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What does the following code mean in Ruby?

||=

Does it have any meaning or reason for the syntax?

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12 Answers 12

up vote 86 down vote accepted

This question has been discussed so often on the Ruby mailing-lists and Ruby blogs that there are now even threads on the Ruby mailing-list whose only purpose is to collect links to all the other threads on the Ruby mailing-list that discuss this issue.

Here's one: The definitive list of ||= (OR Equal) threads and pages

If you really want to know what is going on, take a look at Section 11.3.1.2 "Abbreviated assignments" of the Ruby Language Draft Specification.

As a first approximation,

a ||= b

is equivalent to

a || a = b

and not equivalent to

a = a || b

However, that is only a first approximation, especially if a is undefined. The semantics also differ depending on whether it is a simple variable assignment, a method assignment or an indexing assignment:

a    ||= b
a.c  ||= b
a[c] ||= b

are all treated differently.

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The second link has suffered from bit rot (comment from meta by stackoverflow.com/users/540162/nightfirecat). –  Andrew Grimm Oct 11 '11 at 4:13
30  
That's a very cryptic non-answer. The short answer seems to be: a ||= b means, if a is undefined then assign it the value of b, otherwise leave it alone. (Ok, there are nuances and special cases, but that's the basic case.) –  Steve Bennett Feb 1 '13 at 1:43
6  
@SteveBennett: I wouldn't call the fact that a = false; a ||= true does not do what your answer says it does a "nuance". –  Jörg W Mittag Feb 3 '13 at 21:33
    
Thanks @SteveBennett! –  Roy McKenzie Jan 18 at 0:07

The accepted answer is cryptic and sends the reader to external sources instead of answering directly, so I'll attempt an answer.

a ||= b

is a "conditional assignment operator". It is shorthand for a || a = b.

It means "if a is false, nil or undefined, then evaluate b and set a to the result". Ruby's short circuit evaluation means that if a is defined and evaluates to true, then the right hand side of the operator is not evaluated, and no assignment takes place. This distinction is unimportant if a and b are both local variables, but is significant if either is a getter/setter method of a class.

For example:

> a ||= 1;
=> 1
> a ||= 2;
=> 1

> foo = false;
=> false
> foo ||= true;
=> true
> foo ||= false;
=> true

Confusingly, it looks similar to other assignment operators (such as +=) but behaves differently.

a += b   →   a = a + b

a ||= b   →   a || a = b

There are apparently nuances, exceptions, special cases - but that's the essence of it. Please feel free to extend and improve this answer.

Further reading:

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10  
Thank you for this answer, it make much more sense. –  Tom Hert Oct 2 '13 at 23:04
4  
Best answer given! Thanks man! –  JGutierrezC Oct 28 '13 at 2:08
4  
This trumps the accepted answer. Thanks. –  Adam Waite Dec 6 '13 at 23:22
2  
@dtc, consider h = Hash.new(0); h[1] ||= 2. Now consider the two possible expansions h[1] = h[1] || 2 vs h[1] || h[1] = 2. Both expressions evaluate to 0 but the first unnecessarily increases the size of the hash. Perhaps that's why Matz chose to make ||= behave more like the second expansion. (I based this on an example from one of the threads linked to in another answer.) –  antinome Oct 10 '14 at 16:08
1  
I like the other answer for how in-depth it goes, but I love this answer for it's simplicity.For someone learning Ruby, this is the type of answer we need. If we knew what ||= meant, then the question would probably have been worded differently. –  OBCENEIKON Dec 5 '14 at 16:07

Concise and complete answer

a ||= b

is equivalent to each of the following lines

a || a = b
a ? a : a = b
if a then a else a = b end

-

On the other hand,

a = a || b

is equivalent to each of the following lines

a = a ? a : b
if a then a = a else a = b end
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are you certain? This implies that if a is false/zero/undefined, it is evaluated twice. (But I don't know Ruby, so I don't know if lvalues can be 'evaluated' exactly...) –  Steve Bennett Sep 19 '13 at 8:01
    
I see what you're saying. What I meant by two lines being equivalent is that the end state will be equivalent after the whole line has been evaluated, meaning the value of a, b and what is returned. Whether or not ruby interpreters use different states - like several evaluations of a - to get there is entirely possible. Any ruby interpreter experts out there? –  the_minted Oct 24 '13 at 12:57
    
This isn't quite right. a || a = b, a ? a : a = b, if a then a else a = b end, and if a then a = a else a = b end will throw an error if a is undefined, whereas a ||= b and a = a || b will not. Also, a || a = b, a ? a : a = b, if a then a else a = b end, a = a ? a : b, and if a then a = a else a = b end evaluate a twice when a is truthy, whereas a ||= b and a = a || b do not. –  Ajedi32 Dec 23 '14 at 19:41
    
*correction: a || a = b will not evaluate a twice when a is true. –  Ajedi32 Dec 23 '14 at 19:53
    
@the_minted the end state will be equivalent after the whole line has been evaluated That's not necessarily true though. What if a is a method? Methods can have side effects. E.g. With public; def a=n; @a=n; end; def a; @a+=1; end; self.a = 5, self.a ||= b will return 6, but self.a ? self.a : self.a = b will return 7. –  Ajedi32 Dec 23 '14 at 19:58

In short a||=b means: If a is evaluated to false (false, nil) or a is undefined, assign b to a. Otherwise, keep a intact.

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x ||= y

is

x || x = y

"if x is false or undefined, then x point to y"

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It means or-equals to. It checks to see if the value on the left is defined, then use that. If it's not, use the value on the right. You can use it in Rails to cache instance variables in models.

A quick Rails-based example, where we create a function to fetch the currently logged in user:

class User > ActiveRecord::Base

  def current_user
    @current_user ||= User.find_by_id(session[:user_id])
  end

end

It checks to see if the @current_user instance variable is set. If it is, it will return it, thereby saving a database call. If it's not set however, we make the call and then set the @current_user variable to that. It's a really simple caching technique but is great for when you're fetching the same instance variable across the application multiple times.

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8  
This is wrong. Please read Ruby-Forum.Com/topic/151660 and the links provided therein. –  Jörg W Mittag Mar 24 '10 at 4:01
1  
@Jo(umlaut)rg, I'm not seeing what is wrong about it. Your link is a list of other links. No real explanation why it's wrong, just sounds like a value judgment on your end. –  eggmatters Jun 4 '14 at 21:40
a ||= b

is equivalent to

a || a = b

and not

a = a || b

because of the situation where you define a hash with a default (the hash will return the default for any undefined keys)

a = Hash.new(true) #Which is: {}

if you use:

a[10] ||= 10 #same as a[10] || a[10] = 10

a is still:

{}

but when you write it like so:

a[10] = a[10] || 10

a becomes:

{10 => true}

because you've assigned the value of itself at key 10, which defaults to true, so now the hash is defined for the key 10, rather than never performing the assignment in the first place.

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Suppose a = 2 and b = 3

THEN, a ||= b will be resulted to a's value i.e. 2.

As when a evaluates to some value not resulted to false or nil.. That's why it ll not evaluate b's value.

Now Supoose a = nil and b = 3.

Then a ||= b will be resulted to 3 i.e. (b'value).

As it first try to evaluates a's value which resulted to nil.. so it evaluated b's value.

The best example used in ror app is :

#To get currently logged in iser
    def current_user
      @current_user ||= User.find_by_id(session[:user_id])
    end

   # Make current_user available in templates as a helper
   helper_method :current_user

Where, User.find_by_id(session[:user_id]) is fired if and only if @current_user is not initialized before.

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Such type of explanation works? :-) –  Pankhuri Aug 10 '13 at 8:03
    
merging and deleting the other one done.. :-) –  Pankhuri Aug 10 '13 at 9:05

It's like lazy instantiation. If the variable is already defined it will take that value instead of creating the value again.

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This the default assignment notation

for example: x ||= 1
this will check to see if x is nil or not. If x is indeed nil it will then assign it that new value (1 in our example)

more explicit:
if x == nil
x = 1
end

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irb(main):001:0> a = 1
=> 1
irb(main):002:0> a ||= 2
=> 1

Because a was already set to 1

irb(main):003:0> a = nil
=> nil
irb(main):004:0> a ||= 2
=> 2

Because a was nil

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To be precise, a ||= b means "if a is undefined or falsy (false or nil), assign a to b and evaluate to (i.e. return) b, otherwise evaluate to a".

Others often try to illustrate this by saying that a ||= b is equivalent to a || a = b or a = a || b. These equivalencies can be helpful for understanding the concept, but be aware that they are not accurate under all conditions. Allow me to explain:

  • a ||= ba || a = b?

    The behavior of these statements differs when a is an undefined local variable. In that case, a ||= b will set a to b (and evaluate to b), whereas a || a = b will raise NameError: undefined local variable or method 'a' for main:Object.

  • a ||= ba = a || b?

    The equivalency of these statements are often assumed, since a similar equivalence is true for other abbreviated assignment operators (i.e. +=,-=,*=,/=,%=,**=,&=,|=,^=,<<=, and >>=). However, for ||= the behavior of these statements may differ when a= is a method on an object and a is truthy. In that case, a ||= b will do nothing (other than evaluate to a), whereas a = a || b will call a=(a) on a's receiver. As others have pointed out, this can make a difference when calling a=a has side effects, such as adding keys to a hash.

  • a ||= ba = b unless a??

    The behavior of these statements differs only in what they evaluate to when a is truthy. In that case, a = b unless a will evaluate to nil (though a will still not be set, as expected), whereas a ||= b will evaluate to a.

  • a ||= bdefined?(a) ? (a || a = b) : (a = b)????

    Still no. These statements can differ when a method_missing method exists which returns a truthy value for a. In this case, a ||= b will evaluate to whatever method_missing returns, and not attempt to set a, whereas defined?(a) ? (a || a = b) : (a = b) will set a to b and evaluate to b.

Okay, okay, so what is a ||= b equivalent to? Is there a way to express this in Ruby?

Well, assuming that I'm not overlooking anything, I believe a ||= b is functionally equivalent to... (drumroll)

begin
  a = nil if false
  a || a = b
end

Hold on! Isn't that just the first example with a noop before it? Well, not quite. Remember how I said before that a ||= b is only not equivalent to a || a = b when a is an undefined local variable? Well, a = nil if false ensures that a is never undefined, even though that line is never executed. Local variables in Ruby are lexically scoped.

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