outbound

This paper cites an unresolved cited work.

Modeling non-stationary noise: applications in gravitational wave astronomy Unresolved cited work

Reference 2

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Observation 6bf9162e-3164-4225-8338-e8245fe89502 · outbound

This paper cites Detection, Measurement and Gravitational Radiation.

Modeling non-stationary noise: applications in gravitational wave astronomy Detection, Measurement and Gravitational Radiation

Reference 3

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Observation 096056e3-c30c-46e0-ac63-6911b5a9807a · outbound

This paper cites A guide to LIGO-Virgo detector noise and extraction of transient gravitational-wave signals.

Modeling non-stationary noise: applications in gravitational wave astronomy A guide to LIGO-Virgo detector noise and extraction of transient gravitational-wave signals

Reference 4

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Observation aeaac5fe-0f50-40bf-9a16-293879b03257 · outbound

This paper cites BayesWave: Bayesian Inference for Gravitational Wave Bursts and Instrument Glitches.

Modeling non-stationary noise: applications in gravitational wave astronomy BayesWave: Bayesian Inference for Gravitational Wave Bursts and Instrument Glitches

Reference 5

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Observation c19deb46-9b3e-41eb-9ace-bce449707c95 · outbound

This paper cites The BayesWave analysis pipeline in the era of gravitational wave observations.

Modeling non-stationary noise: applications in gravitational wave astronomy The BayesWave analysis pipeline in the era of gravitational wave observations

Reference 6

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Observation dab5d629-062a-4b20-a8fb-6e82ccc2bbbe · outbound

This paper cites Modeling compact binary signals and instrumental glitches in gravitational wave data.

Modeling non-stationary noise: applications in gravitational wave astronomy Modeling compact binary signals and instrumental glitches in gravitational wave data

Reference 7

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Observation 2ff0622f-fccf-4a9a-a967-0d56092c0401 · outbound

This paper cites Accurate modeling and mitigation of overlapping signals and glitches in gravitational-wave data.

Modeling non-stationary noise: applications in gravitational wave astronomy Accurate modeling and mitigation of overlapping signals and glitches in gravitational-wave data

Reference 8

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Observation 3d4eba1d-5a56-4435-84fd-a2fdbae0c1d5 · outbound

This paper cites Detecting Gravitational Waves in Data with Non-Gaussian Noise.

Modeling non-stationary noise: applications in gravitational wave astronomy Detecting Gravitational Waves in Data with Non-Gaussian Noise

Reference 9

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Observation ce8cd263-829f-4fd9-910d-d4c1c94a2e6b · outbound

This paper cites Mozzon, L.

Modeling non-stationary noise: applications in gravitational wave astronomy Mozzon, L

Reference 10

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Observation 820d07b1-b7d2-4f71-8119-5f81dbe963c9 · outbound

This paper cites LISA Gravitational Wave Sources in A Time-Varying Galactic Stochastic Background.

Modeling non-stationary noise: applications in gravitational wave astronomy LISA Gravitational Wave Sources in A Time-Varying Galactic Stochastic Background

Reference 11

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Observation c8fa14bf-40c7-486d-b3dc-95c070e20dab · outbound

This paper cites Does non-stationary noise in LIGO and Virgo affect the estimation of $H_0$?.

Modeling non-stationary noise: applications in gravitational wave astronomy Does non-stationary noise in LIGO and Virgo affect the estimation of $H_0$?

Reference 12

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Observation d3452965-6533-4b57-b81c-6a409952fba0 · outbound

This paper cites Optimal reconstruction of the Hellings and Downs correlation.

Modeling non-stationary noise: applications in gravitational wave astronomy Optimal reconstruction of the Hellings and Downs correlation

Reference 13

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This paper cites Beyond diagonal approximations: improved covariance modeling for pulsar timing array data analysis.

Modeling non-stationary noise: applications in gravitational wave astronomy Beyond diagonal approximations: improved covariance modeling for pulsar timing array data analysis

Reference 14

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Observation d5ef6e7a-c288-49aa-9748-7d2af57fc1e6 · outbound

This paper cites Ghosh and N.

Modeling non-stationary noise: applications in gravitational wave astronomy Ghosh and N

Reference 15

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Observation b4901210-66a9-4461-ad50-0dddda5eab61 · outbound

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Modeling non-stationary noise: applications in gravitational wave astronomy Unresolved cited work

Reference 16

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Observation c9196651-d467-486d-8c38-b7be54de262e · outbound

This paper cites Ville, Cˆ ables et Transmission2A, 61 (1948).

Modeling non-stationary noise: applications in gravitational wave astronomy Ville, Cˆ ables et Transmission2A, 61 (1948)

Reference 17

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Observation 10e901e9-cd26-4f6a-b95f-4c36022fa3fb · outbound

This paper cites Martin and P.

Modeling non-stationary noise: applications in gravitational wave astronomy Martin and P

Reference 18

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Observation db681c07-5edf-4a7b-98b6-54b82a8214de · outbound

This paper cites The Wiener-Khinchin Theorem for Non-wide Sense stationary Random Processes.

Modeling non-stationary noise: applications in gravitational wave astronomy The Wiener-Khinchin Theorem for Non-wide Sense stationary Random Processes

Reference 19

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Observation 57f26f57-9826-4a7b-b5a3-62f826b9f3df · outbound

This paper cites Dechant and E.

Modeling non-stationary noise: applications in gravitational wave astronomy Dechant and E

Reference 20

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Observation 9388d5db-4fe7-4b92-bd1f-4e158271b4cb · outbound

This paper cites Daubechies, S.

Modeling non-stationary noise: applications in gravitational wave astronomy Daubechies, S

Reference 21

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Observation 9cf1f798-69e3-437d-91d1-9bdff68f08a6 · outbound

This paper cites Necula, S.

Modeling non-stationary noise: applications in gravitational wave astronomy Necula, S

Reference 22

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This paper cites Time-Frequency Analysis of Gravitational Wave Data.

Modeling non-stationary noise: applications in gravitational wave astronomy Time-Frequency Analysis of Gravitational Wave Data

Reference 23

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This paper cites The WDM Time-Frequency Transform in Gravitational-Wave Data Analysis I: Formalism.

Modeling non-stationary noise: applications in gravitational wave astronomy The WDM Time-Frequency Transform in Gravitational-Wave Data Analysis I: Formalism

Reference 24

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Observation 976d693c-d687-4b19-8e86-5d8e688f1867 · outbound

This paper cites An explicit and differentiable Wilson-Daubechies-Meyer transform for gravitational-wave data analysis.

Modeling non-stationary noise: applications in gravitational wave astronomy An explicit and differentiable Wilson-Daubechies-Meyer transform for gravitational-wave data analysis

Reference 25

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This paper cites Inference with finite time series: Observing the gravitational Universe through windows.

Modeling non-stationary noise: applications in gravitational wave astronomy Inference with finite time series: Observing the gravitational Universe through windows

Reference 26

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Modeling non-stationary noise: applications in gravitational wave astronomy Inference with finite time series II: the window strikes back

Reference 27

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This paper cites Schmidt, Mathematische Annalen63, 433 (1907), URLhttp://eudml.org/doc/158296.

Modeling non-stationary noise: applications in gravitational wave astronomy Schmidt, Mathematische Annalen63, 433 (1907), URLhttp://eudml.org/doc/158296

Reference 28

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Observation b06ed521-aae8-4bd5-a746-f419623adf02 · outbound

This paper cites Non-stationary noise in gravitational wave analyses: The wavelet domain noise covariance matrix.

Modeling non-stationary noise: applications in gravitational wave astronomy Non-stationary noise in gravitational wave analyses: The wavelet domain noise covariance matrix

Reference 29

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This paper cites Handling Data Gaps for the Next Generation of Gravitational-Wave Observatories.

Modeling non-stationary noise: applications in gravitational wave astronomy Handling Data Gaps for the Next Generation of Gravitational-Wave Observatories

Reference 30

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