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PyCBC Live O3 Review
The major difference from the O2 analysis is that triggers are now generated from all detectors. This works by first generating double coincidences from all possible detector pairs, then picking the most significant double, and finally using the SNR time series in the remaining detectors to derive a p-value, which is then used to modify the FAR of the original double coincidence.
Procedure: let the pipeline run on O2 replay data and monitor the duty factor, lag and memory usage, making sure all combinations of detectors are explored.
Contact: Tito
Outcome: daily cumulative distributions of lag
Signoff:
Procedure: plot the rate of triggers vs their FAR after running on real data (possibly from the first item).
Contact:
Procedure: using the O2 replay analysis, wait for triggers to be uploaded (with all possible ifo combinations) and check that BAYESTAR completes successfully.
Contact:
Signoff:
Reference could be the O2 PyCBC Live configuration, or O3 offline search.
Procedure: TBD. Reuse the data/scripts for the O2 review?
Contact: Bhooshan
Scripts to run the example are on IUCAA cluster at: /home/bhooshan.gadre/work/pycbc_O3_online_test/injection/scripts (THe script with hw_inj will be finalize soon)
Optional?
Procedure: repeat the analysis done on step 4 with a different combination of detectors.
Contact:
- Pregated/ungated strain
- State/DQ channels and flags
- SNR threshold, NewSNR threshold, GraceDB upload threshold
- Choice of ranking statistic
Signoff:
Procedure: banksim
Contact: Soumen?
Signoff: