I Face Detection And Recognition System author: Mukund Agarwal supervisor: Professor Nishan Canagarajah Project Thesis submitted in support of the Degree of Bachelor of Engineering in Electronic and Communications Engineering


Figure 3 Background modelling technique comparisons



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Figure 3 Background modelling technique comparisons 
Non-adaptive
Adaptive
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Technique
Background Modelling Techniques 
Comparison
t
N*frame
t
frame


Mukund Agarwal 
Face Detection & Recognition System 

From figure 3 it can be seen that there is an inverse correlation between the technique’s 
effectiveness and complexity of implementation. As we are less concerned with tracking 
people in this system non-adaptive background model better suits the systems needs. Also 
non-adaptive technique consumes less processing power which is also necessary for the 
system as it needs to work real time. 
After the background is established, the next frame from the feed is then subtracted with the 
previous frame. The difference between the two images is then used to assess whether there 
is motion or not.
There are two ways this difference can be used: 
1.
Direct difference
is where the algorithm just checks if the difference is greater than zero. 
This is highly accurate as even a slight change in the next image of the image stream will 
set this condition true.
2.
Threshold Vs difference
is where the algorithm checks if the difference is greater than a 
threshold. Let’s say if the system is deployed in a room and there are curtains present in 
the scene which flutter from time to time. If a suitable threshold is applied then that 
fluttering can be ignored by the algorithm. And this sometimes can be useful when the 
system is only supposed to alert the user when an unknown person enters in the scene or 
in other words when a ‘big’ change in the scene is detected.
If there was motion then the latest image is taken as the new background. In the case of no 
motion, no change is needed for the background as there is no point in storing the same or 
closer image again. Then the algorithm loops back to the beginning.


Mukund Agarwal 
Face Detection & Recognition System 

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