IP Library Granted Patent US 11,836,588
Granted Patent B2
US 11,836,588 · App. 18/079,561 · Granted Dec 5, 2023

Image generating device using lighting control

Inventors: Su Yoel Park (Seoul, KR); Byung Dai Hyun (Anyang-si, KR); Byoung Joon Jang (Seongnam-si, KR); Jae Eun Jo (Yongin-si, KR); Bo Gun Park (Seongnam-si, KR); Sang Won Lee (Anyang-si, KR)
Assignee: XPERIX INC.
G06N20/00G06F3/0484G06Q30/0201H04N23/56
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Quick Facts
Patent No.
US 11,836,588
App. No.
18/079,561
Granted
Dec 5, 2023
Kind
B2
Abstract

An image generating device includes a support unit configured to support an object, an irradiation unit configured to irradiate the object disposed on the support unit with light, a light receiving unit configured to receive light returning from the object disposed on the support unit, and a control unit configured to generate a light irradiation signal for controlling the irradiation unit and a light-receiving region driving signal for controlling the light receiving unit, wherein the irradiation unit includes a first irradiation unit for irradiating a first region of the object with light and a second irradiation unit for irradiating a second region of the object with light, the light receiving unit includes a first light-receiving region and a second light-receiving region, the first light-receiving region and the second light-receiving region each include a plurality of pixels and are disposed at different positions on the light receiving unit.

Claims (35)

1. An image generating device comprising:

an irradiation unit configured to irradiate an object;

a light receiving unit configured to receive light returning from the object; and

a control unit configured to generate a light irradiation signal for controlling the irradiation unit and a light-receiving region driving signal for controlling the light receiving unit,

wherein the irradiation unit includes a first irradiation unit for irradiating a first region of the object with light and a second irradiation unit for irradiating a second region of the object with light,

wherein the light irradiation signal includes a first light irradiation signal for controlling the first irradiation unit and a second light irradiation signal for controlling the second irradiation unit,

wherein the control unit is configured to:

control the first light irradiation signal and the second light irradiation signal so as to prevent a light saturation phenomenon from occurring in the light receiving unit caused by the driving of the irradiation unit,

sequentially perform a first operation of inputting the first light irradiation signal to the first irradiation unit and a second operation of inputting the second irradiation signal to the second irradiation unit,

switch from the first operation to the second operation at a predetermined time point,

control the light-receiving region driving signal so that receiving of the light intensity value begins at a first time point by the light receiving unit and the receiving of the light intensity value stops at a second time point, and

generate an image based on the light received by the light receiving unit between the first time point and the second time point,

wherein the first irradiation unit gradually decreases an intensity of the light irradiated to the object; and wherein the second irradiation unit gradually increases an intensity of the light irradiated to the object.

2. The image generating device of claim 1 , wherein the predetermined time point is earlier than the time point at which a light saturated region occurs in at least a part of the object.

3. The image generating device of claim 1 , wherein the predetermined time point is earlier than the time point at which the light receiving unit begins to obtain the light irradiated to a light saturated region generated in at least a part of the object.

4. The image generating device of claim 3 , wherein the first irradiation unit irradiates the light to the light saturated region generated in at least a part of the object.

5. The image generating device of claim 1 , wherein the predetermined time point is determined based on a position of a light saturated region generated in at least a part of the object.

6. The image generating device of claim 1 , wherein the predetermined time point is determined based on a position of at least one of the first irradiation unit and the second irradiation unit.

7. The image generating device of claim 1 , wherein the position of the first irradiation unit and the second irradiation unit is determined based on the position of the light receiving unit in the image generating device.

8. The image generating device of claim 1 , wherein the second light irradiation signal is input to the second irradiation unit after the first light irradiation signal is input to the first irradiation unit.

9. The image generating device of claim 1 , wherein the first irradiation unit linearly decreases the intensity of the irradiated light; and wherein the second irradiation unit linearly increases the intensity of the irradiated light.

10. The image generating device of claim 1 , wherein the first irradiation unit exponentially decreases the intensity of the irradiated light; and wherein the second irradiation unit exponentially increases the intensity of the irradiated light.

11. An image generation method comprising:

irradiating, by an irradiation unit, an object;

receiving, by a light receiving unit, light returning from the object; and

generating, by a control unit, a light irradiation signal for controlling the irradiation unit and a light-receiving region driving signal for controlling the light receiving unit,

wherein the irradiation unit includes a first irradiation unit for irradiating a first region of the object with light and a second irradiation unit for irradiating a second region of the object with light,

wherein the light irradiation signal includes a first light irradiation signal for controlling the first irradiation unit and a second light irradiation signal for controlling the second irradiation unit,

wherein the control unit is configured to:

control the first light irradiation signal and the second light irradiation signal so as to prevent a light saturation phenomenon from occurring in the light receiving unit caused by the driving of the irradiation unit,

sequentially perform a first operation of inputting the first light irradiation signal to the first irradiation unit and a second operation of inputting the second irradiation signal to the second irradiation unit, and

switch from the first operation to the second operation at a predetermined time point,

control the light-receiving region driving signal so that receiving of the light intensity value begins at a first time point by the light receiving unit and the receiving of the light intensity value stops at a second time point, and

generate an image based on the light received by the light receiving unit between the first time point and the second time point,

wherein the first irradiation unit gradually decreases an intensity of the light irradiated to the object; and wherein the second irradiation unit gradually increases an intensity of the light irradiated to the object.

Assignments (2)
CHANGE OF NAME Recorded Oct 10, 2023
From: SUPREMA ID INC.
To: XPERIX INC.
Reel/Frame 065208/0786 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 15, 2022
From: PARK, SU YOEL; HYUN, BYUNG DAI; JANG, BYOUNG JOON; JO, JAE EUN; PARK, BO GUN; LEE, SANG WON
To: SUPREMA ID INC.
Reel/Frame 062109/0490 →
Priority Claims (1)
KR 10-2020-0100698 · Aug 11, 2020 · national
Continuity (2)
Continuation 17393023 · Aug 3, 2021
Related Publication 20230110934A1 · Apr 13, 2023