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Deep Reinforcement Learning for Data-Driven Adaptive Scanning in Ptychography

29 March 2022
M. Schloz
Johannes Müller
T. Pekin
W. V. D. Broek
C. Koch
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Abstract

We present a method that lowers the dose required for a ptychographic reconstruction by adaptively scanning the specimen, thereby providing the required spatial information redundancy in the regions of highest importance. The proposed method is built upon a deep learning model that is trained by reinforcement learning (RL), using prior knowledge of the specimen structure from training data sets. We show that equivalent low-dose experiments using adaptive scanning outperform conventional ptychography experiments in terms of reconstruction resolution.

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