histogram by not using the default imhist

2 vues (au cours des 30 derniers jours)
Vaswati Biswas
Vaswati Biswas le 13 Mar 2021
Modifié(e) : Vaswati Biswas le 15 Mar 2021
I1 = imread('RDL.jpg');
raw = im2double(I1(:,:,1));
m=max(max(raw));
m1=min(min(raw));
binsize=(m-m1)/10;
for i=1:1:size(raw,1)
for j=1:1:size(raw,2)
value=raw(i,j); %read input image level
if value >= min(min(raw)) && value <= max(max(raw))
for i=1:1:10
if value <= i*binsize+min(min(raw))+ value > (i-1)*binsize+min(min(raw))
% original histogram in pixels
imhist(i)=imhist(i)+1;
% normalized histogram pdf
%InputIm_normalized_histogram(i)=InputIm_histogram(i)/resolution;
end
end
end
end
end
imhist(i)
I have used the code to plot a histogram from the image below. I want the graph similar to the attached image. But I am not able to get it. Kindly let me know where have I made the mistake.
  3 commentaires
Afficher 1 commentaire plus ancien
Vaswati Biswas
Vaswati Biswas le 13 Mar 2021
Yeah I forgot to mention. Sorry for that. I was not getting any output graph from that. But no error is also shown
Jan
Jan le 13 Mar 2021
imhist(i) is a scalar, because you have defined it as a vector. Your code does not contain a command to dispaly a graph.

Connectez-vous pour commenter.

Connectez-vous pour répondre à cette question.

Réponse acceptée

Jan
Jan le 13 Mar 2021
Modifié(e) : Jan le 13 Mar 2021
Initially imhist is a command. Calling it as imhist(i) + 1 should cause an error. Do you get a corresponding message?
Use a different name and initialize your counter:
history = zeros(1, 10);
This line is meaningless:
if value >= min(min(raw)) && value <= max(max(raw))
because all values are >= the minimum and <= the maximum.
if value <= i*binsize+min(min(raw))+ value > (i-1)*binsize+min(min(raw))
% ^
Here you do not want a +, but an & to get a logical AND. You have evaluated min(min(raw)) already, so it is more efficient and easier to read, if you use m1 here.
A hint: "m" as maximum and "m1" as minimum are not easy to remember. maxV and minV might be better.
A leaner version of your code:
Img = imread('RDL.jpg');
R = im2double(Img(:,:,1)); % The red channel
maxR = max(max(R));
minR = min(min(R));
nBin = 10;
BinEdge = linspace(minR, maxR, nBin + 1);
BinEdge(end) = Inf; % any value > maxR to include it in last bin
hist = zeros(1, nBin);
for iBin = 1:nBin
hist(iBin) = sum(BinEdge(iBin) <= R(:) & R(:) < BinEdge(iBin + 1));
end
Instead of loops over the pixels, sum() is used to count the values of R matching into each bin.
  6 commentaires
Afficher 4 commentaires plus anciens
Vaswati Biswas
Vaswati Biswas le 14 Mar 2021
@Image Analyst Thanks for clearing my doubt. Yeah I was making a mistake.
Vaswati Biswas
Vaswati Biswas le 14 Mar 2021
@Jan Thanks for your help it gives me the correct result now

Connectez-vous pour commenter.

Plus de réponses (1)

Image Analyst
Image Analyst le 14 Mar 2021
Then why not simply use histogram() or histcounts()? Why do you want to write (buggy) code yourself?
  3 commentaires
Afficher 1 commentaire plus ancien
Image Analyst
Image Analyst le 14 Mar 2021
That doesn't explain why you don't use the built-in histogram functions.
Vaswati Biswas
Vaswati Biswas le 15 Mar 2021
Modifié(e) : Vaswati Biswas le 15 Mar 2021
I didn't try built-in histogram function earlier. But later I checked that too it works fine. Thanks for your suggestion.

Connectez-vous pour commenter.

Catégories

En savoir plus sur Histograms dans Help Center et File Exchange

Tags

Produits

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by