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I find this code in Ruby to be pretty intriguing

(1..4).inject(&:+)

Ok, I know what inject does, and I know this code is basically equivalent to

(1..4).inject(0) {|a,n| a + n}

but how exactly does it work?

Why &:+ is the same as writing the block {|a,n| a + n}?

Why it doesn't need an initial value? I'm ok with the inicial value being 0, but (1..4).inject(&:*) also works, and there the initial value must be 1...

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These are really two completely separate questions, the first one of which is a duplicate of no less than 11 other questions that have already been asked and answered here on StackOverflow: StackOverflow.Com/q/99318 StackOverflow.Com/q/1217088 StackOverflow.Com/q/1792683 StackOverflow.Com/q/1961030 StackOverflow.Com/q/2096975 StackOverflow.Com/q/2211751 StackOverflow.Com/q/2259775 StackOverflow.Com/q/2388337 StackOverflow.Com/q/2697024 StackOverflow.Com/q/3888044 StackOverflow.Com/q/4512587 –  Jörg W Mittag Feb 15 '11 at 18:46

1 Answer 1

up vote 10 down vote accepted

From Ruby documentation:

If you specify a symbol instead, then each element in the collection will be passed to the named method of memo

So, specifying a symbol is equivalent to passing the following block: {|memo, a| memo.send(sym, a)}

If you do not explicitly specify an initial value for memo, then uses the first element of collection is used as the initial value of memo.

So, there is no magic, Ruby simply takes the first element as the initial value and starts injecting from the second element. You can check it by writing [].inject(:+): it returns nil as opposed to [].inject(0, :+) which returns 0.

Edit: I didn't notice the ampersand. You don't need it, inject will work with a symbol. But if you do write it, the symbol is converted to block, it can be useful with other methods

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+1. can you add an explanation why &:+ also works? –  tokland Feb 15 '11 at 12:37
    
@tokland It's basically the same conversion but works with any method, the top answer at the linked question has a good explanation. –  adamax Feb 15 '11 at 12:42

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