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Why this expression evaluating to 13 ?.

I accidentally evaluated this expression (1_2).next instead of (1+2).next which o/p 4 as result.

=> (1_2).next
=> 13

Please let me know how this is, as i m new to Ruby

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2 Answers

up vote 8 down vote accepted

Ruby allows you to use _ to break up long numbers, for example

123456789 == 123_456_789

but the latter is a little easier to read, so your code is the same as 12.next

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what i was concern about that while following the tut for ruby, they explained that all things in ruby are objects so what i presume is even 1 and 2 are objects as well so how ruby concatenates it ?? –  swapnesh Dec 10 '12 at 7:46
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@swapnesh Ruby's parser is ignoring the _ and seeing only one object. Ruby is not concatenating two objects. –  oldergod Dec 10 '12 at 8:00
    
@oldergod okkk...got the point ..thx a lot :) –  swapnesh Dec 10 '12 at 8:01
    
@oldergod was actually following the RoR so thought to cover some very basics of ruby though ..is it the right prth or I just go for the RoR ? –  swapnesh Dec 10 '12 at 8:03
    
RoR is not a subset or superset of ruby but a collection of ruby libraries (gems). I would recommend understanding the basics of ruby to write simple but non trivial programs. –  Sunny Juneja Dec 10 '12 at 8:59
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1_2 is the same as 12. 12.next is 13. Underscores in numbers are ignored, you can use them for readability. E.g. 1000_000_000 is one billion.

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