CN111083360A - Camera monitoring equipment matching control method based on pixel coordinates - Google Patents

Camera monitoring equipment matching control method based on pixel coordinates Download PDF

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CN111083360A
CN111083360A CN201911250263.7A CN201911250263A CN111083360A CN 111083360 A CN111083360 A CN 111083360A CN 201911250263 A CN201911250263 A CN 201911250263A CN 111083360 A CN111083360 A CN 111083360A
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camera
target
gear
value
focal length
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CN111083360B (en
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许乙付
罗喜伶
罗亨
曾杰
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Hangzhou Innovation Research Institute of Beihang University
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules
    • H04N23/67Focus control based on electronic image sensor signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules
    • H04N23/64Computer-aided capture of images, e.g. transfer from script file into camera, check of taken image quality, advice or proposal for image composition or decision on when to take image
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N23/00Cameras or camera modules comprising electronic image sensors; Control thereof
    • H04N23/60Control of cameras or camera modules
    • H04N23/695Control of camera direction for changing a field of view, e.g. pan, tilt or based on tracking of objects

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  • Multimedia (AREA)
  • Signal Processing (AREA)
  • Studio Devices (AREA)
  • Closed-Circuit Television Systems (AREA)

Abstract

The invention discloses a matching control method of camera monitoring equipment based on pixel coordinates, and relates to the field of camera monitoring. Aiming at the defect of fuzzy one-way control of the camera monitoring equipment in the existing camera tracking system, the invention improves the native PELCO control protocol, and realizes quantitative stepped control and periodic feedback of the zoom value of the zoom lens and the view angle value of the camera; constructing a mathematical geometric model for calculating and correcting the target ratio, and further obtaining a calculation formula of a set value of a visual angle of the camera, so that the target pixel size ratio reaches the set value; and (3) constructing a mathematical geometric model for calculating and correcting the target offset, and further obtaining a calculation formula of the rotation value of the rotating holder, so that the target returns to the center of the picture. Through effect experiments, the invention can realize accurate and stable control of the camera monitoring equipment, so that the size of the visual angle of the equipment is self-matched with the size of a target, and the direction of the visual angle is self-matched with the movement amount of the target.

Description

Camera monitoring equipment matching control method based on pixel coordinates
Technical Field
The invention relates to a matching control method of a camera monitoring device based on pixel coordinates, in particular to a method capable of enabling a target marked by the pixel coordinates to accurately return to the center of a picture and reach a set ratio.
Background
At present, a camera shooting tracking system usually follows the flow of image acquisition, target identification and equipment control, the target identification result is information such as target category and pixel coordinates, and the equipment control performs matching control on a zoom lens, a rotating holder and the like based on the information. When matching control is carried out, a control algorithm is needed to calculate a zoom value of the zoom lens and a rotation value of the rotating holder to be set according to the current zoom value of the zoom lens, the rotation value of the rotating holder and the pixel coordinate, wherein the former enables the proportion of the size of a target pixel to reach a set proportion, and the latter enables the target to return to the center of a picture. The method represented by a patent "an intrusion alert photoelectric monitoring system and method" (application number: 201910133621.X) usually indicates the process of acquisition-identification-control ", but lacks deep analysis of control steps, and especially lacks improved optimization of construction of a control geometric model and accurate control of a camera monitoring device.
In the aspect of camera monitoring equipment control, the most common protocol for controlling a zoom lens and a rotating pan-tilt is mainly PELCO (Pelco-Gogh) protocol, which comprises two types of PELCO-D and PELCO-P, but only provides a progress bar type fuzzy speed control instruction, has no feedback, and cannot meet the requirements of accurate and stable control. The technical threshold of the rotating tripod head is relatively low, and accurate stepping amount control can be realized by adopting a stepping motor for driving, so that the PELCO protocol only needs to be improved, and related contents are disclosed in a serial port communication protocol based on ball machine control (application number: 201610555808.5). The zoom lens is particularly referred to as a motorized zoom lens in engineering application, has higher technical threshold, and particularly is a long-focus motorized zoom lens which is often imported only, mainly takes the Japanese brand, and basically only provides a native PELCO protocol, so that the requirement of precise matching control cannot be met in the linkage with other systems.
Disclosure of Invention
In order to overcome the defect of fuzzy one-way control of the image pickup monitoring equipment in the existing image pickup tracking system, the invention provides the image pickup monitoring equipment matching control method based on the pixel coordinates.
The invention relates to a camera monitoring equipment matching control method based on pixel coordinates, which comprises the following steps:
s01: a camera acquires a collected image; calibrating a target and acquiring a pixel coordinate of the target;
s02: sequentially executing steps S03 and S04, or executing S04 and then executing S03; completing the matching control of the camera shooting monitoring equipment based on the pixel coordinates;
the S03 is as follows: according to the current value P of the target ratio1Current value of horizontal angle of view theta of camera1Setting the target ratio to a set value P2Converting into a set value theta of horizontal visual angle of the camera2
Figure RE-GDA0002404295820000021
According to the obtained horizontal visual angle set value theta of the camera2Controlling the zoom lens of the camera to enable the proportion of the target in the picture to reach a set proportion;
the S04 is as follows: obtaining a target angle offset according to the central coordinate of the target and the central coordinate of the collected image; and adjusting the camera according to the target angle offset to return the target to the center of the picture.
As a preferred aspect of the present invention, the method for controlling a zoom lens of a camera specifically comprises:
the camera comprises a camera shooting tracking host, an external hardware module and a zoom lens;
uniformly dividing the focal length of the zoom lens into N gears, and recording delta t as the time required by adjacent gear change; then
Figure RE-GDA0002404295820000022
T is the moving time of the focal length of the motorized zoom lens from the maximum value to the minimum value or from the minimum value to the maximum value, and a lens gear-visual angle comparison table is established;
according to the lens gear-visual angle comparison table, the camera shooting tracking host machine sets the horizontal visual angle of the camera to be a set value theta2Converting into a gear setting gear n 2; external hard camera tracking hostThe external hardware module compares the current gear to generate a focal length moving instruction to control the zoom lens, and periodically feeds back the current gear to the camera tracking host.
As a preferred scheme of the invention, the external hardware module receives a command from the camera tracking host, and updates the set gear n2 after verification;
every delta t time, the external hardware module judges the following steps: judging the current focal length control direction Dir, wherein a positive number indicates increasing, a negative number indicates decreasing, and 0 indicates stopping; calculating a gear potential difference delta n which is n2-n1, wherein the positive delta n represents that the focal length needs to be increased, the negative delta n represents that the focal length needs to be decreased, and 0 represents that the focal length value is just right;
and changing the current focal length control direction according to the values corresponding to the delta n and the Dir, and simultaneously returning the current gear value to the camera monitoring host.
The invention improves the native PELCO control protocol, realizes the quantitative stepping control and the periodic feedback of the zoom value of the zoom lens and the visual angle value of the camera; constructing a mathematical geometric model for calculating and correcting the target ratio, and further obtaining a calculation formula of a set value of a visual angle of the camera, so that the target pixel size ratio reaches the set value; and (3) constructing a mathematical geometric model for calculating and correcting the target offset, and further obtaining a calculation formula of the rotation value of the rotating holder, so that the target returns to the center of the picture. Through effect experiments, the invention can realize accurate and stable control of the camera monitoring equipment, so that the size of the visual angle of the equipment is self-matched with the size of a target, and the direction of the visual angle is self-matched with the movement amount of the target.
The method not only can realize the accurate control and feedback of the visual angle and orientation of the camera monitoring equipment, but also can realize the accurate matching calculation with the pixel coordinate, so that the target can return to the center of the picture and reach the set proportion.
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FIG. 1 is a schematic diagram of the connection of external hardware modules according to the present invention;
FIG. 2 is a logic diagram of the external hardware module according to the present invention;
FIG. 3 is a diagram of a camera imaging geometry model;
fig. 4 is a diagram of the effect of the present invention.
Detailed Description
The invention will be further illustrated and described with reference to specific embodiments. The technical features of the embodiments of the present invention can be combined correspondingly without mutual conflict.
Zoom lens control protocol improvement
In the prior art, the precise focal length control and feedback of the zoom lens cannot be realized through the native control protocol PELCO of the zoom lens, so that the protocol is improved and gear control is added in the embodiment.
The gear control method divides the focal length of the zoom lens into N gears approximately and uniformly, the minimum value is marked as 1 gear, the minimum value is marked as 2 gears after the zoom lens moves towards the increasing direction for delta t, and the rest is done in the same way until the maximum value is N gears. And delta T is the time required by adjacent gear shifting, and the time from the maximum value to the minimum value of the focal length of the motorized zoom lens (and conversely, the time is still consistent) is recorded as T, then
Figure RE-GDA0002404295820000031
And establishing a lens gear-visual angle comparison table.
The external hardware module is schematically connected as shown in fig. 1, and is located between the camera tracking host and the zoom lens. The camera shooting tracking host sends a gear set value to the external hardware module through a user-defined protocol, the external hardware module generates a focal length moving instruction to control the zoom lens by comparing with the current gear, and the current gear is periodically fed back to the camera shooting tracking host.
Based on the PELCO-D protocol, a gear transmission/feedback command format is designed, as shown in Table 1, wherein byte 1 is a synchronization byte, byte 2 is a device number, byte 4 is information category information, byte 6 is gear information, and byte 7 is a check value.
TABLE 1 Camera tracking host gear position transmission/feedback command format
Command Byte1 Byte2 Byte3 Byte4 Byte5 Byte6 Byte7
Gear setting 0xFF Device numbering 0x00 0x4f 0x00 Gear position Check Sum
Gear pass-back 0xFF Device numbering 0x00 0x5d 0x00 Gear position Check Sum
The internal logic of the external hardware module is shown in fig. 2, and the main part is serial port interrupt and timer interrupt. And the serial port interrupt receives a command from the camera tracking host, and the set gear n2 is updated after verification. Triggering once every delta t time by timed interruption, judging the current focal length control direction Dir after triggering, wherein a positive number indicates increasing, a negative number indicates decreasing, and 0 indicates stopping; if the value is not 0, the action is represented to have been executed for a delta t period, and corresponding addition and subtraction operations need to be carried out on the current state n 1; calculating a gear potential difference delta n which is n2-n1, wherein the positive delta n represents that the focal length needs to be increased, the negative delta n represents that the focal length needs to be decreased, and 0 represents that the focal length value is just right; the comprehensive judgment of the Δ n and the Dir has 9 cases, and the classified cases have 5 cases:
a) delta n is greater than 0, Dir is less than or equal to 0, the current focal length control direction is inconsistent with the gear change requirement, the gear requirement is increased, and an 'increase' instruction is sent;
b) delta n is less than 0, Dir is more than or equal to 0, the current focal length control direction is inconsistent with the gear change requirement, the gear requirement is reduced, and a reduction command is sent;
c) Δ n is 0, Dir! When the current gear is consistent with the set gear, and the focal length control direction is not stopped, a 'stop' instruction is sent;
d) delta n x Dir is more than 0, the current focal length control direction is consistent with the gear change requirement, the current change is kept, and no command is sent;
e) when Δ n is Dir 0, the focus control is finished and no command is sent.
And changing the current focal length control direction according to the corresponding value, and simultaneously returning the current gear value to the camera monitoring host, wherein the returning format is shown in a 'gear return' column in table 1.
Second, calculating and correcting target ratio
The camera imaging geometry model is shown in fig. 3, where the camera horizontal view angle is θ, the surveillance distance is L, the target diameter is D, and the surveillance range diameter is D. For convenience, the current value of a parameter is indexed by 1, e.g., θ1And D1While the parameter set point index is 2, e.g. θ2And D2
The resolution of the acquired image is recorded as [ I ]h,Iv](h is a horizontal axis, v is a vertical axis). Target pixel coordinate valueIs [ [ L ]h,Lv],[Rh,Rv]]Wherein the former is the coordinate value of the pixel at the upper left corner of the target calibration frame, and the latter is the value of the lower right corner.
The geometric relationship is described as shown in equation (2.1):
Figure RE-GDA0002404295820000051
let the ratio of the target in the image be P, and similarly, let the current value of the target ratio be P1The set value is set to P2,P1And P2As shown in equation (2.2):
Figure RE-GDA0002404295820000052
by eliminating the monitoring distance L and the monitoring range diameter D in the formula (2.1) and the formula (2.2), the formula (2-3) can be obtained:
Figure RE-GDA0002404295820000053
wherein the target ratio current value P1As shown in (2.4):
Figure RE-GDA0002404295820000054
thus, according to the current value P of the target ratio1The current value theta of the horizontal visual angle of the camera is the target ratio set value P2Converting into a set value theta of horizontal visual angle of the camera2And then, the visual angle control is realized according to the improved control protocol of the motorized zoom lens, so that the target ratio is proper. Target ratio set point P2The effect is better when the concentration is set to be 8-13%.
Third, target offset calculation and correction
The resolution of the acquired image is recorded as [ I ]h,Iv](h is a horizontal axis, v is a vertical axis). The target pixel coordinate value is [ [ L ]h,Lv],[Rh,Rv]]Wherein the former is the target calibration frame leftThe upper corner pixel coordinate value, which is the lower right corner value. The imaging visual angle of the camera is [ theta ]hv]。
Target center coordinate [ C ]h,Cv]As shown in equation (3.1):
Figure RE-GDA0002404295820000055
the image center coordinates are
Figure RE-GDA0002404295820000056
The target pixel shift amount is the difference between the target center and the image center coordinate
Figure RE-GDA0002404295820000057
Then, through the geometric relation, the target angle offset [ O ] can be deducedh,Ov]As shown in equation (3.2):
Figure RE-GDA0002404295820000061
θvcan be expressed as formula (3.3):
Figure RE-GDA0002404295820000062
let theta equal to thetahFormula (3.4) can be simplified from formula (3.1) to formula (3.3):
Figure RE-GDA0002404295820000063
rotation angle of the rotary head, i.e. target angle offset [ O ]h,Ov]The parameter involved includes the image resolution [ I ] as shown in equation (3.4)h,Iv]Target pixel coordinate value [ [ L ]h,Lv],[Rh,Rv]]And a camera horizontal imaging view angle theta. The current rotating cradle head often supports angle accurate control, so the current rotating cradle head can be directly connected with a camera tracking host or forwarded through an external hardware module.
The technical scheme of the invention is used for tracking and controlling the actual unmanned aerial vehicle, and the effect is shown in figure 4.
The method comprises the steps of returning the target to the center of the picture and enabling the proportion of the target in the picture to reach the set proportion, wherein the execution sequence between the two steps is not required. In the embodiment shown in fig. 4, the step of returning the object to the center of the screen is performed first. In fig. 4, lines a and b are visible and infrared tracking for a four-axis drone, and lines c and d are visible and infrared tracking for a six-axis drone. The 1 st column completes the identification of the unmanned aerial vehicle, calibrates the unmanned aerial vehicle and acquires the pixel coordinates of the unmanned aerial vehicle; column 2, completing the matching control of the rotating pan-tilt, and returning the target to the center of the picture; column 3 completes zoom camera control to make the ratio of the target in the frame reach the set ratio.
The effect graph shows that the invention can realize the quantitative stepping control and the periodic feedback of the zoom value of the zoom lens and the visual angle value of the camera by improving the native PELCO control protocol, can realize the accurate and stable control of the camera monitoring equipment, and can ensure that the visual angle of the equipment is self-matched with the target size and the visual angle direction is self-matched with the target movement amount.
The above-mentioned embodiments only express several embodiments of the present invention, and the description thereof is more specific and detailed, but not construed as limiting the scope of the present invention. It should be noted that, for a person skilled in the art, several variations and modifications can be made without departing from the inventive concept, which falls within the scope of the present invention. Therefore, the protection scope of the present patent shall be subject to the appended claims.

Claims (6)

1. A camera shooting monitoring equipment matching control method based on pixel coordinates is characterized by comprising the following steps:
s01: a camera acquires a collected image; calibrating a target and acquiring a pixel coordinate of the target;
s02: sequentially executing steps S03 and S04, or executing S04 and then executing S03; completing the matching control of the camera shooting monitoring equipment based on the pixel coordinates;
the S03 is as follows: according to the current value P of the target ratio1Current value of horizontal angle of view theta of camera1Setting the target ratio to a set value P2Converting into a set value theta of horizontal visual angle of the camera2
Figure FDA0002308825460000011
According to the obtained horizontal visual angle set value theta of the camera2Controlling the zoom lens of the camera to enable the proportion of the target in the picture to reach a set proportion;
the S04 is as follows: obtaining a target angle offset according to the central coordinate of the target and the central coordinate of the collected image;
and adjusting the camera according to the target angle offset to return the target to the center of the picture.
2. The matching control method for the image pickup monitoring apparatus based on the pixel coordinates according to claim 1, wherein the method for controlling the zoom lens of the camera is specifically:
the camera comprises a camera shooting tracking host, an external hardware module and a zoom lens;
uniformly dividing the focal length of the zoom lens into N gears, and recording delta t as the time required by adjacent gear change; then
Figure FDA0002308825460000012
T is the moving time of the focal length of the motorized zoom lens from the maximum value to the minimum value or from the minimum value to the maximum value, and a lens gear-visual angle comparison table is established;
according to the lens gear-visual angle comparison table, the camera shooting tracking host machine sets the horizontal visual angle of the camera to be a set value theta2Converting into a gear setting gear n 2; the camera shooting tracking host sends gear setting information to the external hardware module, and the external hardware module compares the current gear to generate a focal length moving instruction to control the zoom lens and periodically feeds back the current gear to the camera shooting tracking host.
3. The pixel coordinate-based camera monitoring device matching control method according to claim 2, wherein the command format for the camera tracking host to communicate with the external hardware module is:
command Byte1 Byte2 Byte3 Byte4 Byte5 Byte6 Byte7 Gear setting 0xFF Device numbering 0x00 0x4f 0x00 Gear position Check Sum Gear pass-back 0xFF Device numbering 0x00 0x5d 0x00 Gear position Check Sum
Wherein, byte 1 is a synchronization byte, byte 2 is a device number, byte 4 is information type information, byte 6 is gear information, and byte 7 is a check value.
4. The matching control method for camera monitoring equipment based on pixel coordinates according to claim 2, wherein the external hardware module receives a command from the camera tracking host, and updates the set gear n2 after verification;
every delta t time, the external hardware module judges the following steps: judging the current focal length control direction Dir, wherein a positive number indicates increasing, a negative number indicates decreasing, and 0 indicates stopping; calculating a gear potential difference delta n which is n2-n1, wherein the positive delta n represents that the focal length needs to be increased, the negative delta n represents that the focal length needs to be decreased, and 0 represents that the focal length value is just right;
and changing the current focal length control direction according to the values corresponding to the delta n and the Dir, and simultaneously returning the current gear value to the camera monitoring host.
5. The pixel coordinate-based image capture and monitoring apparatus matching control method according to claim 4, characterized in that: the specific step of changing the current focal length control direction according to the values corresponding to the delta n and the Dir is as follows:
a) delta n is greater than 0, Dir is less than or equal to 0, the current focal length control direction is inconsistent with the gear change requirement, the gear requirement is increased, and an 'increase' instruction is sent;
b) delta n is less than 0, Dir is more than or equal to 0, the current focal length control direction is inconsistent with the gear change requirement, the gear requirement is reduced, and a reduction command is sent;
c) Δ n is 0, Dir! When the current gear is consistent with the set gear, and the focal length control direction is not stopped, a 'stop' instruction is sent;
d) delta n x Dir is more than 0, the current focal length control direction is consistent with the gear change requirement, the current change is kept, and no command is sent;
e) when Δ n is Dir 0, the focus control is finished and no command is sent.
6. The pixel coordinate-based image capture and monitoring apparatus matching control method according to claim 1, characterized in that: the method for acquiring the target angle offset comprises the following steps:
the resolution of the acquired image is recorded as [ I ]h,Iv]Wherein h is a horizontal axis and v is a vertical axis; the target pixel coordinate value is [ [ L ]h,Lv],[Rh,Rv]]Wherein [ L ]h,Lv]The upper left pixel coordinate value of the frame, [ R ] is scaled for the targeth,Rv]Is the right lower angle value; the imaging visual angle of the camera is [ theta ]hv],
Target center coordinate [ C ]h,Cv]As shown in equation (3.1):
Figure FDA0002308825460000021
the image center coordinates are
Figure FDA0002308825460000022
The target pixel shift amount is the difference between the target center and the image center coordinate
Figure FDA0002308825460000023
Through the geometric relation, the target angle offset [ O ] is deducedh,Ov]As shown in equation (3.2):
Figure FDA0002308825460000031
θvexpressed as formula (3.3):
Figure FDA0002308825460000032
camera horizontal imaging view angle thetahExpressed as θ, formula (3.4) can be simplified from formula (3.1) to formula (3.3):
Figure FDA0002308825460000033
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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN115242969A (en) * 2022-06-22 2022-10-25 天翼数字生活科技有限公司 Method and system for controlling rotation of network camera
CN116543141A (en) * 2022-12-16 2023-08-04 无锡恺韵来机器人有限公司 Unmanned aerial vehicle identification and positioning method based on acoustic signal and image fusion

Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102098499A (en) * 2011-03-24 2011-06-15 杭州华三通信技术有限公司 Pan/ tilt/ zoom (PTZ) camera control method, device and system thereof
CN102591366A (en) * 2012-02-17 2012-07-18 广州盈可视电子科技有限公司 Method and device for controlling cloud deck
CN103581614A (en) * 2012-08-01 2014-02-12 通号通信信息集团有限公司 Method and system for tracking targets in video based on PTZ
CN103905792A (en) * 2014-03-26 2014-07-02 武汉烽火众智数字技术有限责任公司 3D positioning method and device based on PTZ surveillance camera
CN105744234A (en) * 2016-04-06 2016-07-06 中国民用航空总局第二研究所 Linkage method for tracking moving object based on pixel differential ratio and system thereof
CN106209858A (en) * 2016-07-15 2016-12-07 厦门博聪信息技术有限公司 A kind of serial communication protocol controlled for ball machine
US20170094184A1 (en) * 2015-09-28 2017-03-30 Qualcomm Incorporated Systems and methods for performing automatic zoom
CN106791586A (en) * 2015-11-19 2017-05-31 杭州海康威视数字技术股份有限公司 A kind of method and monitoring device, device, system being monitored to mobile target

Patent Citations (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102098499A (en) * 2011-03-24 2011-06-15 杭州华三通信技术有限公司 Pan/ tilt/ zoom (PTZ) camera control method, device and system thereof
CN102591366A (en) * 2012-02-17 2012-07-18 广州盈可视电子科技有限公司 Method and device for controlling cloud deck
CN103581614A (en) * 2012-08-01 2014-02-12 通号通信信息集团有限公司 Method and system for tracking targets in video based on PTZ
CN103905792A (en) * 2014-03-26 2014-07-02 武汉烽火众智数字技术有限责任公司 3D positioning method and device based on PTZ surveillance camera
US20170094184A1 (en) * 2015-09-28 2017-03-30 Qualcomm Incorporated Systems and methods for performing automatic zoom
CN106791586A (en) * 2015-11-19 2017-05-31 杭州海康威视数字技术股份有限公司 A kind of method and monitoring device, device, system being monitored to mobile target
CN105744234A (en) * 2016-04-06 2016-07-06 中国民用航空总局第二研究所 Linkage method for tracking moving object based on pixel differential ratio and system thereof
CN106209858A (en) * 2016-07-15 2016-12-07 厦门博聪信息技术有限公司 A kind of serial communication protocol controlled for ball machine

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
陈卫国等: "《基于视频监控的数字控制系统设计》", 《低压电器》 *

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN115242969A (en) * 2022-06-22 2022-10-25 天翼数字生活科技有限公司 Method and system for controlling rotation of network camera
CN115242969B (en) * 2022-06-22 2023-10-13 天翼数字生活科技有限公司 Method and system for controlling rotation of network camera
CN116543141A (en) * 2022-12-16 2023-08-04 无锡恺韵来机器人有限公司 Unmanned aerial vehicle identification and positioning method based on acoustic signal and image fusion

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