Enhancing the performance of the light field microscope using wavefront coding

被引:128
作者
Cohen, Noy [1 ]
Yang, Samuel
Andalman, Aaron
Broxton, Michael
Grosenick, Logan
Deisseroth, Karl
Horowitz, Mark
Levoy, Marc
机构
[1] Stanford Univ, Dept Elect Engn, Stanford, CA 94305 USA
关键词
INCOHERENT IMAGING-SYSTEM; PHASE MASK; DEPTH; EXTEND;
D O I
10.1364/OE.22.024817
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
Light field microscopy has been proposed as a new high-speed volumetric computational imaging method that enables reconstruction of 3-D volumes from captured projections of the 4-D light field. Recently, a detailed physical optics model of the light field microscope has been derived, which led to the development of a deconvolution algorithm that reconstructs 3-D volumes with high spatial resolution. However, the spatial resolution of the reconstructions has been shown to be non-uniform across depth, with some z planes showing high resolution and others, particularly at the center of the imaged volume, showing very low resolution. In this paper, we enhance the performance of the light field microscope using wavefront coding techniques. By including phase masks in the optical path of the microscope we are able to address this non-uniform resolution limitation. We have also found that superior control over the performance of the light field microscope can be achieved by using two phase masks rather than one, placed at the objective's back focal plane and at the microscope's native image plane. We present an extended optical model for our wavefront coded light field microscope and develop a performance metric based on Fisher information, which we use to choose adequate phase masks parameters. We validate our approach using both simulated data and experimental resolution measurements of a USAF 1951 resolution target; and demonstrate the utility for biological applications with in vivo volumetric calcium imaging of larval zebrafish brain. (C) 2014 Optical Society of America
引用
收藏
页码:24817 / 24839
页数:23
相关论文
共 25 条
[1]   A new approach to extended focus for high-speed, high-resolution biological microscopy [J].
Abrahamsson, Sara ;
Usawa, Satoru ;
Gustafsson, Mats .
THREE-DIMENSIONAL AND MULTIDIMENSIONAL MICROSCOPY: IMAGE ACQUISITION AND PROCESSING XIII, 2006, 6090
[2]  
Arnison MR, 2003, SPRINGER SERIES OPTI, V87, P143
[3]  
Born M., 1999, Principles of optics, Vseventh
[4]   Wave optics theory and 3-D deconvolution for the light field microscope [J].
Broxton, Michael ;
Grosenick, Logan ;
Yang, Samuel ;
Cohen, Noy ;
Andalman, Aaron ;
Deisseroth, Karl ;
Levoy, Marc .
OPTICS EXPRESS, 2013, 21 (21) :25418-25439
[5]   Integral imaging with large depth of field using an asymmetric phase mask [J].
Castro, Albertina ;
Frauel, Yann ;
Javidi, Bahram .
OPTICS EXPRESS, 2007, 15 (16) :10266-10273
[6]   Investigation of the SQUBIC phase mask design for depth-invariant widefield microscopy point-spread function engineering [J].
Doblas, Ana ;
King, Sharon V. ;
Patwary, Nurmohammed ;
Saavedra, Genaro ;
Martinez-Corral, Manuel ;
Preza, Chrysanthe .
THREE-DIMENSIONAL AND MULTIDIMENSIONAL MICROSCOPY: IMAGE ACQUISITION AND PROCESSING XXI, 2014, 8949
[7]   EXTENDED DEPTH OF FIELD THROUGH WAVE-FRONT CODING [J].
DOWSKI, ER ;
CATHEY, WT .
APPLIED OPTICS, 1995, 34 (11) :1859-1866
[8]   A Split-Sensor Light Field Camera for Extended Depth of Field and Superresolution [J].
Favaro, Paolo .
OPTICS, PHOTONICS, AND DIGITAL TECHNOLOGIES FOR MULTIMEDIA APPLICATIONS II, 2012, 8436
[9]  
Goodman J., 1996, Opt. Eng
[10]   Depth from diffracted rotation [J].
Greengard, A ;
Schechner, YY ;
Piestun, R .
OPTICS LETTERS, 2006, 31 (02) :181-183