IP Library Granted Patent US 9,686,513
Granted Patent B2
US 9,686,513 · App. 14/002,220 · Granted Jun 20, 2017

Forest fire video monitoring system and method

Inventors: Ivan Sergeevich Shishalov (Nizhny Novgorod, RU); Oleg Andreevich Gromazin (Nizhny Novgorod, RU); Yaroslav Sergeevich Solovyev (Nizhny Novgorod, RU); Aleksandr Vladimirovich Romanenko (Nizhny Novgorod, RU); Ivan Vasilievich Esin (Nizhny Novgorod, RU)
Assignee: DISICON
H04N7/18G08B17/005G08B17/125G01C17/34
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Quick Facts
Patent No.
US 9,686,513
App. No.
14/002,220
Granted
Jun 20, 2017
Kind
B2
Abstract

The invention relates to the forest video monitoring. A method and system are provided for automatically binding a video camera to the absolute coordinate system and determining changes in the video camera binding. In one aspect, the method comprises the steps of: in each of at least two predetermined time moments, aiming the video camera at an object a position of which in the absolute coordinate system centered in a point in which the video camera resides is known at said moment, and determining an orientation of the video camera in a native coordinate system of the video camera; and, based on the determined orientations of the video camera and positions of the object, calculating a rotation of the native coordinate system of the video camera in the absolute coordinate system. The calculated rotation of the video camera's native coordinate system is used to recalculate coordinates of an observed object from the video camera's native coordinate system into the absolute coordinate system. The technical result relates to the improved accuracy of locating the observed object.

Claims (34)

1. A forest fire video monitoring system comprising:

at least one remotely controlled video monitoring point which includes a high-rise construction and a transmission-side equipment residing on the high-rise construction, the transmission-side equipment comprising: a video camera on a rotating device; and a camera control unit configured to determine a current spatial orientation of the video camera in a native coordinate system of the video camera;

at least one computerized operator workstation for operating said video monitoring point; and

a computer-implemented module configured:

in each of at least two predetermined time moments, to obtain an orientation of the video camera aimed at a known astronomical object, said orientation determined by the camera control unit in the native coordinate system of the video camera, and to determine, based on a predetermined location of the video monitoring point and said at least two predetermined time moments, a position of the astronomical object in an absolute coordinate system centered in a point in which the video camera resides, and

to calculate, based on the determined orientations of the video camera and positions of the astronomical object, a rotation of the native coordinate system of the video camera in the absolute coordinate system.

2. The system of claim 1 , wherein the transmission-side equipment of said video monitoring point further comprises a communication device, wherein the system further comprises a server, and wherein the video monitoring point, the server, and the operator workstation are communicatively connected to each other.

3. The system of claim 2 , wherein the video camera of the transmission-side equipment of said video monitoring point is equipped with a zoom.

4. The system of claim 3 , wherein the video camera is aimed at the astronomical object by manually matching the center of an image obtained from the video camera with the center of the astronomical object.

5. The system of claim 3 , further comprising a computer-implemented intelligent subsystem configured, based on computer vision technologies, to aim the video camera at the astronomical object by automatically detecting the astronomical object based on analysis of an image obtained from a video camera, and automatically matching the center of the image obtained from the video camera with the center of the astronomical object.

6. The system of claim 4 , wherein, when aiming the video camera at the astronomical object, the zoom is used to zoom in the astronomical object to the maximum possible extent.

7. The system of claim 5 , wherein, when aiming the video camera at the astronomical object, the zoom is used to zoom in the astronomical object to the maximum possible extent.

8. The system of claim 2 , wherein said computer-implemented module resides at the server, and/or said operator workstation, and/or the transmission-side equipment of said video monitoring point.

9. The system of claim 1 , wherein the astronomical object is Sun.

10. The system of claim 1 , wherein the native coordinate system of the video camera is defined by a manufacturer of the video camera.

11. The system of claim 1 , wherein the location of said video monitoring point is defined by its geographical coordinates, and the position of the astronomical object is defined by its azimuth and angular altitude above the horizon.

12. The system of claim 1 , wherein the calculated rotation of the native coordinate system of the video camera is used to recalculate coordinates of an observed object from the native coordinate system of the video camera into the absolute coordinate system.

13. In a forest fire video monitoring system comprising at least one remotely controlled video monitoring point comprising: a video camera on a rotating device residing on a high-rise construction; and a camera control unit configured to determine a current spatial orientation of the video camera in a native coordinate system of the video camera, a method for automatically binding the native coordinate system of the video camera to an absolute coordinate system, the method comprising the steps of:

in each of at least two predetermined time moments

aiming the video camera at a known astronomical object, and determining an orientation of the video camera in the native coordinate system of the video camera, and

determining, based on a predetermined location of the video monitoring point and said at least two predetermined time moments, a position of the astronomical object in the absolute coordinate system centered in a point in which the video camera resides; and

calculating, based on the determined orientations of the video camera and positions of the astronomical object, a rotation of the native coordinate system of the video camera in the absolute coordinate system.

14. The method of claim 13 , further comprising, based on the calculated rotation of the native coordinate system of the video camera, recalculating coordinates of an observed object from the native coordinate system of the video camera into the absolute coordinate system.

15. The method of claim 13 , wherein the video camera is aimed at the astronomical object by manually matching the center of an image obtained from the video camera with the center of the astronomical object.

16. The method of claim 13 , wherein the video camera is aimed at the astronomical object by automatically detecting the astronomical object based on analysis of an image obtained from the video camera and automatically matching the center of the image obtained from the video camera with the center of the astronomical object, based on computer vision technologies.

17. A forest fire video monitoring system comprising:

at least one remotely controlled video monitoring point which includes a high-rise construction and a transmission-side equipment residing on the high-rise construction, the transmission-side equipment comprising: a video camera on a rotating device; and a camera control unit configured to determine a current spatial orientation of the video camera in a native coordinate system of the video camera;

at least one computerized operator workstation for operating said video monitoring point; and

a computer-implemented module configured:

in each of at least two predetermined time moments, to obtain an orientation of the video camera in the native coordinate system of the video camera, wherein the orientation is determined by the camera control unit when the video camera is aimed at a known astronomical object, wherein a position of the astronomical object in an absolute coordinate system centered in a point in which the video camera resides is known at said at least two predetermined time moments,

to calculate, based on the determined orientations of the video camera and positions of the astronomical object, a rotation of the native coordinate system of the video camera in the absolute coordinate system.

18. In a forest fire video monitoring system comprising at least one remotely controlled video monitoring point comprising: a video camera with a rotating device residing on a high-rise construction; and a camera control unit configured to determine a current spatial orientation of the video camera in a native coordinate system of the video camera, a method for automatically binding the native coordinate system of the video camera to an absolute coordinate system, the method comprising the steps of:

in each of at least two predetermined time moments, aiming the video camera at an object a position of which in the absolute coordinate system centered at a point in which the video camera resides is known at said at least two predetermined time moments, and determining an orientation of the video camera in the native coordinate system of the video camera; and

based on the determined orientations of the video camera and positions of the object, calculating a rotation of the native coordinate system of the video camera in the absolute coordinate system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 4, 2013
From: SHISHALOV, IVAN SERGEEVICH; GROMAZIN, OLEG ANDREEVICH; SOLOVYEV, YAROSLAV SERGEEVICH; ROMANENKO, ALEKSANDR VLADIMIROVICH; ESIN, IVAN VASILIEVICH
To: DISICON
Reel/Frame 031536/0519 →
Priority Claims (1)
RU 2011108066 · Mar 2, 2011 · national
Continuity (1)
Related Publication 20140049640A1 · Feb 20, 2014