+ 2
Where is the 5 goes?
printf("%08.3f", 17.3456); /* output: 0017.346*/ Why the output is 0017.346 and not 0017.345? And when i change it like this.. printf("%08.3f", 17.345); /* output: 0017.345*/ The output now is what i'm expected...
3 Antworten
+ 2
Because the next decimal is greater than 5
e.g.
4.1234 = 4.123
4.1267 = 4.127
And same with that case, you round the number into 3 decimal places
--> 17.3456
--> 17.345(6) <-(6 is greater than or equal to 5)
--> 17.34(5+1) <-(if next decimal is greater than 5 add 1 to the decimal to its left.
== 17.346
+ 5
Adding to what had been pointed out correctly early on, the number 17.3456 had 4 decimal points, but format specifier "%08.3f" allows only 3 decimal points, meaning, a rounding was in order.
Notice that by adding decimal point (to 4 points) in format speciifier we can get output as expected.
printf("%08.4f\n", 17.3456);
// 08.4f output 017.3456
// width 8 characters, pad with '0'
// where necessary, 4 decimal
// point allowed, type float
printf("%08.3f\n", 17.3456);
// 08.3f output: 0017.346
// width 8 characters, pad with '0'
// where necessary, 3 decimal
// point allowed, type float
P.S. The decimal separator '.' is also counted in width specifier.
+ 2
Because of the ".3f" it rounding your number.