Clear Filters
Clear Filters

To change value in cells based on conditions

9 views (last 30 days)
yue ishida
yue ishida on 5 Jan 2012
I have coding as below.
a=[11 11 33 33 22 44; 33 33 33 11 11 22; 33 33 11 22 22 44; 44 44 33 22 44 11]
I need to change the matrix value based on this conditions and cannot overlap each other:
1. if value 33 occured 3 times continuosly, the end of 33 need to replace with 44
33 33 33 = 33 33 44
2. If value 33 appeared 2 times continously and followed by 22, I need to replace the 22 value with 44 too.
33 33 22 = 33 33 44
2. if value 33 occured then followed by value 11, the value 11 will change into 22
33 11 = 33 22
Therefore, origin matrix will become like this:
c=
11 11 33 33 44 44
33 33 44 11 11 22
33 33 44 22 22 44
44 44 33 22 44 11
I need help to code this problem. Thank you for your help.

Sign in to answer this question.

Accepted Answer

Andrei Bobrov
Andrei Bobrov on 5 Jan 2012
n = size(a,1);
K = reshape([a zeros(n,1)].',[],1)';
K(strfind(K,[33 33 33])+2) = 44
K(strfind(K,[33 33 22])+2) = 44
K(strfind(K,[33 11])+1) = 22
out = reshape(K,[],n)';
out = out(:,1:end-1);
ADDED [22:16(UTC+4) 05.01.2012]
n = size(a,1);
A = reshape([a zeros(n,1)].',[],1).';
N = numel(A);
j1 = 1;
while j1 <= N
if j1+2 <= N && (all(A(j1:j1+2) == [33 33 33]) ...
|| all(A(j1:j1+2) == [33 33 22]) ...
|| all(A(j1:j1+2) == [33 33 11]))
A(j1+2) = 44;
j1 = j1+3;
elseif j1+1 <= N && all(A(j1:j1+1) == [33 11])
A(j1+1) = 22;
j1 = j1+2;
else
j1 = j1 + 1;
end
end
out = reshape(A,[],n)';
out = out(:,1:end-1);
  3 Comments
Show 1 older comment
Andrei Bobrov
Andrei Bobrov on 5 Jan 2012
Hi Jan! I am agree with you.
Added variant of code.

Sign in to comment.

More Answers (3)

Walter Roberson
Walter Roberson on 5 Jan 2012
Use logical vectors for the various conditions. If you think about logical vectors a bit you will come up with a simple way to prevent overlaps between the conditions.
Question:
What should be the output for 33 33 33 33 11
  2 Comments
Walter Roberson
Walter Roberson on 5 Jan 2012
Okay... it just wasn't clear whether your mention of three 33's was exactly three or was "three or more".

Sign in to comment.

yair suari
yair suari on 5 Jan 2012
something like (not very efficient)
for i=1:size(a,1) if a(i:i+2)==[33 33 33];a(i:i+2)=[33 33 44] end
  1 Comment
Jan
Jan on 5 Jan 2012
Or: "a(i+2) = 44" - there is no need to overwrite 33 by 33.

Sign in to comment.

yue ishida
yue ishida on 5 Jan 2012
i still get error for my answer, maybe we need to change a bit of this coding? I was trying this code based on your code, but still don't get the answer...
for i=1:size(a,1)
if a(i:i+2)==[33 33 33]
a(i:i+2)=[33 33 44];
elseif a(i:i+2)==[33 33 22]
a(i:i+2)=[33 33 44];
elseif a(i:i+1)==[33 11]
a(i:i+1)=[33 22];
end
end
  2 Comments
Jan
Jan on 5 Jan 2012
if all(a(i:i+2)==[33 33 33]) % better an explicite ALL
a(i+2)=44; % No need to overwrite the 33 with 33
...

Sign in to comment.

Categories

Find more on Matrix Indexing in Help Center and File Exchange

Tags

Products

Community Treasure Hunt

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

Start Hunting!