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Hi find the below two blocks:

Block-I

irb(main):001:0> s="acbbdd"
=> "acbbdd"
irb(main):002:0> /e/=~s
=> nil
irb(main):003:0> if /e/=~s then
irb(main):004:1* print "h"
irb(main):005:1> end
=> nil

Block-II

irb(main):001:0> s="acbbdd"
=> "acbbdd"
irb(main):006:0> if /c/=~s then
irb(main):007:1* print "h"
irb(main):008:1> end
h=> nil
irb(main):009:0>

Could you please help me to understand how =~ works in I and II block? In the first block it doesn't match and returns nil but in the second block how nil is coming?

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2 Answers 2

up vote 1 down vote accepted

In II , /c/ matches s, so the print "h" get executed. You get an output (the string "h") and a return value from the print statement (nil)

Then the if block returns the return value of the last statement in the block, in this case nil.

run print "h" along will give you same result.

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Nice one! +1 to you. –  CodeLover Jan 25 '13 at 11:21

In the first block, the string doesn't match /e/ - there's no e in "acbbdd".

In the second block, the string does match /c/ - there is a c in "acbbdd".

The reason the nil appears is because it is the return value of print, and hence of the entire if block.

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Nice one! +1 to you. –  CodeLover Jan 25 '13 at 11:22

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