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Lets say I have a number 345, I want to have so that I end up with 0345. I.e.

int i = 0345;

How can I take an existing number and shift it along or append a 0.

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Why do you need the preceding 0? –  Poindexter Aug 11 '10 at 21:22
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do you mean you want to display the preceding 0 ? Because if you want to "store" the 0 in the integer, this doesn't make sense –  Keats Aug 11 '10 at 21:32
    
Do you need regex to modify your source code so that these decimal literals become octal? Do you want zero-padding when printing numbers? What is it that you actually want? –  polygenelubricants Aug 12 '10 at 8:27
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2 Answers

up vote 4 down vote accepted

I know you are talking about an int, but maybe what you want is to pad a number with leading 0s. A quick way is with the String.format static method.

int num = 345;    
String.format("%04d", num);

would return:

"0345"

The 4d tells it to add 0s to the left if it has less than 4 digits, so you can change it to a 5 and it would give you:

"00345"
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Using a 0 on the start of the number when declaring it means it's octal, so 0345 is actually 229 in decimal. I'm not sure how you expect to add a zero to a number using bitwise operations, which work on the binary representation of the number. If you want to add it to the decimal representation, it won't mean anything, since the number is always stored in binary, and the value is converted for your convenience to decimal when being displayed. When doing any computations, the decimal value is not important, only the binary one.

If you're interested only in displaying the value with a 0 at the start, then you could append the 0 to a String containing that number which can be easily done like this "0" + i.

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needs to be an int. –  James moore Aug 11 '10 at 21:28
    
I have Integer.parseInt("0"+575,8);, but its a little dirty. –  James moore Aug 11 '10 at 21:36
    
primitive values cannot contain preceding 0's like that. The value for 345 will actually be 00000000000000000000000101011001. That's what is used in all computations. When you actually see 345 the system gets this binary value and transforms it into a string to display. Otherwise it's always used like this. Adding a 0 to the decimal representation makes no sense here, you can only add it to the string value. 0345 and 345 would be identical in binary (the 0 in decimal doesn't add anything to the binary value). Perhaps make your question a little clearer if I didn't understand what you want? –  Andrei Fierbinteanu Aug 11 '10 at 21:41
    
Integer.parseInt("345") and Integer.parseInt("0345") both return the exact same value (345). The preceding 0 doesn't do anything here. –  Andrei Fierbinteanu Aug 11 '10 at 21:46
    
int i = Integer.parseInt("0"+575,8); and int i = 0575; are equivalent (as is int i = Integer.parseInt("575",8);). As A.F. stated, integer literals beginning with 0 are interpreted as octal (radix 8), which is the same thing that your parseInt method is doing. –  super_aardvark Aug 11 '10 at 21:54
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