Modify the code from the previous example
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clear, close all;
% Activity problem 6
% First example. With a loop, no ligical indexing.
N=6;
%NxN magic square
A=magic(N);
%Initialise B to be the same size as A with ones
B=ones(N);
%Set B to one where A is divisible by 3
%Loop over all elements
for row=1:N
for col=1:N
%Get current elemnet's value.
value=A(row,col);
%Is it a multiple of 3:
if (mod(value,3)==0)
B(row,col)=0;
end
end
end
disp(B)
% Second example, use logical indexing.
N=6;
A=magic(N)
B=ones(N);
indices=mod(A,3)==0;
B(indices)=0;
disp(B)
% part c
B(mod(A,3)==0)=0;
Now, based on the practice above, modify the code so that it starts with a magic square of size 5x5 and produces a second array that has a value of one where the magic square element is odd and a value of 2 where the corresponding magic square element is even.
5 Comments
Walter Roberson
on 19 Feb 2019
What is your question?
Hint: if C is a value that is either 0 or 1, then A + (B-A)*C will give a value that is either A or B.
Abigail McGahey
on 19 Feb 2019
Walter Roberson
on 19 Feb 2019
Edited: Walter Roberson
on 19 Feb 2019
Your code builds an NxN magic square. If you want a 5 x 5 square specifically, then perhaps you should change N to be 5.
Note that restating a problem is not asking a question. A question might be something like,
"When I ran this code, on line 17, which is ...., it tells me that I have a subscript out of range. Could someone explain what that means?"
Abigail McGahey
on 19 Feb 2019
Walter Roberson
on 22 Feb 2019
"I am struggling" is not a question. A question might be something like how to write loops, or how to detect that a value is odd or even.
Answers (1)
Pranjal Priyadarshi
on 22 Feb 2019
The code below takes a magic square of size 6 and replaces the even elements with 2 and replaces the odd elements with 1.
N=6;
A=magic(N);
evenindex=(mod(A,2) == 0); %finds the index for even elements
finalans=A;
finalans(evenindex)=2; %replaces even elements with 2
finalans(~evenindex)=1; %replaces odd elements with value 1
disp(A);
disp(finalans);
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on 19 Feb 2019
on 22 Feb 2019
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