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First on-sky results of a neural network based tomographic reconstructor: Carmen on Canary

机译:基于神经网络的X线断层摄影重建器的首次空中测试结果:Carmen on Canary

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We present on-sky results obtained with Carmen, an artificial neural network tomographic reconstructor. It was tested during two nights in July 2013 on Canary, an AO demonstrator on the William Hershel Telescope. Carmen is trained during the day on the Canary calibration bench. This training regime ensures that Carmen is entirely flexible in terms of atmospheric turbulence profile, negating any need to re-optimise the reconstructor in changing atmospheric conditions. Carmen was run in short bursts, interlaced with an optimised Learn and Apply reconstructor. We found the performance of Carmen to be approximately 5% lower than that of L&A.
机译:我们展示了通过人工神经网络层析重建器Carmen获得的实时结果。在2013年7月的两个晚上,它在威廉·赫歇尔望远镜的AO演示者金丝雀上进行了测试。卡门白天在Canary校准台上接受培训。这种培训制度可确保Carmen在大气湍流方面完全灵活,无需在不断变化的大气条件下重新优化重建器。卡门(Carmen)短暂运行,与优化的Learn and Apply重建器交错。我们发现Carmen的表现比L&A的表现低约5%。

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