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Hi, I have a problem, I want the subtraction d1 to be less than 1 * 10 ^ -15 after several iterations, but the program stays busy.

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James Tursa
James Tursa am 31 Aug. 2020
Please post your code as regular text and highlight it with the CODE button. We can't run pictures.
Tamia Eli
Tamia Eli am 31 Aug. 2020
Bearbeitet: Matt J am 31 Aug. 2020
Sorry, it is this code:
clear
format LONGG
a=6373878;
f=1/297;
k0=0.9996;
e2=2*f-f^2;
e=sqrt(e2);
c0=1+((3/4)*(e^2))+((45/64)*(e^4))+((175/256)*(e^6))+((11025/16384)*(e^8))+((43659/65536)*(e^10));
c2=((3/4)*(e^2))+((15/16)*(e^4))+((525/512)*(e^6))+((2205/2048)*(e^8))+((72765/65536)*(e^10));
c4=((15/64)*(e^4))+((105/256)*(e^6))+((2205/4096)*(e^8))+((10395/16384)*(e^10));
c6=((35/512)*(e^6))+((315/2048)*(e^8))+((31185/131072)*(e^10));
c8=((315/16384)*(e^8))+((3465/65536)*(e^10));
c10=((693/131072)*(e^10));
x=483250.07981339
y=2303647.10551245
zone=39;
hemis='s';
if(strcmp(hemis,'n')||strcmp(hemis,'N'))
siglat=1;
else
if(strcmp(hemis,'s')||strcmp(hemis,'S'))
siglat=-1;
else
fprintf('Wrong');
end
end
if siglat==-1
y=y-10000000;
end
x=x-500000;
tt=1;
phi1=(y/k0)/(a*(1-e2)*c0);
while tt>1e-15
B1=a*(1-e2)*(c0*phi1-c2/2*sin(2*phi1)+c4/4*sin(4*phi1)-c6/6*sin(6*phi1)+c8/8*sin(8*phi1)-c10/10*sin(10*phi1));
d1=(y/k0)-B1;
d1r=d1/(a*(1-e2)*c0);
phi1=phi1+d1r;
tt=abs(d1);
end
phip=phi1 %phi'

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Bruno Luong
Bruno Luong am 31 Aug. 2020
Bearbeitet: Bruno Luong am 31 Aug. 2020

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"Hi, I have a problem, I want the subtraction d1 to be less than 1 * 10 ^ -15 after several iterations, but the program stays busy."
Well you cannot demand floating point error to be that small.
Double IEEE has about 15 digits relative precision. You compare B1 to (y/k0) which is -7699432.66755457. The most you can demand is error is about
>> tol = eps(y/k0)
tol =
9.31322574615479e-10
So if you replace the break condition by
tol = eps(y/k0);
while tt>tol
...
end
your while loop will stop.

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Tamia Eli
Tamia Eli am 31 Aug. 2020
Thank you, I could understand your answer.

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