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@user.update_languages(params[:language][:language1], 
                       params[:language][:language2], 
                       params[:language][:language3])
lang_errors = @user.errors
logger.debug "--------------------LANG_ERRORS----------101-------------" 
                + lang_errors.full_messages.inspect

if params[:user]
  @user.state = params[:user][:state]
  success = success & @user.save
end
logger.debug "--------------------LANG_ERRORS-------------102----------" 
                + lang_errors.full_messages.inspect

if lang_errors.full_messages.empty?

@user object adds errors to the lang_errors variable in the update_lanugages method. when I perform a save on the @user object I lose the errors that were initially stored in the lang_errors variable.

Though what I am attempting to do would be more of a hack (which does not seem to be working). I would like to understand why the variable values are washed out. I understand pass by reference so I would like to know how the value can be held in that variable without being washed out.

share|improve this question
    
I also notice that I am able to retain that value in a cloned object – Sid Dec 9 '09 at 7:13
1  
You should look at Abe Voelker answer. But after running around the block on this, here's how I would say it. when you pass an object Foo to a procedure, a copy of the reference to the object is passed, bar, Pass by value. you cannot change the object that the Foo points to, but you can change the contents of the object that it points to. So if you pass an array, the contents of the array can be changed, but you cannot change what array is being referenced. nice to be able to use the methods of Foo without having to worry about messing up other dependencies on Foo. – bobbdelsol Jan 10 '14 at 2:02

11 Answers 11

up vote 139 down vote accepted

In traditional terminology, Ruby is strictly pass-by-value. But that's not really what you're asking here.

Ruby doesn't have any concept of a pure, non-reference value, so you certainly can't pass one to a method. Variables are always references to objects. In order to get an object that won't change out from under you, you need to dup or clone the object you're passed, thus giving an object that nobody else has a reference to. (Even this isn't bulletproof, though — both of the standard cloning methods do a shallow copy, so the instance variables of the clone still point to the same objects that the originals did. If the objects referenced by the ivars mutate, that will still show up in the copy, since it's referencing the same objects.)

share|improve this answer
3  
Yes, the clone is a completely independent object. As for pass-by-value, it's not really compatible with pure OO, where "values" don't exist except as object state. The closest you could get is something like Objective-C's bycopy type modifier that tells the runtime to make a copy behind the scenes. That does sound useful. – Chuck Dec 9 '09 at 8:39
51  
Ruby is pass-by-value. No ifs. No buts. No exceptions. If you want to know whether Ruby (or any other language) is pass-by-reference or pass-by-value, just try it out: def foo(bar) bar = 'reference' end; baz = 'value'; foo(baz); puts "Ruby is pass-by-#{baz}". – Jörg W Mittag Apr 26 '12 at 9:26
35  
@JörgWMittag: Yeah, but the OP's confusion is actually not pass-by-value or pass-by-reference in the strict CS sense of the words. What he was missing is that the "values" you're passing are references. I felt that just saying "It's pass-by-value" would be pedantic and do the OP a disservice, as that isn't actually what he meant. But thanks for the clarification, because it is important for future readers and I should have included it. (I'm always torn between including more info and not confusing people.) – Chuck Apr 26 '12 at 14:53
5  
Disagreeing with @Jorg. Ruby is pass by reference, he just changes the reference. Try this instead: def foo(bar) bar.replace 'reference' end; baz = 'value'; foo(baz); puts "Ruby is pass-by-#{baz}" – pguardiario Aug 18 '12 at 10:31
10  
@pguardiario: I think it's really just a question of definitions. You're using a definition of "pass-by-reference" that you've personally come up with, while Jörg is using the traditional computer science definition. Of course, it is none of my business to tell you how to use words — I just think it's important to explain what the term normally means. In traditional terminology, Ruby is pass-by-value, but the values themselves are references. I totally understand why you and the OP like to think of this as pass-by-reference — it's just not the traditional meaning of the term. – Chuck Aug 20 '12 at 18:22

The other answerers are all correct, but a friend asked me to explain this to him and what it really boils down to is how Ruby handles variables, so I thought I would share some simple pictures / explanations I wrote for him (apologies for the length and probably some oversimplification):


Q1: What happens when you assign a new variable str to a value of 'foo'?

str = 'foo'
str.object_id # => 2000

enter image description here

A: A label called str is created that points at the object 'foo', which for the state of this Ruby interpreter happens to be at memory location 2000.


Q2: What happens when you assign the existing variable str to a new object using =?

str = 'bar'.tap{|b| puts "bar: #{b.object_id}"} # bar: 2002
str.object_id # => 2002

enter image description here

A: The label str now points to a different object.


Q3: What happens when you assign a new variable = to str?

str2 = str
str2.object_id # => 2002

enter image description here

A: A new label called str2 is created that points at the same object as str.


Q4: What happens if the object referenced by str and str2 gets changed?

str2.replace 'baz'
str2 # => 'baz'
str  # => 'baz'
str.object_id # => 2002
str2.object_id # => 2002

enter image description here

A: Both labels still point at the same object, but that object itself has mutated (its contents have changed to be something else).


How does this relate to the original question?

It's basically the same as what happens in Q3/Q4; the method gets its own private copy of the variable / label (str2) that gets passed in to it (str). It can't change which object the label str points to, but it can change the contents of the object that they both reference to contain else:

str = 'foo'

def mutate(str2)
  puts "str2: #{str2.object_id}"
  str2.replace 'bar'
  str2 = 'baz'
  puts "str2: #{str2.object_id}"
end

str.object_id # => 2004
mutate(str) # str2: 2004, str2: 2006
str # => "bar"
str.object_id # => 2004
share|improve this answer
4  
Great reply, love the pictures! Definitely helped me grasp how ruby handles value/reference in a couple minutes. Granted, I knew when I wrote Ruby 4 yrs ago and completely forgot. :) – Jason Aug 26 '12 at 1:17
    
@Jason Glad you found it useful! – Abe Voelker Aug 28 '12 at 15:00
5  
Wish I could favourite an answer! Very nice, respect. – Ian Vaughan Jun 2 '13 at 20:20
3  
Answers like this always make me wonder why community-rank does not cause an answer to be ordered at-least below the accepted answer. – New Alexandria Sep 18 '13 at 22:11
1  
Robert Heaton also blogged about this lately: robertheaton.com/2014/07/22/… – Michael Renner Dec 11 '14 at 2:33

Is Ruby pass by reference or by value?

Ruby is pass-by-value. Always. No exceptions. No ifs. No buts.

Here is a simple program which demonstrates that fact:

def foo(bar)
  bar = 'reference'
end

baz = 'value'

foo(baz)

puts "Ruby is pass-by-#{baz}"
# Ruby is pass-by-value
share|improve this answer
13  
@DavidJ.: "The mistake here is that the local parameter is reassigned (pointed to a new place in memory)" – That's not a mistake, that's the definition of pass-by-value. If Ruby were pass-by-reference, then reassignment to the local method argument binding in the callee would also have reassigned the local variable binding in the caller. Which it didn't. Ergo, Ruby is pass-by-value. The fact that if you change a mutable value, the value changes is completely irrelevant, that's just how mutable state works. Ruby is not a pure functional language. – Jörg W Mittag May 22 '12 at 11:15
4  
Thanks to Jörg to defend the true definition of "pass-by-value". It's clearly melting our brain when the value is in fact a reference, though ruby always pass by-value. – Douglas Feb 19 '13 at 13:00
2  
This is sophistry. The practical distinction between "pass by value" and "pass by reference" is a semantic, not a syntactic one. Would you say that C arrays are pass-by-value? Of course not, even though when you pass the name of an array to a function you are passing an immutable pointer, and only the data to which the pointer refers can be mutated. Clearly value types in Ruby are passed by value, and reference types are passed by reference. – dodgethesteamroller Oct 29 '13 at 0:14
2  
@dodgethesteamroller: Both Ruby and C are pass-by-value. Always. No exceptions, not ifs no buts. The distinction between pass-by-value and pass-by-reference is whether you pass the value the reference points to or pass the reference. C always passes the value, never the reference. The value may or may not be a pointer, but what the value is is irrelevant to whether it is being passed in the first place. Ruby also always passes the value, never the reference. That value is always a pointer, but again, that is irrelevant. – Jörg W Mittag Oct 29 '13 at 0:39
13  
This answer, while strictly speaking true, is not very useful. The fact that the value being passed is always a pointer is not irrelevant. It is a source of confusion for people who are trying to learn, and your answer does absolutely nothing to help with that confusion. – user788472 Dec 3 '13 at 23:53

There are already some great answers, but I want to post the definition of a pair of authorities on the subject, but also hoping someone might explain what said authorities Matz (creator of Ruby) and David Flanagan meant in their excellent O'Reilly book, The Ruby Programming Language.

[from 3.8.1: Object References]

When you pass an object to a method in Ruby, it is an object reference that is passed to the method. It is not the object itself, and it is not a reference to the reference to the object. Another way to say this is that method arguments are passed by value rather than by reference, but that the values passed are object references.

Because object references are passed to methods, methods can use those references to modify the underlying object. These modifications are then visible when the method returns.

This all makes sense to me until that last paragraph, and especially that last sentence. This is at best misleading, and at worse confounding. How, in any way, could modifications to that passed-by-value reference change the underlying object?

share|improve this answer
1  
Because the reference isn't getting modified; the underlying object is. – dodgethesteamroller Oct 29 '13 at 0:10
1  
This is the best answer imho. – Agis Mar 6 '14 at 12:03
1  
Because the object is mutable. Ruby is not a purely functional language. This is completely orthogonal to pass-by-reference vs. pass-by-value (except for the fact that in a purely functional language, pass-by-value and pass-by-reference always yield the same results, so the language could use either or both without you ever knowing). – Jörg W Mittag Sep 19 '14 at 9:14
    
A good example would be if instead of a variable assignment in a function, you look at the case of passing a hash to a function and doing a merge! on the passed hash. The original hash ends up modified. – elc Jul 20 '15 at 16:59

Ruby uses "pass by object reference"

(Using Python's terminology.)

To say Ruby uses "pass by value" or "pass by reference" isn't really descriptive enough to be helpful. I think as most people know it these days, that terminology ("value" vs "reference") comes from C++.

In C++, "pass by value" means the function gets a copy of the variable and any changes to the copy don't change the original. That's true for objects too. If you pass an object variable by value then the whole object (including all of its members) get copied and any changes to the members don't change those members on the original object. (It's different if you pass a pointer by value but Ruby doesn't have pointers anyway, AFAIK.)

class A {
  public:
    int x;
};

void inc(A arg) {
  arg.x++;
  printf("in inc: %d\n", arg.x); // => 6
}

void inc(A* arg) {
  arg->x++;
  printf("in inc: %d\n", arg->x); // => 1
}

int main() {
  A a;
  a.x = 5;
  inc(a);
  printf("in main: %d\n", a.x); // => 5

  A* b = new A;
  b->x = 0;
  inc(b);
  printf("in main: %d\n", b->x); // => 1

  return 0;
}

Output:

in inc: 6
in main: 5
in inc: 1
in main: 1

In C++, "pass by reference" means the function gets access to the original variable. It can assign a whole new literal integer and the original variable will then have that value too.

void replace(A &arg) {
  A newA;
  newA.x = 10;
  arg = newA;
  printf("in replace: %d\n", arg.x);
}

int main() {
  A a;
  a.x = 5;
  replace(a);
  printf("in main: %d\n", a.x);

  return 0;
}

Output:

in replace: 10
in main: 10

Ruby uses pass by value (in the C++ sense) if the argument is not an object. But in Ruby everything is an object, so there really is no pass by value in the C++ sense in Ruby.

In Ruby, "pass by object reference" (to use Python's terminology) is used:

  • Inside the function, any of the object's members can have new values assigned to them and these changes will persist after the function returns.*
  • Inside the function, assigning a whole new object to the variable causes the variable to stop referencing the old object. But after the function returns, the original variable will still reference the old object.

Therefore Ruby does not use "pass by reference" in the C++ sense. If it did, then assigning a new object to a variable inside a function would cause the old object to be forgotten after the function returned.

class A
  attr_accessor :x
end

def inc(arg)
  arg.x += 1
  puts arg.x
end

def replace(arg)
  arg = A.new
  arg.x = 3
  puts arg.x
end

a = A.new
a.x = 1
puts a.x  # 1

inc a     # 2
puts a.x  # 2

replace a # 3
puts a.x  # 2

puts ''

def inc_var(arg)
  arg += 1
  puts arg
end

b = 1     # Even integers are objects in Ruby
puts b    # 1
inc_var b # 2
puts b    # 1

Output:

1
2
2
3
2

1
2
1

* This is why, in Ruby, if you want to modify an object inside a function but forget those changes when the function returns, then you must explicitly make a copy of the object before making your temporary changes to the copy.

share|improve this answer
    
Nice answer Bro! – flyer88 Dec 16 '14 at 17:17
    
Thank you flyer88! – David Winiecki Dec 17 '14 at 15:55

Is Ruby pass by reference or by value?

Ruby is pass-by-reference. Always. No exceptions. No ifs. No buts.

Here is a simple program which demonstrates that fact:

def foo(bar)
  bar.object_id
end

baz = 'value'

puts "#{baz.object_id} Ruby is pass-by-reference #{foo(baz)} because object_id's (memory addresses) are always the same ;)"

=> 2279146940 Ruby is pass-by-reference 2279146940 because object_id's (memory addresses) are always the same ;)

def bar(babar)
  babar.replace("reference")
end

bar(baz)

puts "some people don't realize it's reference because local assignment can take precedence, but it's clearly pass-by-#{baz}"

=> some people don't realize it's reference because local assignment can take precedence, but it's clearly pass-by-reference

share|improve this answer
    
This is the only correct answer and presents some nice gotchas: Try a = 'foobar' ; b = a ; b[5] = 'z', both a and b will get modified. – Martijn Feb 10 '14 at 12:55
1  
@Martijn: your argument is not entirely valid. Let's go through your code statement by statement. a = 'foobar' creates a new reference pointing to 'foobar'. b = a creates a second reference to the same data as a. b[5] = 'z' changes the sixth character of the value referenced by b to a 'z' (the value which is coincidentally also referenced by a gets changed). That's why "both get modified" in your terms, or more precisely, why "the value referenced by both variables gets modified". – Lukas_Skywalker May 28 '14 at 13:07
1  
You are not doing anything with the reference in your bar method. You are simply modifying the object that the reference points to, but not the reference itself. They only way to modify references in Ruby is by assignment. You cannot modify references by calling methods in Ruby because methods can only be called on objects and references are not objects in Ruby. Your code sample demonstrates that Ruby has shared mutable state (which is not under discussion here), it does however nothing to illuminate the distinction between pass-by-value and pass-by-reference. – Jörg W Mittag Feb 15 '15 at 17:13
    
When someone asks whether a language is "pass-by-reference" they usually want to know when you pass something to a function and the function modifies it, will it be modified outside the function. For Ruby the answer is 'yes'. This answer is helpful in demonstrating that, @JörgWMittag's answer is extremely unhelpful. – Toby 1 Kenobi Dec 9 '15 at 1:33
    
@Toby1Kenobi: You are of course free to use your own personal definition of the term "pass-by-value" which is different from the common, widely-used definition. However, if you do so, you should be prepared for people to be confused, especially if you neglect to disclose the fact that you are talking about a very different, in some aspects even opposite notion than everybody else does. In particular, "pass-by-reference" is not concerned with whether or not the "something" that is passed can be modified, but rather with what that "something" is, in particular, whether it is the reference … – Jörg W Mittag Dec 9 '15 at 2:19

Ruby is pass-by-value in a strict sense, BUT the values are references.

This could be called "pass-reference-by-value". This article has the best explanation I have read: http://robertheaton.com/2014/07/22/is-ruby-pass-by-reference-or-pass-by-value/

Pass-reference-by-value could briefly be explained as follows:

A function receives a reference to (and will access) the same object in memory as used by the caller. However, it does not receive the box that the caller is storing this object in; as in pass-value-by-value, the function provides its own box and creates a new variable for itself.

The resulting behavior is actually a combination of the classical definitions of pass-by-reference and pass-by-value.

share|improve this answer

Parameters are a copy of the original reference. So, you can change values, but cannot change the original reference.

share|improve this answer
1  
most concise correct answer – Toby 1 Kenobi Dec 9 '15 at 10:13

Ruby is interpreted. Variables are references to data, but not the data itself. This facilitates using the same variable for data of different types.

Assignment of lhs = rhs then copies the reference on the rhs, not the data. This differs in other languages, such as C, where assignment does a data copy to lhs from rhs.

So for the function call, the variable passed, say x, is indeed copied into a local variable in the function, but x is a reference. There will then be two copies of the reference, both referencing the same data. One will be in the caller, one in the function.

Assignment in the function would then copy a new reference to the function's version of x. After this the caller's version of x remains unchanged. It is still a reference to the original data.

In contrast, using the .replace method on x will cause ruby to do a data copy. If replace is used before any new assignments then indeed the caller will see the data change in its version also.

Similarly, as long as the original reference is in tact for the passed in variable, the instance variables will be the same that the caller sees. Within the framework of an object, the instance variables always have the most up to date reference values, whether those are provided by the caller or set in the function the class was passed in to.

The 'call by value' or 'call by reference' is muddled here because of confusion over '=' In compiled languages '=' is a data copy. Here in this interpreted language '=' is a reference copy. In the example you have the reference passed in followed by a reference copy though '=' that clobbers the original passed in reference, and then people talking about it as though '=' were a data copy.

To be consistent with definitions we must keep with '.replace' as it is a data copy. From the perspective of '.replace' we see that this is indeed pass by reference. Furthermore, if we walk through in the debugger, we see references being passed in, as variables are references.

However if we must keep '=' as a frame of reference, then indeed we do get to see the passed in data up until an assignment, and then we don't get to see it anymore after assignment while the caller's data remains unchanged. At a behavioral level this is pass by value as long as we don't consider the passed in value to be composite - as we won't be able to keep part of it while changing the other part in a single assignment (as that assignment changes the reference and the original goes out of scope). There will also be a wart, in that instance variables in objects will be references, as are all variables. Hence we will be forced to talk about passing 'references by value' and have to use related locutions.

share|improve this answer

Try this:--

1.object_id
#=> 3

2.object_id
#=> 5

a = 1
#=> 1
a.object_id
#=> 3

b = 2
#=> 2
b.object_id
#=> 5

identifier a contains object_id 3 for value object 1 and identifier b contains object_id 5 for value object 2.

Now do this:--

a.object_id = 5
#=> error

a = b
#value(object_id) at b copies itself as value(object_id) at a. value object 2 has object_id 5
#=> 2

a.object_id 
#=> 5

Now, a and b both contain same object_id 5 which refers to value object 2. So, Ruby variable contains object_ids to refer to value objects.

Doing following also gives error:--

c
#=> error

but doing this won't give error:--

5.object_id
#=> 11

c = 5
#=> value object 5 provides return type for variable c and saves 5.object_id i.e. 11 at c
#=> 5
c.object_id
#=> 11 

a = c.object_id
#=> object_id of c as a value object changes value at a
#=> 11
11.object_id
#=> 23
a.object_id == 11.object_id
#=> true

a
#=> Value at a
#=> 11

Here identifier a returns value object 11 whose object id is 23 i.e. object_id 23 is at identifier a, Now we see an example by using method.

def foo(arg)
  p arg
  p arg.object_id
end
#=> nil
11.object_id
#=> 23
x = 11
#=> 11
x.object_id
#=> 23
foo(x)
#=> 11
#=> 23

arg in foo is assigned with return value of x. It clearly shows that argument is passed by value 11, and value 11 being itself an object has unique object id 23.

Now see this also:--

def foo(arg)
  p arg
  p arg.object_id
  arg = 12
  p arg
  p arg.object_id
end

#=> nil
11.object_id
#=> 23
x = 11
#=> 11
x.object_id
#=> 23
foo(x)
#=> 11
#=> 23
#=> 12
#=> 25
x
#=> 11
x.object_id
#=> 23

Here, identifier arg first contains object_id 23 to refer 11 and after internal assignment with value object 12, it contains object_id 25. But it does not change value referenced by identifier x used in calling method.

Hence, Ruby is pass by value and Ruby variables do not contain values but do contain reference to value object.

share|improve this answer

It should be noted that you do not have to even use the "replace" method to change the value original value. If you assign one of the hash values for a hash, you are changing the original value.

def my_foo(a_hash)
  a_hash["test"]="reference"
end;

hash = {"test"=>"value"}
my_foo(hash)
puts "Ruby is pass-by-#{hash["test"]}"
share|improve this answer
    
Another thing I found. If you are passing a numeric type, all numeric type are immutable, and thus ARE pass by value. The replace function that worked with the string above, does NOT work for any of the numeric types. – Don Carr Mar 28 '14 at 21:18

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