Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Similar to how you can define an integer constant in hexadecimal or octal, can I do it in binary?

I admit this is a really easy (and stupid) question. My google searches are coming up empty.

share|improve this question
2  
Just FYI, in pretty much every programming language, the idiom is to write binary constants in hex, and not the actual binary string. –  abyx Nov 7 '09 at 13:07
1  
Right, but I imagine that's because hex is the closest thing available, not because there's something wrong with binary. In languages I've used that do support binary literals, I don't think the convention is to ignore this feature. –  Ken Jul 10 '10 at 21:29
add comment

8 Answers

up vote 41 down vote accepted

There are no binary literals in Java, but I suppose that you could do this (though I don't see the point):

int a = Integer.parseInt("10101010", 2);
share|improve this answer
1  
Amongst other uses, the stippling pattern for line and polygon rasterization is specified as an integer in several popular graphics libraries. Using parseInt or parseShort allow the developer to easily visualize the pattern. –  charstar Feb 12 '11 at 6:36
1  
Since Java 7, Russ Hayward's answer is the correct answer. Prior to Java 7, you can use an online tool or your favorite calculator to convert binary to one of the notations recognized by old Java versions (octal, decimal, or hexadecimal). If another radix is used, a descriptive comment containing the binary representation can be placed at the declaration to clarify the value for readers. –  Jason C Nov 20 '13 at 1:19
add comment

In Java 7:

int i = 0b10101010;

There are no binary literals in older versions of Java (see other answers for alternatives).

share|improve this answer
13  
I'd also like to point out there can be _ characters to make the sequence more readable: int i = 0b1010_1010_0011; –  user12345613 Mar 8 '12 at 20:19
    
@Russ What does 0b signify here ? What is this feature called in Java 7 ? –  Geek Aug 23 '12 at 8:22
1  
0b signifies binary. The feature is called binary literals: docs.oracle.com/javase/7/docs/technotes/guides/language/… –  Russ Hayward Aug 23 '12 at 15:07
1  
Love this new representation of binary data. The String representation would be very hard to read. Look at the difference of the accepted answer and the one from "@user12345613". +1 for him. –  Marcello de Sales Nov 12 '13 at 20:10
    
What about Octeds? –  parsa porahmad Apr 14 at 14:05
add comment

The answer from Ed Swangren

public final static long mask12 = 
  Long.parseLong("00000000000000000000100000000000", 2);

works fine. I used long instead of int and added the modifiers to clarify possible usage as a bit mask. There are, though, two inconveniences with this approach.

  1. The direct typing of all those zeroes is error prone
  2. The result is not available in decimal or hex format at the time of development

I can suggest alternative approach

public final static long mask12 = 1L << 12;

This expression makes it obvious that the 12th bit is 1 (the count starts from 0, from the right to the left); and when you hover mouse cursor, the tooltip

long YourClassName.mask12 = 4096 [0x1000]

appears in Eclipse. You can define more complicated constants like:

public final static long maskForSomething = mask12 | mask3 | mask0;

or explicitly

public final static long maskForSomething = (1L<<12)|(1L<<3)|(1L<<0);

The value of the variable maskForSomething will still be available in Eclipse at development time.

share|improve this answer
    
Brilliant solution! (public final static long mask12 = 1L << 12;) –  Jyro117 Jul 24 '12 at 2:25
add comment

So, with the release of Java SE 7, binary notation comes standard out of the box. The syntax is quite straight forward and obvious if you have a decent understanding of binary:

byte fourTimesThree = 0b1100;
byte data = 0b0000110011;
short number = 0b111111111111111; 
int overflow = 0b10101010101010101010101010101011;
long bow = 0b101010101010101010101010101010111L;

And specifically on the point of declaring class level variables as binaries, there's absolutely no problem initializing a static variable using binary notation either:

public static final int thingy = 0b0101;

Just be careful not to overflow the numbers with too much data, or else you'll get a compiler error:

byte data = 0b1100110011; // Type mismatch: cannot convert from int to byte

Now, if you really want to get fancy, you can combine that other neat new feature in Java 7 known as numeric literals with underscores. Take a look at these fancy examples of binary notation with literal underscores:

int overflow = 0b1010_1010_1010_1010_1010_1010_1010_1011;
long bow = 0b1__01010101__01010101__01010101__01010111L;

Now isn't that nice and clean, not to mention highly readable?

I pulled these code snippets from a little article I wrote about the topic over at TheServerSide. Feel free to check it out for more details:

Java 7 and Binary Notation: Mastering the OCP Java Programmer (OCPJP) Exam

share|improve this answer
add comment

Using binary constants to masking

Declare constants:

public static final int FLAG_A = 1 << 0;
public static final int FLAG_B = 1 << 1;
public static final int FLAG_C = 1 << 2;
public static final int FLAG_D = 1 << 3;

and use them

if( (value & ( FLAG_B | FLAG_D )) != 0){
    // value has set FLAG_B and FLAG_D
}
share|improve this answer
add comment

Search for "Java literals syntax" on Google and you come up with some entries.

There is an octal syntax (prefix your number with 0), decimal syntax and hexadecimal syntax with a "0x" prefix. But no syntax for binary notation.

Some examples:

int i = 0xcafe ; // hexadecimal case
int j = 045 ;    // octal case
int l = 42 ;     // decimal case
share|improve this answer
add comment

Slightly more awkward answer:

public class Main {

    public static void main(String[] args) {
    	byte b = Byte.parseByte("10", 2);
        Byte bb = new Byte(b);
        System.out.println("bb should be 2, value is \"" + bb.intValue() + "\"" );
    }

}

which outputs [java] bb should be 2, value is "2"

share|improve this answer
add comment

If you want to mess around with lots of binary you could define some constants:

public static final int BIT_0 = 0x00000001;
public static final int BIT_1 = 0x00000002;

etc.

or

public static final int B_00000001 = 0x00000001;
public static final int B_00000010 = 0x00000002;
public static final int B_00000100 = 0x00000004;
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.