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Obviously this is just a fraction of the code.

printf("Please enter a positive number that has a fractional part with three or more decimal places\n");
scanf("%5.2d", &x);
printf("The number you have entered is %5.2d\n" ,x);

Would this automatically round the number I type in? Or is there another way to do this?

Edit:

printf("Please enter a positive number that has a fractional part with three or more decimal places\n");
scanf("%lf", &x);
x = x + 0.05;
printf( "The number you have entered is %5.2lf\n", x);

Iv done this, but Im taking into consideration what someone had said about printf just "changing" the way it reads out. So this is obviously not the right way. Should I implement maybe the pow() function? Will that work with this somehow?

Edit2:

printf("Please enter a positive number that has a fractional part with three or more decimal places\n");
scanf("%lf", &x);
x = x + 0.05;
printf( "The number you have entered is %5.2lf\n", x);

Okay, iv gotten to the point where if i imput a number it will round to a whole number. 35.21 will round to 35, and 35.51 will round to 36 et. etc.

How would I get 35.2178 to round to 35.22, and 35.2135 to round to 35.21. How would I get the certain powers of the decimal to round instead of the whole number?

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Have you tried this out? –  ChrisF Sep 30 '09 at 20:45
    
Is x an int or a double? –  Michael Myers Sep 30 '09 at 20:45
    
I have tried it, and it only works some of the time. Is there another way of going about doing this? I'm relatively new to C. –  Chandler Sep 30 '09 at 20:46
    
X is a double in this –  Chandler Sep 30 '09 at 20:46
    
Then you shouldn't have said it was an integer. Or did you mean "round to an integer"? –  Michael Myers Sep 30 '09 at 20:48
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5 Answers

up vote 3 down vote accepted

You really, really should not store "rounded" values in floating point variables. Floating point inaccuracy will ruin this - your 5.10 might become 5.099999999941892 simply because the implementation might not be able to store 5.10 exactly.

As an alternative, read the whole number, multiply it with 100 and convert it to int (which will round it towards zero). That will keep your calculations accurate.

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So what is an alternative? –  Chandler Sep 30 '09 at 20:57
    
Added a suggestion –  hrnt Sep 30 '09 at 21:01
    
should i use the pow() function then in that case? –  Chandler Sep 30 '09 at 21:11
    
Use pow() for what? –  hrnt Sep 30 '09 at 21:16
    
I've got it to round to whole numbers, I's just curious now as to how to round it to certain decimal places. Would I use the pow() function? –  Chandler Sep 30 '09 at 21:24
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"%.2f" will round a double to 2 digits. A double is not an integer, and %d and %f are not interchangeable.

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So is that where my problem is? I should have %f instead of %d? –  Chandler Sep 30 '09 at 20:51
    
@Chandler Yes, if the variable you're printing is of type double, you should use "%f". –  Tim Sylvester Oct 1 '09 at 0:04
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printf won't change the value of the number, just how it is displayed. An alternative is

#include <math.h>

// round  double x  to 2 decimal places
x = 0.01 * floor(x * 100.0 + 0.5);
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This doesn't make sense

scanf("%5.2d", &x);

You can't have an integer with numbers after the decmal point. if x is a flat then weird things will happen. If its an integer why are you after 2 decimal places in the printf.

What exactly are you trying to do?

Edit:

double x;
printf( "Please enter a positive number that has a fractional part with three or more decimal places\n" );
scanf( "%lf", &x );
printf( "The number you have entered is %5.2f\n", x + 0.005 );

I'm pretty sure printf only truncates. So you will need to add 0.005 to round it.

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Im trying to round a number that is 3 decimal places long. Lets say I input 5.092697436 I want that to round to 5.10 –  Chandler Sep 30 '09 at 20:48
    
Alright I tried this, but it keeps spitting .05 back at me. Please enter a positive number that has a fractional part with three or more decimal places 5.698 The number you have entered is 0.05 –  Chandler Sep 30 '09 at 21:03
1  
Use %lf for scanning doubles. %f only works with floats. –  hrnt Sep 30 '09 at 21:03
    
I thought %f was for doubles and floats. I thought internally printf used doubles, or is that a windows only thing? –  Goz Sep 30 '09 at 21:11
1  
Yes, %f is for doubles and floats with printf (because of the vararg argument promotion rules). For scanf, %f is for floats and %lf is for doubles. –  hrnt Sep 30 '09 at 21:17
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{

float x;
float rounded_x;

printf("Please enter a positive number that has a fractional part with three or more decimal places\n");
scanf("%f", &x);
rounded_x = ((int)(x * 100 + .5) / 100.0);

printf( "The number you have entered is %.2f\n", rounded_x);
return 0;

}

Thank you to everyone who tried to help! I finally got it

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