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Paper Citation Record · LEDGER

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers

As of 9 August 2026, this Paper Citation Record lists 50 of 50 outbound references and 1 inbound Pith citation observation for arXiv:2511.04730.

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

pith.paper-citation-record.v1
2511.04730 v3

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measured 50 of 50 reference resolution

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measured 51 of 51 standing notices

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Source: scholarly_work_events, retraction_status_cache, observed 2026-08-09T06:31:02.800959+00:00

measured 1 of 1 inbound itemization

Pith citing papers itemized under the disclosed page cap.

Source: paper_references, paper_reference_links, observed 2026-05-22T01:10:16.744255Z

measured 0 of 1 external citation measurements

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

Source: arxiv_reference, observed 2026-05-22T01:10:51.353859Z

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Outbound references

Observation 2c5897d4-cfd8-4288-840c-364f7b6f36f4 · outbound

This paper cites These data contain both gravitational-wave strain and state vector channels, the latter providing data qual- ity information from auxiliary detector channels.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers These data contain both gravitational-wave strain and state vector channels, the latter providing data qual- ity information from auxiliary detector channels

Reference 1

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Observation c6ea213f-8a33-4086-b424-d83aa6f43bbf · outbound

This paper cites 1: Workflow of the SGNL online inspiral pipeline.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers 1: Workflow of the SGNL online inspiral pipeline

Reference 2

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Observation 158b8612-b51a-4557-b15f-68903ce1d504 · outbound

This paper cites glitches,.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers glitches,

Reference 3

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Observation 91c4dcf1-ff07-411c-b906-981270a2d516 · outbound

This paper cites If half-precision computation is enabled, the data are converted accordingly at this stage.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers If half-precision computation is enabled, the data are converted accordingly at this stage

Reference 4

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Observation e871479e-5cc1-42d7-98cc-97c71065ff79 · outbound

This paper cites Templates are first divided into groups [11, 14].

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Templates are first divided into groups [11, 14]

Reference 5

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Observation 3a2d8b89-bed2-42c9-a4dc-954631f22d29 · outbound

This paper cites Downsampling of whitened dataEach template time slice requires a specific sample rate, so the input detector data is downsampled to match the rate of each time slice.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Downsampling of whitened dataEach template time slice requires a specific sample rate, so the input detector data is downsampled to match the rate of each time slice

Reference 6

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Observation 5e3748bc-4fcc-4bf1-a675-bc077c299bb6 · outbound

This paper cites Pre-synchronization of time slicesIn SGNL, time slices are pre-synchronized before filtering rather than only aligned after the LLOID pipeline output.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Pre-synchronization of time slicesIn SGNL, time slices are pre-synchronized before filtering rather than only aligned after the LLOID pipeline output

Reference 7

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Observation 76f10bd9-5236-48e3-9794-35569cfc2dab · outbound

This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 8

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Observation ae2b25c3-9724-48ac-8df6-69c799c46b49 · outbound

This paper cites Using these offsets, SGNL identifies the exact portion of each downsampled stream to process, avoiding unneces- sary reads and eliminating added latency.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Using these offsets, SGNL identifies the exact portion of each downsampled stream to process, avoiding unneces- sary reads and eliminating added latency

Reference 9

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Observation 4f3911a8-b429-4001-806a-d77b56b9249a · outbound

This paper cites For each FIG.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers For each FIG

Reference 10

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Observation 83e5e7a0-6e4e-4f85-9d58-f866251fb1d2 · outbound

This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 11

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Observation c7957339-06b1-4b9a-abcc-0958011df26a · outbound

This paper cites The event time for each single-detector trigger is defined as the time of the SNR peak.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers The event time for each single-detector trigger is defined as the time of the SNR peak

Reference 12

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Observation 081af6e8-47e9-4096-89ad-20179806ff48 · outbound

This paper cites Within each subbank, events are then clustered, and only the event with the highest network SNR is retained, en- suring that at most one event is kept per subbank.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Within each subbank, events are then clustered, and only the event with the highest network SNR is retained, en- suring that at most one event is kept per subbank

Reference 13

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Observation b2041e02-eb33-4a9f-a9bb-3046df78a63d · outbound

This paper cites This calculation requires collecting back- ground noise distributions for each detector and for each SVD bin.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers This calculation requires collecting back- ground noise distributions for each detector and for each SVD bin

Reference 14

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Observation 6c33f434-2598-462d-9952-47229b388b59 · outbound

This paper cites If the F AR is below the public alert threshold, the event with the maximum SNR is se- lected.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers If the F AR is below the public alert threshold, the event with the maximum SNR is se- lected

Reference 15

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Observation d4bc0a94-0a91-4686-ac78-c6b5b08aa331 · outbound

This paper cites checkerboarded.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers checkerboarded

Reference 16

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Observation 52bd5e7c-8be3-4d03-aed7-14a8c8c985c2 · outbound

This paper cites found inst.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers found inst

Reference 17

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Observation ffb164b0-8253-44fd-a43a-0e82157d9d93 · outbound

This paper cites GWTC-4.0: Updating the Gravitational-Wave Transient Catalog with Observations from the First Part of the Fourth LIGO-Virgo-KAGRA Observing Run.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers GWTC-4.0: Updating the Gravitational-Wave Transient Catalog with Observations from the First Part of the Fourth LIGO-Virgo-KAGRA Observing Run

Reference 18

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Observation 7b79a2a3-9f8c-457b-9bb8-c8631261443e · outbound

This paper cites Aasiet al.(LIGO Scientific Collaboration), Advanced LIGO, Classical and Quantum Gravity32, 074001 (2015).

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Aasiet al.(LIGO Scientific Collaboration), Advanced LIGO, Classical and Quantum Gravity32, 074001 (2015)

Reference 19

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Observation c657dd3a-1e6d-4e29-8f36-2ec6ebb2457a · outbound

This paper cites Acerneseet al., Advanced Virgo: a second-generation interferometric gravitational wave detector, Classical and Quantum Gravity32, 024001 (2014).

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Acerneseet al., Advanced Virgo: a second-generation interferometric gravitational wave detector, Classical and Quantum Gravity32, 024001 (2014)

Reference 20

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Observation ea97439d-52b1-4f2e-89c4-5ce69286453f · outbound

This paper cites Akutsuet al., Overview of KAGRA: Detector design and construction history, Progress of Theoretical and Ex- perimental Physics2021, 05A101 (2020).

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Akutsuet al., Overview of KAGRA: Detector design and construction history, Progress of Theoretical and Ex- perimental Physics2021, 05A101 (2020)

Reference 21

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Observation 8e283354-2feb-44bf-a35f-83c2657773dc · outbound

This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 22

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Observation e95773d2-8e85-45ff-b34d-ca9f3e416e13 · outbound

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SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 23

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Observation 7e5567e9-9dd2-4ff9-823a-97d0ee510006 · outbound

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SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 24

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Observation d6ca041c-9bcf-4243-9ab1-e0732c0405c7 · outbound

This paper cites Collaboration, Gravitational-wave candi- date event database,https://gracedb.ligo.org/ superevents/public/.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Collaboration, Gravitational-wave candi- date event database,https://gracedb.ligo.org/ superevents/public/

Reference 25

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Observation f221d405-33a1-4653-9aa8-17bb63b353fb · outbound

This paper cites IndIGO and LIGO-India: Scope and Plans for Gravitational Wave Research and Precision Metrology in India.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers IndIGO and LIGO-India: Scope and Plans for Gravitational Wave Research and Precision Metrology in India

Reference 26

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Observation 808c73d1-fadd-41b0-b90b-12a4b3e5e468 · outbound

This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 27

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Observation 2265874c-c3d2-41ff-ba80-9408e088fd62 · outbound

This paper cites Messicket al., Analysis framework for the prompt dis- covery of compact binary mergers in gravitational-wave data, Phys.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Messicket al., Analysis framework for the prompt dis- covery of compact binary mergers in gravitational-wave data, Phys

Reference 28

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Observation 0e12a54c-ec7e-44ec-84f2-8aa06ced792a · outbound

This paper cites Ewinget al., Performance of the low-latency Gst- LAL inspiral search towards LIGO, Virgo, and KAGRA’s fourth observing run, Phys.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Ewinget al., Performance of the low-latency Gst- LAL inspiral search towards LIGO, Virgo, and KAGRA’s fourth observing run, Phys

Reference 29

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Observation fbd50530-88a5-4bab-a92c-ec2316fde19f · outbound

This paper cites Tsukadaet al., Improved ranking statistics of the GstLAL inspiral search for compact binary coalescences, Phys.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Tsukadaet al., Improved ranking statistics of the GstLAL inspiral search for compact binary coalescences, Phys

Reference 30

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Observation e7d47f46-76ad-46b5-b88a-690970177961 · outbound

This paper cites Sakonet al., Template bank for compact binary merg- ers in the fourth observing run of Advanced LIGO, Ad- vanced Virgo, and KAGRA, Phys.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Sakonet al., Template bank for compact binary merg- ers in the fourth observing run of Advanced LIGO, Ad- vanced Virgo, and KAGRA, Phys

Reference 31

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Observation 9efbb28b-110d-4f4b-9f4d-91c398acb6df · outbound

This paper cites New Methods for Offline GstLAL Analyses.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers New Methods for Offline GstLAL Analyses

Reference 32

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Observation 47d76e80-3d87-498c-9f1d-cb00b1bd7a81 · outbound

This paper cites Cannon, S.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Cannon, S

Reference 33

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Observation 5d745f6f-aa67-4bc2-993c-c5fead46c239 · outbound

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SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 34

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Observation 23b1ac85-95c4-4267-ba78-bb4c487e88b5 · outbound

This paper cites Cannon, R.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Cannon, R

Reference 35

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This paper cites an unresolved cited work.

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Reference 36

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This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 37

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This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 38

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Observation fd25b60b-f5df-42e9-a45e-60231a6375e8 · outbound

This paper cites Huang, C.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Huang, C

Reference 39

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This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 40

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This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 41

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This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 42

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Observation 7f25d782-79ba-4f3c-8b80-1071a7d0b776 · outbound

This paper cites Tsukada, K.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Tsukada, K

Reference 43

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This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 44

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This paper cites an unresolved cited work.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 45

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Observation d734b1ad-23f8-4ab0-8078-c4c88316f2dc · outbound

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SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 46

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Observation ef9bb54e-d082-4dbf-a54e-5884a21c3423 · outbound

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SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 47

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Observation 66b7f101-7cc0-4ac3-90eb-626713b21537 · outbound

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SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Unresolved cited work

Reference 48

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SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Distance measures in cosmology

Reference 49

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Observation 4b89dd51-2c83-44da-8434-8fd966869240 · outbound

This paper cites Distance measures in gravitational-wave astrophysics and cosmology.

SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers Distance measures in gravitational-wave astrophysics and cosmology

Reference 50

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Pith citing papers

Observation 61338eea-dbc8-4603-8787-b4f3fdf4adde · inbound

Fisher Information Velocity: A New Geometric Channel for Precision Glitch Identification in Gravitational-Wave Detectors cites this paper.

Fisher Information Velocity: A New Geometric Channel for Precision Glitch Identification in Gravitational-Wave Detectors SGNL: Scalable Low-Latency Gravitational Wave Detection Pipeline for Compact Binary Mergers

Reference 55

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