Evaluating constants
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Hello everyone,
I have to evaluate a very complicated number, and its important to me, so i can not use calculator to find because the accuracy will decrease, so I wrote the following code:
gm1 = 0.01;
gm2 = 0.01;
gm4 = 0.04;
gm5 = 0.04;
gm7 = 0.04;
gm8 = 0.2;
re1 = 99;
re2 = 99;
re4 = 24.75;
re5 = 24.75;
re7 = 24.75;
re8 = 4.95;
ro1 = 400e3;
ro2 = 400e3;
ro4 = 100e3;
ro5 = 100e3;
ro8 = 20e3;
R1 = 20e3;
R2 = 20e3;
R3 = 3e3;
R4 = 2.3e3;
R5 = 15.7e3;
R6 = 3e3;
P1 = (R1*ro1)/(R1 + ro1);
P2 = (R2*ro2)/(R2 + ro2);
P3 = (R3*ro5)/(R3 + ro5);
P4 = (R6*ro8)/(R6 + ro8);
K1 = 101*(re8 + P4);
K2 = 101*(re7 + R4);
K3 = 101*(re5 + re4);
K4 = 101*(re1 + re2);
ANS2 = (P4/K4)*101*(100^3)*(R5/(R5+K1))*(P3/(P3+K2))*((P2+P1)/(P1+P2+K3));
as you can see, it is very complicated, now you can see that I will get the error " ??? Undefined function or variable" for all these constant.. so what should i do?
1 Commento
Jan
il 27 Dic 2011
The interesting part of the error message is missing...
Risposta accettata
Jan
il 27 Dic 2011
The posted code is working without an error. Matlab#s MLint mentions, that ro4 and all gm* variables are not used. But I do get an error message.
What about this:
ANS2 = 8010.837753694346;
Another impression: The accuracy of the output depends on the accuracy of the inputs. Did you analyse the sensitivity of the output to a variation of the inputs already? If accuracy matters, such an analysis is fundamental.
1 Commento
John D'Errico
il 27 Dic 2011
@Jan - I assume you meant to say that you do NOT get an error message.
Più risposte (1)
John D'Errico
il 27 Dic 2011
Well, if you insist on accuracy...
DefaultNumberOfDigits 100 session
gm1 = hpf('0.01');
gm2 = hpf('0.01');
gm4 = hpf('0.04');
gm5 = hpf('0.04');
gm7 = hpf('0.04');
gm8 = hpf('0.2');
re1 = hpf('99');
re2 = hpf('99');
re4 = hpf('24.75');
re5 = hpf('24.75');
re7 = hpf('24.75');
re8 = hpf('4.95');
ro1 = hpf('400e3');
ro2 = hpf('400e3');
ro4 = hpf('100e3');
ro5 = hpf('100e3');
ro8 = hpf('20e3');
R1 = hpf('20e3');
R2 = hpf('20e3');
R3 = hpf('3e3');
R4 = hpf('2.3e3');
R5 = hpf('15.7e3');
R6 = hpf('3e3');
P1 = (R1*ro1)/(R1 + ro1);
P2 = (R2*ro2)/(R2 + ro2);
P3 = (R3*ro5)/(R3 + ro5);
P4 = (R6*ro8)/(R6 + ro8);
K1 = 101*(re8 + P4);
K2 = 101*(re7 + R4);
K3 = 101*(re5 + re4);
K4 = 101*(re1 + re2);
ANS2 = (P4/K4)*101*(100^3)*(R5/(R5+K1))*(P3/(P3+K2))*((P2+P1)/(P1+P2+K3))
ANS2 =
8010.837753694344316448807496109772836067535423597352814811877939938344594879856582655844910993168092
Yes, its a waste of digits. But in any event, nary an error generated as a double or a high precision float.
My guess is you have not shown us what your real (complete) code looks like.
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il 27 Dic 2011
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