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1 mporal iris in both eyes using AS-OCT (3-mum axial resolution).
2  3D imaging of biological samples with 20-nm axial resolution.
3 n optical microscopy because it improves the axial resolution.
4 wavelength and 100000 A-lines/sec with 6 mum axial resolution.
5 les strut-level assessment due to its higher axial resolution.
6 ll as phototoxic effects and provides a true axial resolution.
7 ronal structures and a threefold increase in axial resolution.
8 0 time points with 120-nm lateral and 360-nm axial resolution.
9 lar structures at <50 nm lateral and <100 nm axial resolution.
10 ment in contrast and apparent restoration of axial resolution.
11 al collimation added to the septa to improve axial resolution.
12 e and 2.5-microm (transverse) and 20-microm (axial) resolution.
13 y Tomography (AT), with its native 50-100 nm axial resolution achieved by physical sectioning of resi
14 om 35 women aged 29-81 years with 3.5-microm axial resolution and 6-microm transverse resolution at 1
15 nation for reduced photo-damage and superior axial resolution and contrast.
16 grees field of view with approximately 7-mum axial resolution and up to 70 frames/s (512 A-scans/fram
17 d operating at 57,000 A-lines/s with 5.9 mum axial resolution and was used to collect 3D images with
18                 However, the former degrades axial resolution and/or optical sectioning, while the la
19 olution Fourier-domain corneal OCT (5 mum of axial resolution) and corneal topography were performed
20 of the gut wall at 30 mum (lateral) x 7 mum (axial) resolution as it travels through the digestive tr
21                  Tomographic imaging with an axial resolution better than 18 nm is demonstrated for l
22 biological specimens with low light dose and axial resolution far beyond the diffraction barrier.
23                                          The axial resolution for 2D (3D) was 4.8 mm FWHM (5.8 mm) an
24                                          The axial resolution for IFBP and 3DRP was unaffected by thi
25                              The lateral and axial resolutions for two-photon imaging are 0.8 and 10
26 ion of 43 normal subjects with a 3.5-microm, axial-resolution, high-speed, UHR OCT prototype instrume
27 tion imaging was performed with a 2.8-microm axial-resolution, high-speed, UHR OCT research prototype
28  transaxial resolution improved 52%, and the axial resolution improved 39%.
29 sampling as a method for computed tomography axial resolution improvement.
30  a strong regularization, the transaxial and axial resolution improvements were reduced to 6% and 5%,
31 ch achieves ultrahigh-resolution (1.7 microm axial resolution in tissue and 6 microm transverse resol
32                                              Axial resolution is consistent with the parallel-beam re
33                                              Axial resolution is maximized by concurrently applied to
34       In case of typical clinical system the axial resolution is much lower than the planar one.
35 n human brain are problematic because of the axial resolution limit of light microscopy and the diffi
36                                              Axial resolution measured 13 +/- 3 microm with OCT and 9
37 -sector angular resolution and submillimeter axial resolution, nanomolar sensitivity to NIR fluorochr
38                           The transverse and axial resolution near the center is 4.8 mm.
39                           The transverse and axial resolutions near the center are 4.0 and 5.0 mm, re
40                           The transverse and axial resolutions near the center are 5.5 and 5.6 mm, re
41  10 microm with up to 20 nm planar and 80 nm axial resolution, now enabling DNA-based super-resolutio
42                     The system enabled 4-mum axial resolution (OCT and OCM) with 14-mum (OCT) and 2-m
43 z, with a lateral resolution of 3 mum and an axial resolution of 1 mum within the microfluidic channe
44 g with a lateral resolution of 145 nm and an axial resolution of 350 nm at acquisition speeds up to 1
45                    An Fd-OCT instrument with axial resolution of 4 to 4.5 microm and transverse resol
46  confocal Raman spectroscopy system, with an axial resolution of 50 microns, was used to assess nonin
47 a lateral resolution of 36 mumx52 mum and an axial resolution of 657 mum.
48  microscopy (SIM) can double the lateral and axial resolution of a wide-field fluorescence microscope
49                               The effects on axial resolution of adding supplemental collimation to t
50 n be measured as a function of depth with an axial resolution of approximately 10 microm.
51 ents using 4Pi microscopy, which features an axial resolution of approximately 100 nm.
52 surface membrane of red blood cells, with an axial resolution of approximately 90 nm.
53                                          The axial resolution of coherence tomography is thus improve
54                               The 20-microns axial resolution of OCT allowed small structural details
55 al wavelengths, which are commonly used, the axial resolution of OCT is limited to about 1 mum, even
56                                 Although the axial resolution of OCT system, which is a function of t
57                                          The axial resolution of our TPF system was 6 mum, and a line
58 hickness data, with errors comparable to the axial resolution of the SD-OCT instrument.
59             The calibrated imaging depth and axial resolution of the system were 3.1 mm and 2.8 mum (
60                                          The axial resolution of this technology is determined by the
61               We achieve unprecedented 50-nm axial resolution over a range of 800 nm above the covers
62 al resolution remained under 2.0 mm, and the axial resolution remained under 2.5-mm FWHM within the c
63 asured lateral resolution 0.5-1.0 microm and axial resolution (section thickness) 3-5 microm at near-
64 te the topography of cells with a nanometric axial resolution, typically 10-20 nm.
65  (5.2-mm radial, 3.1-mm tangential), and the axial resolution was 3.5 mm (4.0 mm).
66 idth at half maximum) at the center, and the axial resolution was 5.7 mm.
67                                     The best axial resolution was demonstrated to be better than 10 n
68       A Fourier-domain OCT system with 5-mum axial resolution was used.
69 ,000-Hz Fourier-domain OCT system with 5-mum axial resolution was used.
70 btained <10-nm lateral resolution and <20-nm axial resolution when imaging biological specimens.
71 e distribution along the magnetic field, the axial resolution worsens and shine-through artifacts may

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