IP Library Granted Patent US 11,280,989
Granted Patent B2
US 11,280,989 · App. 16/221,575 · Granted Mar 22, 2022

Disk scanning microscope system and computer-readable recording medium

Inventors: Shinichi Hayashi (Tokyo, JP); Hirofumi Takatsuka (Tokyo, JP)
Assignee: OLYMPUS CORPORATION
G02B21/0036G02B21/0032G02B21/0044G02B21/0052G02B21/0072G02B21/0076G02B21/361G02B21/365G02B27/58
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Quick Facts
Patent No.
US 11,280,989
App. No.
16/221,575
Granted
Mar 22, 2022
Kind
B2
Abstract

A system includes an imaging optical system that forms an optical image of an observed object; a control apparatus that switches between a superresolution observation mode and a normal observation mode; and a rotatable disk located at a position conjugate to a front focal position of the imaging optical system and having a plurality of apertures. The imaging optical system changes a projection magnification of an intermediate image that is a point image of a portion of the observed object that is formed on the disk. The control apparatus sets, during the superresolution observation mode, the projection magnification in a manner such that the intermediate image becomes at least twice as large as the apertures and sets, during the normal observation mode, the projection magnification in a manner such that the projection magnification becomes lower than the projection magnification in the superresolution observation mode.

Claims (38)

1. A disk scanning microscope system comprising:

an imaging optical system that forms at least an optical image of an observed object by receiving light from the observed object;

a control apparatus that switches, based on an input from a user, between a superresolution observation mode for performing a superresolution observation and a normal observation mode for performing a normal observation, and that controls the imaging optical system according to a selected mode;

a rotatable disk located at a position conjugate to a front focal position of the imaging optical system and having a plurality of apertures formed in a surface of the disk, the surface of the disk serving as a light blocking section;

an image capturing apparatus that captures an image of the observed object, the image capturing apparatus being more distant from the observed object than the disk is and being located at a position conjugate to the front focal position of the imaging optical system; and

a light source unit that illuminates the observed object,

wherein:

the imaging optical system includes an intermediate scaling optical system that changes a projection magnification of an intermediate image that is a point image of a portion of the observed object that is formed on the disk,

the control apparatus sets, during the superresolution observation mode, the projection magnification of the intermediate image in a manner such that the intermediate image becomes at least twice as large as the apertures and sets, during the normal observation mode, the projection magnification of the intermediate image in a manner such that the projection magnification becomes lower than the projection magnification of the intermediate image in the superresolution observation mode,

during the superresolution observation mode, the control apparatus performs a process of highlighting frequency components within the image captured by the image capturing apparatus that exceeds a cutoff frequency of the imaging optical system, and

the control apparatus defines an intensity of illumination of the light source unit and an exposure time of the image capturing apparatus for each of the normal observation mode and the superresolution observation mode and sets the intensity of illumination of the light source unit and the exposure time of the image capturing apparatus to the defined exposure time and intensity of illumination in accordance with switching between the normal observation mode and the superresolution observation mode.

2. The disk scanning microscope system of claim 1 , wherein the control apparatus sets the projection magnification of the intermediate scaling optical system during the normal observation mode in a manner such that the intermediate image has a substantially same size as the apertures.

3. The disk scanning microscope system of claim 2 , wherein the intermediate scaling optical system switches between two or more optical systems each for forming an intermediate image on the disk at a different projection magnification.

4. The disk scanning microscope system of claim 2 , wherein the intermediate scaling optical system includes a zoom lens.

5. The disk scanning microscope system of claim 1 , wherein the intermediate scaling optical system switches between two or more optical systems each for forming an intermediate image on the disk at a different projection magnification.

6. The disk scanning microscope system of claim 1 , wherein the intermediate scaling optical system includes a zoom lens.

7. The disk scanning microscope system of claim 1 , wherein the control apparatus defines the intensity of illumination of the light source unit and the exposure time of the image capturing apparatus for each of the normal observation mode and the superresolution observation mode such that the image capturing apparatus captures images with a defined luminance value in both the normal observation mode and the superresolution observation mode.

8. A disk scanning microscope system comprising:

an imaging optical system that forms at least an optical image of an observed object by receiving light from the observed object;

a control apparatus that switches, based on an input from a user, between a superresolution observation mode for performing a superresolution observation and a normal observation mode for performing a normal observation, and that controls the imaging optical system according to a selected mode;

a rotatable disk located at a position conjugate to a front focal position of the imaging optical system and having a plurality of aperatures formed in a surface of the disk, the surface of the disk serving as a light blocking section;

an image capturing apparatus that captures an image of the observed object, the image capturing apparatus being more distant from the observed object than the disk is and being located at a position conjugate to the front focal position of the imaging optical system; and

a light source unit that illuminates the observed object,

wherein:

the imaging optical system includes an intermediate scaling optical system that changes a projection magnification of an intermediate image that is a point image of a portion of the observed object that is formed on the disk,

the control apparatus sets, during the superresolution observation mode, the projection magnification of the intermediate image in a manner such that the intermediate image becomes at least twice as large as the aperatures and sets, during the normal observation mode, the projection magnification of the intermediate image in a manner such that the projection magnification becomes lower than the projection magnification of the intermediate image in the superresolution observation mode,

the control apparatus sets the projection magnification of the intermediate scaling optical system during the normal observation mode in a manner such that the intermediate image has a substantially same size as the aperatures,

during the superresolution observation mode, the control apparatus performs a process of highlighting frequency components within the image captured by the image capturing apparatus that exceed a cutoff frequency of the imaging optical system, and

the control apparatus defines an intensity of illumination of the light source unit and an exposure time of the image capturing apparatus for each of the normal observation mode and the superresolution observation mode and sets the intensity of illumination of the light source unit and exposure time of the image capturing apparatus to the defined exposure time and intensity of illumination in accordance with switching between the normal observation mode and the superresolution observation mode.

9. The disk scanning microscope system of claim 8 , wherein the control apparatus defines the intensity of illumination of the light source unit and the exposure time of the image capturing apparatus for each of the normal observation mode and the superresolution observation mode such that the image capturing apparatus captures images with a defined luminance value in both the normal observation mode and the superresolution observation mode.

10. The disk scanning microscope system of claim 8 , wherein the intermediate scaling optical system switches between two or more optical systems each for forming an intermediate image on the disk at a different projection magnification.

11. The disk scanning microscope system of claim 8 , wherein the intermediate scaling optical system includes a zoom lens.

12. A non-transitory computer-readable recording medium having stored therein a program for causing a control apparatus to execute a process, the process comprising:

controlling an imaging optical system according to a selected mode from a superresolution observation mode for performing a superresolution observation and a normal observation mode for performing a normal observation, the imaging optical system switching, based on an input from a user, between the superresolution observation mode and the normal observation mode, the imaging optical system forming an optical image of an observed object by receiving light from the observed object, the imaging optical system including an intermediate scaling optical system that changes a projection magnification of an intermediate image that is a point image of a portion of the observed object that is formed on a rotatable disk, the disk being located at a position conjugate to a front focal position of the imaging optical system and having a plurality of apertures formed in a surface of the disk, the surface of the disk serving as a light blocking section;

setting, during the superresolution observation mode, the projection magnification of the intermediate image in a manner such that the intermediate image becomes at least twice as large as the apertures, and setting, during the normal observation mode, the projection magnification of the intermediate image in a manner such that the projection magnification becomes lower than the projection magnification of the intermediate image in the superresolution observation mode;

controlling an image capturing apparatus to capture an image of the observed object, the image capturing apparatus being more distant from the observed object than the disk is and being located at a position conjugate to the front focal position of the imaging optical system, and the observed object being illuminated by a light source unit;

during the superresolution mode, performing a process of highlighting frequency components within the image captured by the image capturing apparatus that exceed a cutoff frequency of the imaging optical system; and

defining an intensity of illumination of the light source unit and an exposure time of the image capturing apparatus for each of the normal observation mode and the superresolution observation mode and setting the intensity of illumination of the light source unit and the exposure time of the image capturing apparatus to the defined exposure time and intensity of illumination in accordance with switching between the normal observation mode and the superresolution observation mode.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 7, 2022
From: OLYMPUS CORPORATION
To: EVIDENT CORPORATION
Reel/Frame 061008/0214 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 16, 2018
From: HAYASHI, SHINICHI; TAKATSUKA, HIROFUMI
To: OLYMPUS CORPORATION
Reel/Frame 047789/0477 →
Priority Claims (1)
JP JP2017-243442 · Dec 20, 2017 · national
Continuity (1)
Related Publication 20190187447A1 · Jun 20, 2019
Cited By (1)
US 12,699,260