How can i use the 'mod' function in an Embedded Matlab function?
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I have the following function. I want to use this algorithm in an embedded Matlab function in simulink.
function y = fcn( u )
y=[0;0;0;0;0;0;0;0;0;0];
newu=0;
nr=0;
s=false;
if u<0 s=true;
end
while u~=0
newu=newu*10+mod(u,10);
u=(u/10);
nr=nr+1;
end;
for i=nr:0
y(i)=mod(newu,10);
newu=(newu/10);
end;
for i=0:nr
y = y+65;
end
end
After compilation it gives me the error :'Function 'mod' is not defined for values of class 'embedded.fi'. 'u'(input value) being of class 'embedded.fi'. What do i have to change to get my output value?
Thank you, Zoli
15 comentarios
Walter Roberson
el 17 de Dic. de 2012
Note:
for i=nr:0
is not going to execute any loops when nr > 0.
Note: if u < 0 then you set s, but you do not do anything with s and you do not change the sign of u; are you sure you are going to get the right answer? Perhaps you want nr:-1:0 ? But then how are you going to store a value at y(0) ?
Note: y = y + 65 is going to add 65 to every member of y. And you have that in a loop...
Azzi Abdelmalek
el 17 de Dic. de 2012
Editada: Azzi Abdelmalek
el 17 de Dic. de 2012
I think he wants for i=nr:-1:0
Walter Roberson
el 17 de Dic. de 2012
Probably wants to count backwards, yes, but still has problems at y(0)
Azzi Abdelmalek
el 17 de Dic. de 2012
Editada: Azzi Abdelmalek
el 17 de Dic. de 2012
y(i+1)=mod(newu,10);
Walter Roberson
el 17 de Dic. de 2012
nr is the number of digits, but nr:-1:0 is looping nr+1 times.
Zoltan
el 18 de Dic. de 2012
Walter Roberson
el 18 de Dic. de 2012
Syntax is
for i = nr: -1: 0
but please re-check whether you want to stop at 0 or at 1.
Zoltan
el 18 de Dic. de 2012
Zoltan
el 18 de Dic. de 2012
Walter Roberson
el 18 de Dic. de 2012
Look at your code again, what you show above. In the two "for" loops, where is the data being stored when "i" is 0 ?
Zoltan
el 19 de Dic. de 2012
Walter Roberson
el 19 de Dic. de 2012
Correct. You cannot use 0 as an index. But you probably don't want to: you are only manipulating nr values, not nr+1 values, so 1:nr and nr:-1:1 would seem to be appropriate.
Zoltan
el 19 de Dic. de 2012
Walter Roberson
el 19 de Dic. de 2012
Double-check the parity of the line. But even more so, double check how the heck an 8 bit result is generating a negative number below -128, as 8 bit signed values can only be in the range -128 to +127 . Check your scope settings.
Zoltan
el 20 de Dic. de 2012
Respuestas (1)
Azzi Abdelmalek
el 17 de Dic. de 2012
Editada: Azzi Abdelmalek
el 17 de Dic. de 2012
In the below part of your code
while u~=0
newu=newu*10+mod(u,10);
u=(u/10);
nr=nr+1;
end;
newu increases rapidly to infinity. that's what causes a problem when
y(i)=mod(newu,10);
6 comentarios
Zoltan
el 17 de Dic. de 2012
Azzi Abdelmalek
el 17 de Dic. de 2012
newu=newu*10+mod(u,10);
Azzi Abdelmalek
el 17 de Dic. de 2012
try this
u=1,newu=0;nr=0
while u~=0
newu=newu*10+mod(u,10);
u=(u/10);
nr=nr+1;
end;
newu
Walter Roberson
el 17 de Dic. de 2012
Remember, Azzi, the input is fixed point, so the division is going to truncate at some point.
Azzi Abdelmalek
el 17 de Dic. de 2012
Editada: Azzi Abdelmalek
el 17 de Dic. de 2012
Yes, but after 309 iterations, 10^309=inf
In the above example, nr=324
Walter Roberson
el 17 de Dic. de 2012
This is only a problem if the fi object has a representation for infinity and if the input is infinity. Otherwise abs(u) is diminishing in each step and there would be a finite end to the process. It could potentially overflow the buffer of 10 y locations, but that would depend upon the maximum value possible for that particular fi object.
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