Particle filtering video image tracking method based on dual model
A video image and particle filtering technology, applied in image analysis, image data processing, instruments, etc., can solve problems such as robust algorithms, and achieve stable and robust tracking effects.
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Embodiment 1
[0030] The geometrically deformable target is tracked using the algorithm described above.
[0031] Step 1: The video image sequence has a total of 271 frames, and the size of each frame is 320*240. The initial size of the template is 42*42. 8-dimensional vector is the projection transformation parameter of tracking boundary shape, t=1;
[0032] Step 2: Predict according to the following formula , j=1,2….16. 16 is the number of sampled particles; v is the velocity vector of the state transition from time t-1 to time t.
[0033]
[0034] For example to get:
[0035] Step 3: Use the following formula to construct the covariance matrix, and calculate the correlation with each The covariance of the corresponding image patch ;
[0036]
[0037] For a given region R whose size is 42×42, , is the mean vector. . x,y Indicates the abscissa and ordinate of the corresponding pixel. and represent images respectively exist x direction and y The gradient va...
Embodiment 2
[0064] Light transform targets are tracked using the algorithm described above.
[0065] Step 1: The video image sequence has a total of 600 frames, and the size of each frame is 320*240. The initial size of the template is 104*110. 8-dimensional vector is the projection transformation parameter of tracking boundary shape, t=1;
[0066] Step 2: Predict according to the following formula , j=1,2….25. 25 is the number of sampled particles; v is the velocity vector of the state transition from time t-1 to time t.
[0067]
[0068] For example to get:
[0069] Step 3: Use the following formula to construct the covariance matrix, and calculate the correlation with each The covariance of the corresponding image patch ;
[0070]
[0071] For a given region R, its size is 104*110, , is the mean vector. . x,y Indicates the abscissa and ordinate of the corresponding pixel. and represent images respectively exist x direction and y The gradient value in t...
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