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I have created an object calling Proc.new and passing to it a block as an argument:

a = Proc.new{|x| x = x*10; puts(x)}
#=> #<Proc:0xd26fd8@(irb):3>
a.call(10)
#100
#=> nil
a.call(10,20)
#100
#=> nil
a.call(10,20,40)
#100
#=> nil

I didn't use any splat operator(*) also. But how does then block parameter x being able to ignore the extra arguments?

When we do the same we get a definite error, but why that's not the case with block parameter?

def show(x)
print "X::#{x}"
end
#=> nil
show(10)
#X::10#=> nil
show(10,20)
#ArgumentError: wrong number of arguments (2 for 1)
#        from (irb):6:in `show'
#        from (irb):10
#        from C:/Ruby193/bin/irb:12:in `<main>'
share|improve this question
up vote 2 down vote accepted

Procs convert missing arguments to nil whereas lambda does not.

If you want to be tolerant about errors then use Procs. Otherwise you'll want to go with lambda

l = ->(x) { x = x * 10; puts x }
=> #<Proc:0x007fada3be9468@(pry):12 (lambda)>
l.call(10, 20)
ArgumentError: wrong number of arguments (2 for 1)
from (pry):12:in `block in <main>'
share|improve this answer
    
Don't forget that a lambda is a Proc. lambda {}.class => Proc – Intrepidd Mar 11 '13 at 14:52
    
True but they both behave differently :) – Leo Correa Mar 11 '13 at 15:03

That's how Procs work, internally, they don't care if too much arguments are passed.

Proc#call will take an array of arguments and bind them to the arguments of the block, and won't complain if the count does not match.

Proc Lambdas, however, will complain about it, that's one of the differences between them and regular Procs :

2.0.0p0 :006 > r = lambda { |x| puts x }
 => #<Proc:0x007fac6913b600@(irb):6 (lambda)>
2.0.0p0 :007 > r.call(1,2)
ArgumentError: wrong number of arguments (2 for 1)
from (irb):6:in `block in irb_binding'
from (irb):7:in `call'
from (irb):7
from /Users/Intrepidd/.rvm/rubies/ruby-2.0.0-p0/bin/irb:16:in `<main>'
share|improve this answer
    
Adding to this, you can splat proc block variables too. lambda { |*x| x.join(', ') }.call('foo', 'bar', 'baz') #=> "foo, bar, baz" – Lee Jarvis Mar 11 '13 at 14:40

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