Simply using logical indexing:
>> s = [1,0,1;0,0,0];
>> b = [2,3,4];
>> out = repmat(b,size(s,1),1);
>> out(s==1) = NaN
out =
NaN 3 NaN
2 3 4
How to write this simple script correctly?
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Hi I have
s=[1 0 1;0 0 0];
b=[2 3 4];
I would like to have this as a result
c=[nan 3 nan;2 3 4]
I mean replace 1 by nan and o by b.
for r= 1:3
s_ind = find(s(:,r) == 1);
s(s_ind)=nan;
m(:,r)=s
a_ind = find(s(:,r) == 0);
% I don't know how to replace for 0 from matrix b??
end
any help would be appreciated in advance.
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Weitere Antworten (1)
Star Strider
am 11 Aug. 2015
You can use logical indexing, although you need two separate steps to assign the elements of ‘b’ and ‘NaN’ to ‘c’ because you have two separate conditions.
One possibility:
s=[1 0 1;0 0 0];
b=[2; 3; 4];
mb = repmat(b', 2, 1); % Create Matrix Matching ‘s’ From ‘b’
c = s; % Create ‘c’
c(~c) = mb(~c); % Assign Elements Of ‘mb’ To Zero Elements Of ‘c’
c(c==1) = NaN; % Assign ‘NaN’ To ‘c’ = 1
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