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I am trying to divide an integer by a double value but i believe its losing precision..

#include <cmath>
#include <cstdio>
int main()
    double t=5465/54.0;
    double t1=(double)5465/(double)(t);
    double t3 = 5465.0/101.203;
    printf("%lf %lf %lf\n",t,t1,t3);
    return 0;

For the above code value of t3 = 54.0003 is as expected but for t1 it becomes 54 instead of getting same value as t3. I can't get what mistake am i doing

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closed as too localized by Steve Jessop, BЈовић, Jonathan Leffler, jogojapan, MSalters Oct 22 '12 at 10:33

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5465/(5465/54.0) is equal to 54, so I don't see why you are surprised that you get that result. You get exactly the expected result. – sth Oct 21 '12 at 20:19

2 Answers 2

up vote 4 down vote accepted

The value of 5465/54.0 is 101.203703704 (to 9 decimal places). In your code you are using this

 double t3 = 5465.0/101.203;

truncating the result of

 double t=5465/54.0;

to 101.203 for some unknown reason. Therefore you are calculating 2 different values as a result of the truncation. Essentially you are expecting these 2 calculations to be the same but

 5465.0/101.203 != 5465/101.203703704
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Thanks .. i got the result also by not rounding off ..i.e making t = 5465/54 – pranay Oct 21 '12 at 20:38

Of course the results are going to differ. You used 101.203 instead of 101.203703704.

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