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Matrix dimensions must agree.

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mohamed saber
mohamed saber il 28 Mar 2012
where is the error please ???
clear,clc
cp=1005;
r=287;
d=1.2;
v=300;
tx=284;
px=98;
to=298;
py=100:200;
a1=((d*v*r).^2)./(2*cp.*py);
a2=1;
a3=-to;
p=[a1 a2 a3];
ty=roots(p);
ds=(cp.*log(ty./tx))-(r.*log(py./px));

Accedi per rispondere a questa domanda.

Risposte (4)

Sean de Wolski
Sean de Wolski il 28 Mar 2012
Error using - Matrix dimensions must agree. That is an error with '-' (minus). Going to the only minus:
Compare sizes:
(r.*log(py./px))
and
(cp.*log(ty./tx))
There is your problem.
Walter Roberson
Walter Roberson il 28 Mar 2012
roots() returns a column vector, but everything else is a row vector.
Your a1 vector is the same length as py, but when you put a2 and a3 on the end of that, your p vector becomes 2 elements longer than py. roots() returns a vector one element shorter than its input vector, so roots() is going to return a vector one element longer than py. You then try to subtract between that vector of length of py + 1 and the vector of length of py.
  2 Commenti
mohamed saber
mohamed saber il 28 Mar 2012
what about that ??
clear,clc
cp=1005;
r=287;
d=1.2;
v=300;
tx=284;
px=98;
to=298;
py=100:200;
a1=((d*v*r).^2)./(2*cp.*py);
a2=1;
a3=-to;
p=[a1 a2 a3];
ty=roots(p);
Ty=ty(1:end-1);
ds=(cp.*log(Ty./tx))-(r.*log(py./px));
Walter Roberson
Walter Roberson il 28 Mar 2012
Ty=ty(1:end-1) .';
in order to get the row vector you need.

Accedi per commentare.

mohamed saber
mohamed saber il 29 Mar 2012
could you please write the syntax ???
Andrei Bobrov
Andrei Bobrov il 29 Mar 2012
cp=1005;
r=287;
d=1.2;
v=300;
tx=284;
px=98;
to=298;
py=(100:200).';
a1=((d*v*r).^2)./(2*cp.*py);
a2=1;
a3=-to;
p=[a1; a2; a3];
ty=roots(p);
Ty=ty(1:end-1);
ds=(cp.*log(Ty./tx))-(r.*log(py./px));

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