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I want to develop a 3D cubes systematically from 5x5x5 to 15x15x15 with the increments of 1.I developed below code.But there is a problem in the way I am giving the inputs of x,y,z with the increments.
x=5:1:15;
y=5:1:15;
z=5:1:15;
B=zeros(x,y,z);
for i =1:x;
for j=1:y;
for k=1:z;
if ((j==1)|(j==y))&((k==1)|(k==z));
B(i,j,k)=1;
else B(i,j,k)=0;
if((i==1)|(i==x))&((k==1)|(k==z));
B(i,j,k)=1;
else B(i,j,k)=0;
if ((i==1)|(i==x))&((j==1)|(j==y));
B(i,j,k)=1;
else B(i,j,k)=0;
end
end
end
end
end
end
Error
Error using zeros
Size inputs must be scalar.
Error in (line 6)
B=zeros(x,y,z);

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madhan ravi
madhan ravi am 25 Jul. 2020

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B = zeros(numel(x), numel(y), numel(z)); % error is gone but I have no idea what’s going on

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Hege
Hege am 25 Jul. 2020
Bearbeitet: Hege am 25 Jul. 2020
x=5:1:15; is not equal to the numel(x).same for the y and z.
could you please tell me why I am getting the error called' Error using zeros. Size inputs must be scalar' for the below first code.
x=5:1:15;
y=5:1:15;
z=5:1:15;
B=zeros(x,y,z);
And If Give the inputs like below no errors.But I want to simplify the code.
x=5,6,7,8,9,10,11,12,13,14,15;
y=5,6,7,8,9,10,11,12,13,14,15;
z=5,6,7,8,9,10,11,12,13,14,15;
B=zeros(x,y,z);
madhan ravi
madhan ravi am 25 Jul. 2020
Bearbeitet: madhan ravi am 25 Jul. 2020
for x = x
for y = y
for z = z
zeros(x, y, z)
end
end
end
doc zeros
Hege
Hege am 25 Jul. 2020
Thank you sir.I got the answer.

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R2017a

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Gefragt:

Hege
Hege
am 25 Jul. 2020

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Hege
Hege
am 25 Jul. 2020

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