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I typed following code in irb:

(1..5).reduce([]){|a,b| p a,b }

Expected results would be:

[]
1
[]
2
[]
3
[]
4
[]
5
=> []

Since I did not modify a at any point return value of inject would be []

But for strange reason I get this:

[]
1
[[], 1]
2
[[[], 1], 2]
3
[[[[], 1], 2], 3]
4
[[[[[], 1], 2], 3], 4]
5
=> [[[[[[], 1], 2], 3], 4], 5]

Why is the return value of inject modified from initial when I did not even change it ? Could someone please throw some light on it.

I am using MRI 1.9.2

Thanks

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1 Answer 1

up vote 6 down vote accepted

Enumerable#reduce does the following: it iterates over each element in enumerable and pass it as second parameter of the block. The first parameter is the value returned by the block for the previous item. reduce argument ([] in your case) is passed as the first block parameter for the first block call only (it is called initial value in the documentation).

p prints the result and returns value of its arguments. This value is passed to the next block call as a first argument because p call is the last expression in the block and it is considered the return value of this block.

In order to get expected result return first argument of the block from your block:

(1..5).reduce([]) { |a,b| 
  p a,b
  a # then the first block argument will be the same for each block call 
}
share|improve this answer
    
This explains it. Thanks a lot :) . I used to think value of first param would remain same unless I change it explicitly in the block –  ShadyKiller Jan 29 '12 at 3:28
    
I didn't expect p to return its arguments, as puts returns nil. –  Andrew Grimm Jan 29 '12 at 21:59

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