48

I want to create a filter, and be able to apply it to an array or hash. For example:

def isodd(i)
  i % 2 == 1
end

The I want to be able to use it like so:

x = [1,2,3,4]
puts x.select(isodd)
x.delete_if(isodd)
puts x

This seems like it should be straight forward, but I can't figure out what I need to do it get it to work.

72

Create a lambda and then convert to a block with the & operator:

isodd = lambda { |i| i % 2 == 1 }
[1,2,3,4].select(&isodd)
  • 4
    You may also use the "stabby lambda" operator to create the free standing proc. See stackoverflow.com/questions/9340117/…. Available as of ruby 1.9. Of course, purely a matter of taste and coding style :) – zealoushacker Dec 5 '13 at 2:49
  • for those reading in future, one can also create lambdas like this: lambda_name =-> () {puts "hello world"} – BKSpurgeon Sep 23 '16 at 2:15
  • I don't think that lambda is converted to a block, but just passed as the block argument to select(). – Jochem Schulenklopper Dec 16 '18 at 12:20
30
puts x.select(&method(:isodd))
  • Dave's and Daniel's answers are also good. This is an alternative. – Antti Tarvainen Aug 28 '09 at 15:19
  • 2
    +1 The answer is useful for when you have an existing method that you don't want to rewrite as a lambda/proc. It also works if the method needs to be called on a specific object: x.select(&obj.method(:isodd)) – Kelvin Oct 11 '11 at 15:54
  • nice and this correctly answers the question posed - they guy wanted to know how to wrap up an existing method and pass it as a proc – Dan Dec 27 '11 at 15:16
20

You can create a named Proc and pass it to the methods that take blocks:

isodd = Proc.new { |i| i % 2 == 1 }
x = [1,2,3,4]
x.select(&isodd) # returns [1,3]

The & operator converts between a Proc/lambda and a block, which is what methods like select expect.

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