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I want to store 1.222 in the variable a.But when i print it is showing me 1.222000 which

means that the variable a is stored as 1.222000.But i want to store the value as 1.222 in

a. and also i want only 1.22 to be copied to b when assign a=b. Please help me to

understand how to do it.

int main()
{
    float a=1.222,b;
    b=a;//(but b=1.22 and not b=1.222) how to cut the last number 2
    printf("%f\t%f",a,b);
    return 0;
}
share|improve this question
2  
But these are the same! It's a printing issue, not storage issue. – sidyll Aug 18 '11 at 16:52
    
Actually, the value is probably not stored as 1.222000 due to limited floating-point accuracy. – Jonathan Grynspan Aug 18 '11 at 16:53
up vote 2 down vote accepted

You can't simply tell a float to lose some digits of precision during an assignment, you'll have to do some type casting to get the intended result. For instance, to preserve only 2 digits of precision:

int main()
{
    float a=1.222,b;
    b= ((long)(a * 100)) / 100.0;
    printf("%f\t%f",a,b);
    return 0;
}
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1  
:Thanks for making me to understand. – Angus Aug 18 '11 at 17:12
    
@Angus: You can only approximate storing 2 decimal digits in a float object (unless your implementation uses decimal floating-point, which is unlikely). For example, the actual value stored in b is probably 1.2200000286102294921875. – Keith Thompson Sep 22 '13 at 20:35

You can't easily change the storage value, as that's the amount of allocated memory, and that's determined by the data type and system. To print two decimal places, use

printf("%.2f, %.2f", a, b);
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You can't change out it is stored and your issue has nothing to do with how it is stored. You have a printing issue.

If you want to remove the extra zeroes, change %f to %g. But this will print 1.222.

If you want to print 1.22 and not 1.222 then change it to %.2f instead of %f.

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:Thanks for explaining.How do i store b=a where 1.22 of a gets stored and not 1.222 which is actual a's value. – Angus Aug 18 '11 at 16:53
    
@Beata: 1.22 is a repeating number. – user195488 Aug 18 '11 at 16:54
    
@Beata: b=((int)a*100)/100 – sidyll Aug 18 '11 at 16:58
    
@sidyll:b=((int)(a*100)/100.0)... a*100 =122.2/100.0 ... how that last 2 got eliminated.why do we typecast the result we got to int. – Angus Aug 18 '11 at 17:03
    
@Beata: thanks, indeed the last 100 should be 100.0, my bad. The trick is exactly in the cast. When you cast an floating point number to an int, it gets truncated (decimal part eliminated). So 1.222 x 100 gives 122.2, then we cast into an int and it becomes 122. Finally, dividing by 100.0 will promote it to an floating point again and result in 1.22. b=((int)a*100)/100.0 – sidyll Aug 18 '11 at 17:09

If you want to round the number itself:

b=round(100*a)/100;
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