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a = Array.new(3,[])
a[1][0] = 5
a => [[5], [5], [5]]

I thought this doesn't make sense! isn't it should a => [[], [5], []] or this's sort of Ruby's feature ?

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1 Answer 1

up vote 4 down vote accepted

Use this instead:

a = Array.new(3){ [] }

With your code the same object is used for the value of each entry; once you mutate one of the references you see all others change. With the above you instead invoke the block each time a new value is needed, which returns a new array each time.


This is similar in nature to the new user question about why the following does not work as expected:

str.gsub /(<([a-z]+)>/, "-->#{$1}<--"

In the above, string interpolation occurs before the gsub method is ever called, so it cannot use the then-current value of $1 in your string. Similarly, in your question you create an object and pass it to Array.new before Ruby starts creating array slots. Yes, the runtime could call dup on the item by default…but that would be potentially disastrous and slow. Hence you get the block form to determine on your own how to create the initial values.

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2  
Slight nitpick: "once you mutate one of the instances you mutate them all" – Actually, there is only one instance, that's precisely the problem! –  Jörg W Mittag Mar 23 '12 at 9:42
    
That was poor wording; thanks. I've changed it. –  Phrogz Mar 23 '12 at 12:54

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