Extracting galactic binary signals from the first round of Mock LISA Data Challenges
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چکیده
We report on the performance of an end-to-end Bayesian analysis pipeline for detecting and characterizing galactic binary signals in simulated LISA data. Our principal analysis tool is the Blocked-Annealed Metropolis Hasting (BAM) algorithm, which has been optimized to search for tens of thousands of overlapping signals across the LISA band. The BAM algorithm employs Bayesian model selection to determine the number of resolvable sources, and provides posterior distribution functions for all the model parameters. The BAM algorithm performed almost flawlessly on all the Round 1 Mock LISA Data Challenge data sets, including those with many highly overlapping sources. The only misses were later traced to a coding error that affected high frequency sources. In addition to the BAM algorithm we also successfully tested a Genetic Algorithm (GA), but only on data sets with isolated signals as the GA has yet to be optimized to handle large numbers of overlapping signals. PACS numbers: 95.55.Ym, 04.80.Nn, 95.85.Sz Extracting galactic binary signals from the first round of Mock LISA Data Challenges2
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متن کاملar X iv : g r - qc / 0 70 11 70 v 1 3 0 Ja n 20 07 An overview of the second round of the Mock LISA Data Challenges
The Mock Data Challenges (MLDCs) have the dual purpose of fostering the development of LISA data analysis tools and capabilities, and demonstrating the technical readiness already achieved by the gravitational-wave community in distilling a rich science payoff from the LISA data. The first round of MLDCs has just been completed and the second round data sets have been released. The round two da...
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تاریخ انتشار 2006