Image processing using chaotic map

The chaotic tent map is given by:
xi+1 = f (xi,μ)
(f (xi,μ)= μxi, if xi < 0.5
μ(1−xi), otherwise;) ……………… Eq.1
where xi ∈[ 0,1], for i ≥ 0. This map transforms an interval [0, 1] onto itself and contains only one control parameter μ, respectively, where μ ∈[ 0,2].
Steps:
(1) Read plain-images (original image) (Ma×b), get size of M, e.g., use [a, b, c] to save the size of M, a = 256, b = 256, c = 3, let N = a∗b∗c, and initiate control parameter (μ) of the chaotic tent map.
(2) Input the secret (encryption) key x0 into the algorithm. Iterate the chaotic tent map N times using equation 1, and obtain the key array x(n), the size of x(n) is N;
(3) Encrypt each element of matrix (Ma×b) using the key array x(n), that is, mix the original image M(a×b) components with the key array x(n);
(4) The resulting image of step (3) is the ciphered image.
Coding:
M=imread('cameraman.tif');
[a,b] = size(M);
N=a*b;
u=1.999;
x(1)=0.5;
for i=1:N
if x(i) < 0.5 %and condition
x(i+1)=u*x(i); %is it right
else
if x(i) >= 0.5 %and this condition
x(i+1)=u*(1-x(i)); %is it right
end
end
end
r=xor(x(i+1),M);
I wrote this code by following the steps mentioned above(research paper attached). I also attached the required output but i am getting a full white or full black image. Can someone help me identify the problem.

1 commentaire

Karbala'a Unvi. Science
Karbala'a Unvi. Science le 15 Juin 2020
Dear Sir,
will you send me the final code to look at it and find how did you get the result..
Thanks in advance
Your
Dr.Zeyad

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 Réponse acceptée

Walter Roberson
Walter Roberson le 23 Juil 2019

0 votes

Your final r is a scalar double. You will not get much from it.
Your x will be a vector double. You would need to reshape it and uint8 it.

3 commentaires

Nazish
Nazish le 24 Juil 2019
Thank you.. stay blessed
Shankar R
Shankar R le 29 Mar 2021
Wts wrong in above code.. ? I am not getting output?? Can you explain?
r = bitxor(im2uint8(reshape(x(2:end),a,b)),M);

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