Learned SPARCOM: unfolded deep super-resolution microscopy

被引:33
作者
Dardikman-Yoffe, Gili [1 ]
Eldar, Yonina C. [1 ]
机构
[1] Weizmann Inst Sci, Fac Math & Comp Sci, Rehovot, Israel
基金
欧盟地平线“2020”;
关键词
THRESHOLDING ALGORITHM; INVERSE PROBLEMS; NEURAL-NETWORK; RECONSTRUCTION;
D O I
10.1364/OE.401925
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The use of photo-activated fluorescent molecules to create long sequences of low emitter-density diffraction-limited images enables high-precision emitter localization, but at the cost of low temporal resolution. We suggest combining SPARCOM, a recent high-performing classical method, with model-based deep learning, using the algorithm unfolding approach, to design a compact neural network incorporating domain knowledge. Our results show that we can obtain super-resolution imaging from a small number of high emitter density frames without knowledge of the optical system and across different test sets using the proposed learned SPARCOM (LSPARCOM) network. We believe LSPARCOM can pave the way to interpretable, efficient live-cell imaging in many settings, and find broad use in single molecule localization microscopy of biological structures. (C) 2020 Optical Society of America under the terms of the OSA Open Access Publishing Agreement
引用
收藏
页码:27736 / 27763
页数:28
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