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A global calibration method for multi-cam visual measurement systems

2026-06-14 04:561570NameNetworking

A global calibration method for multi-cam visual measurement systems

The multi-cam visual measurement system is a three-dimensional measurement based on multiple cameras

It is widely applied in areas such as industrial measurements, robotic navigation, virtual reality. In multi-cam vision

The spatial relationship between the cameras is critical in the measurement system, so the global calibration method allows

The geometry between cameras is sufficiently effective to make the system more accurate and reliable。

This paper presents the global mapping method of a commonly used multi-cam visual measurement system。

I. Rationale for a multi-cam visual measurement system

The multi-cam visual measurement system is a three-dimensional measurement based on multi-view geometry. Itary

We'll use multiple cameras to observe the same target simultaneously

Count the target's three-dimensional coordinates. The basic principles of the multi-cam visual measurement system can be summarized as follows:

Steps:

Camera marking: each camera is marked to determine the internal and external parameters of the camera, including focus

Distance, main point position, teratometric parameters, etc。

2. Image matching: matching images taken by each camera to determine the pixels of the corresponding point

Coordinates。

Ccd camera marked approximate step

Triangular measurements: use of triangulation based on the pixel coordinates of the corresponding points observed by multiple cameras

The rationale calculates the three-dimensional coordinates of the target。

In the above steps, the camera is marked as a key element of the multi-cam visual measurement system, and it does

Internal and external parameters of the camera were established, providing accurate data for subsequent image matching and triangulation

Base。

Ii. Global mapping of multi-cam visual measurement systems

In the multi-cam visual measurement system, the global marking method is designed to determine between multiple cameras

Geometry, i. E. Relative attitude and location information between cameras. A common global label

The method is based on the method of calibration of the board and includes the following steps:

1. Camera internal marking: internal marking of each camera to determine the internal parameters of the camera

Includes focal length, main point position, teratometric parameters, etc. You can use traditional board grids or

To extract a mismatch from a feature point。

2. Chessboard layout: place a board flat panel in the measuring space and pass

The measurement method determines the three-dimensional coordinates of the plate。

3. Multiple camera tagging of images: simultaneous photographing of images containing board cells through multiple cameras

Ccd camera marked approximate step

The sequence ensures that each camera observes the same board grid from the same angle。

Image processing uncharted extraction: pre-processing of images taken by each camera, including

Noise, angle detection and image enhancement. Then you can extract every image from an angle detection algorithm

Angular position of the board。

5. Characteristic point matching: between the next image sequence taken by each camera

Angular points are matched and the pixel coordinates of the corresponding points are obtained。

6. Parameter estimates are not optimized: using pixel coordinates of feature points in multiple images and corresponding chess

A 3-d grid coordinates, using a minimum of two multipliers, for the estimation and resolution of camera attitude and position parameters。

7. Results validation: validation of global calibration by assessing re-projection errors in multi-cam systems

Accuracy and reliability。

In the above steps, camera internal marking and image processing steps are key to global marking methods ring

Section. Camera internals are identified for subsequent image processing and parameter estimation

Accurate data base provided; image processing steps improved through pre-processing and feature extraction

Like quality and reliability of feature points, thereby increasing the accuracy of the camera attitude and position parameters

Degrees。

Iii. Analysis of non-results of experiments

Ccd camera marked approximate step

In order to verify the validity and reliability of the global marking method of the multi-cam visual measurement system

We did a series of experiments. The experiment involves a board of chess with the same plane angle and position

Mark panels, while collecting image sequences from multiple cameras and marking using global marking methods

And parameter estimates。

The results of the experiment showed that the multi-cam visual measurement system, which was marked by a global calibration method, was capable

Effective determination of geometry between cameras makes the system more accurate and reliable. Oh, no

Compared to traditional local marking methods, global marking methods can only improve measurement accuracy, and

The scope and application of the system could also be expanded. In addition, there is one method of global marking

The defined robustness and stability can be adapted to the measurement needs of the same scene and environment。

Based on the above, the global marking method of the multi-cam visual measurement system is based on the board label

Set methods, through camera internal marking, board layout, image processing uncharted extraction, parameter estimation

The geometry of multiple cameras has been established, for example, by not optimizing steps. The results of the experiment show that

Methods can effectively improve measurement accuracy and stability of the system and extend the measurement of the system van

Area of encirclement and application。

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