366

I tried searching using Google Search and Stack Overflow, but it didn't show up any results. I have seen this in opensource library code:

Notification notification = new Notification(icon, tickerText, when);
notification.defaults |= Notification.DEFAULT_SOUND;
notification.defaults |= Notification.DEFAULT_VIBRATE;

What does "|=" ( pipe equal operator ) mean?

7
  • 6
    I wonder if adding something like pipe equal operator to this question or any other documentation on the topic wouldn't help people searching. Jan 13, 2013 at 9:59
  • 11
    @EJP are you guys talking about this docs. It clearly tells the docs lacks documentation about the use of this.
    – wtsang02
    Jan 16, 2013 at 2:34
  • 55
    Unless you knew it was called pipe equal, it's really difficult to search for without asking someone.
    – ataulm
    May 3, 2013 at 19:50
  • 2
    @ataulm indeed, spent some time googling around to come up with a term vertical bar which finally led me here.
    – ruuter
    Nov 21, 2016 at 22:38
  • 1
    Possible duplicate of What does the |= operator do in Java?
    – poring91
    May 8, 2017 at 3:00

6 Answers 6

453

|= reads the same way as +=.

notification.defaults |= Notification.DEFAULT_SOUND;

is the same as

notification.defaults = notification.defaults | Notification.DEFAULT_SOUND;

where | is the bit-wise OR operator.

All operators are referenced here.

A bit-wise operator is used because, as is frequent, those constants enable an int to carry flags.

If you look at those constants, you'll see that they're in powers of two :

public static final int DEFAULT_SOUND = 1;
public static final int DEFAULT_VIBRATE = 2; // is the same than 1<<1 or 10 in binary
public static final int DEFAULT_LIGHTS = 4; // is the same than 1<<2 or 100 in binary

So you can use bit-wise OR to add flags

int myFlags = DEFAULT_SOUND | DEFAULT_VIBRATE; // same as 001 | 010, producing 011

so

myFlags |= DEFAULT_LIGHTS;

simply means we add a flag.

And symmetrically, we test a flag is set using & :

boolean hasVibrate = (DEFAULT_VIBRATE & myFlags) != 0;
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  • 3
    Just like j += 1; is the same as j = j + 1;. Jan 12, 2013 at 16:44
  • 1
    @A.R.S.: I can't think of a counter-example in Java (maybe if j is volatile?), but I'll take your word for it. Jan 12, 2013 at 17:10
  • 6
    @DavidSchwartz See this
    – arshajii
    Jan 12, 2013 at 17:12
  • 3
    boolean hasVibrate = DEFAULT_VIBRATE & myFlags; - can you translate from int to boolean like that in Java? That would be valid in C, but I thought in Java it had to be written as boolean hasVibrate = ((DEFAULT_VIBRATE & myFlags) == DEFAULT_VIBRATE); Jan 12, 2013 at 19:59
  • 3
    @DavidSchwartz Wow, that comparison with += finally did the trick for me understanding it. Thanks!
    – C4d
    Sep 8, 2016 at 14:17
47

You have already got sufficient answer for your question. But may be my answer help you more about |= kind of binary operators.

I am writing table for bitwise operators:
Following are valid:

----------------------------------------------------------------------------------------
Operator   Description                                   Example
----------------------------------------------------------------------------------------
|=        bitwise inclusive OR and assignment operator   C |= 2 is same as C = C | 2
^=        bitwise exclusive OR and assignment operator   C ^= 2 is same as C = C ^ 2
&=        Bitwise AND assignment operator                C &= 2 is same as C = C & 2
<<=       Left shift AND assignment operator             C <<= 2 is same as C = C << 2
>>=       Right shift AND assignment operator            C >>= 2 is same as C = C >> 2  
----------------------------------------------------------------------------------------

note all operators are binary operators.

Also Note: (for below points I wanted to add my answer)

  • >>> is bitwise operator in Java that is called Unsigned shift
    but >>>= not an operator in Java. >>>= operator

  • ~ is bitwise complement bits, 0 to 1 and 1 to 0 (Unary operator) but ~= not an operator.

  • Additionally, ! Called Logical NOT Operator, but != Checks if the value of two operands are equal or not, if values are not equal then condition becomes true. e.g. (A != B) is true. where as A=!B means if B is true then A become false (and if B is false then A become true).

side note: | is not called pipe, instead its called OR, pipe is shell terminology transfer one process out to next..

1
  • 15
    I was under the impression that "pipe" was the name of the character, which is where the shell term came from. But, looking at Wikipedia, it's actually called a "vertical bar" and "pipe" is specific to shell commands. Just wanted to say thanks for adding that side note! Jul 6, 2014 at 4:51
30

I was looking for an answer on what |= does in Groovy and although answers above are right on they did not help me understand a particular piece of code I was looking at.

In particular, when applied to a boolean variable "|=" will set it to TRUE the first time it encounters a truthy expression on the right side and will HOLD its TRUE value for all |= subsequent calls. Like a latch.

Here a simplified example of this:

groovy> boolean result  
groovy> //------------ 
groovy> println result           //<-- False by default
groovy> println result |= false 
groovy> println result |= true   //<-- set to True and latched on to it
groovy> println result |= false 

Output:

false
false
true
true

Edit: Why is this useful?

Consider a situation where you want to know if anything has changed on a variety of objects and if so notify some one of the changes. So, you would setup a hasChanges boolean and set it to |= diff (a,b) and then |= dif(b,c) etc. Here is a brief example:

groovy> boolean hasChanges, a, b, c, d 
groovy> diff = {x,y -> x!=y}  
groovy> hasChanges |= diff(a,b) 
groovy> hasChanges |= diff(b,c) 
groovy> hasChanges |= diff(true,false) 
groovy> hasChanges |= diff(c,d) 
groovy> hasChanges 

Result: true
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  • 19
    Yep, the same holds in Java. But it worth noting that such OR operation y|=expr is not short-circuit (unlike y = y || expr), meaning that expr always evaluated. This was not obvious for me for the first time :) So it is important to note before refactoring that replacement y|=expry=y||x is not semantically equivalent in case expr actually has side effects.
    – NIA
    Aug 30, 2017 at 14:04
  • 2
    And, having this in mind, in your case with hasChanges it would probably be better to prefer y=y||x form to benefit from short-ciruit, because when you found any change it is not actually needed to do susequent diffs because you already know the answer. (Especially important in real life situation when compared objects are complicated and diffing them them is not quite fast)
    – NIA
    Aug 30, 2017 at 14:12
  • @NIA Thanks for the up vote. Yes I agree with your point about short circuiting.
    – dbrin
    Aug 31, 2017 at 14:59
  • 2
    @FranklinYu of course not implementation detail. Non-short-circuitness is not specifically mentioned at the place you referenced just because it is not the peculiarity - it is the default and normal behavior for most of operators. The peculiarity is actually the short-circutiness of || and &&, and in corresponding sections 15.23 and 15.24 of specification this fact is clearly declared, and this difference from | and & is emphasized.
    – NIA
    Sep 12, 2018 at 17:34
  • 2
    @FranklinYu So I think there was no need to say something about this again below in section you referenced (15.26.2 "Compund assignment operators") just because compond assignments are simply always non-short-circuit (there are no ||= and &&= operators which would break the rule and require special mentioning).
    – NIA
    Sep 12, 2018 at 17:36
16

It's a shortening for this:

notification.defaults = notification.defaults | Notification.DEFAULT_SOUND;

And | is a bit-wise OR.

10

| is the bitwise-or operator, and it is being applied like +=.

5

Note: ||= does not exist. (logical or) You can use

y= y || expr; // expr is NOT evaluated if y==true

or

y = expr ? true : y;  // expr is always evaluated.
2
  • 11
    Not quite complete: you still can use y |= expr with booleans and it gives the same result on y as your variants with the important note that it is not short-curtuit, meaning that expr is always evaluated, even in case of y==true
    – NIA
    Aug 30, 2017 at 13:54
  • simplified version: y = expr || y; // expr is always evaluated.
    – Dmytro
    Dec 28, 2021 at 21:34

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