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Published byAileen Perry Modified over 9 years ago
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bayesian analysis of interferometric data (arXiv:1109.4640) paul m. sutter benjamin wandelt, siddarth malu paris institute of astrophysics university of illinois at urbana-champaign
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mock observations 2 signal primary beam uv-plane data
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gibbs sampling 3 extract variance draw power spectrum realization construct Wiener- filtered map add fluctuations consistent with noise and spectrum
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advantages 4 fast and scalable – O(n p log n p ) joint analysis of spectrum and signal full exploration of uncertainties automatically accounts for beam free Wiener-filtered maps trivial marginalization straightforward foreground removal
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results – power spectrum 5
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results - map 6 posterior mean signal
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results - map 7 posterior mean dirty map
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results – marginalized posteriors 8
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other applications 9 primary beam signal posterior mean
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other applications 10
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future work 11 multiple frequencies, polarization implemented working on curved sky, foregrounds developing point- and extended- source analysis extending to 21 cm
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