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Consider the following Ruby code:

a = ["x"] * 3 # or a = Array.new(3, "x")

a[0].insert(0, "a")
a.each {|i| puts i}

I would expect the output to be ax, x, x (on new lines of course). However, with Ruby 1.9.1 the output is ax, ax, ax. What's going on? I've narrowed the problem down to the way the array a is defined. If I explicitly write out

a = ["x", "x", "x"]

then the code works as expected, but either version in the original code gives me this unexpected behaviour. It appears that the */initializer means the copies are actually references to the same copy of the string "x". However, if instead of the insert command I write

a[0] = "a" + a[0]

Then I get the desired output. Is this a bug, or is there some feature at work which I'm not understanding?

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Related but not identical: stackoverflow.com/questions/9835030/… –  Andrew Grimm Jul 17 '12 at 22:54

2 Answers 2

up vote 7 down vote accepted

The documentation to Array.new(size=0, obj=nil):

... it is created with size copies of obj (that is, size references to the same obj).

and Array * int:

... returns a new array built by concatenating the int copies of self

So in both of the forms you're surprised by, you end up with three references to the same "x" object, just as you figured out. I'd say you might argue about the design decision, but it's a documented intentional behavior, not a bug.

The best way I know to get the behavior you want without manually writing the array literal (["x", "x", "x"]) is

a = Array.new(3) {"x"}

Or course, with just three elements, it doesn't much matter, but with anything much bigger, this form comes in handy.

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1  
You can leave off the unused block variable in your last example. –  Michael Kohl Jul 17 '12 at 7:28
    
@MichaelKohl Thanks -- I can't believe I've been missing that detail all these years! (Answer now updated.) –  Darshan-Josiah Barber Jul 17 '12 at 7:55
    
@DarshanComputing I even read the documentation, and some how missed that. Thank you! However, this still leaves me wondering why a[0]="a" +a[0] only modifies the first element when initialized as in my first post... –  SL2 Jul 17 '12 at 17:03
    
a[0] = "a" + a[0] doesn't modify the string at a[0], it creates a new string ("a" + a[0]) and sets a[0] to refer to that instead of to the old value. The value that a[0] used to refer to is unharmed, and a[1] and a[2] happen to still point to that old value. –  Darshan-Josiah Barber Jul 17 '12 at 21:51
    
That makes sense. Thank you! –  SL2 Jul 18 '12 at 1:45

In short, although "x" is just a literal, it is an object. You use ["x'] * 3 so a is containing 3 same object. You insert 'a' to one of them, they will be all changed.

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