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    6.
Given:
>     1. public class LineUp {
>     2. public static void main(String[] args) {
>     3. double d = 12.345;
>     4. // insert code here
>     5. }
>     6. }

>

     Which code fragment, inserted at line 4, produces the output | 12.345|?
>     A. System.out.printf("|%7d| \n", d);
>     B. System.out.printf("|%7f| \n", d);
>     C. System.out.printf("|%3.7d| \n", d);
>     D. System.out.printf("|%3.7f| \n", d);
>     E. System.out.printf("|%7.3d| \n", d);
>     F. System.out.printf("|%7.3f| \n", d);
>     Answer: F

What is the interpretation of the printf statements , why is the |%7d| is giving illegalFormatConversionException ?

Thanks

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3 Answers 3

up vote 5 down vote accepted

Because d is a double and it can't be formatted as a decimal integer.You can't use the "d" format descriptor in case of floating-point variables, without an explicit cast in order to signal the fact that you are aware of the possible loss of precision.

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"...it can't be formatted as a decimal." It can't be formatted as a decimal integer. It can be formatted as a decimal. "Decimal" just means "base 10" and doesn't speak to integer vs. floating point. –  T.J. Crowder May 2 '11 at 17:18
1  
Thank you for the remark. –  Radu Stoenescu May 2 '11 at 17:21

Because %d formats an integer.

From the doc:

'd'     integral    The result is formatted as a decimal integer 
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The Formatter class's format() method takes a format string of the form:

%[argument_index$][flags][width][.precision]conversion

System.out.printnf() is a convenience method that uses the same arguments.

So %7d indicates a [width] of 7 and a [conversion] of d which is for integral types. In this example, the value being passed is a double which cannot be formatted as an integral type.

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