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def my_method(parameter)
  if <what should be here?>
    puts "parameter is a string"
  elsif <and here?>
    puts "parameter is a symbol"
  end
end
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5 Answers

up vote 26 down vote accepted

The simplest form would be:

def my_method(parameter)
  puts "parameter is a #{parameter.class}"
end

But if you actually want to do some processing based on type do this:

def my_method(parameter)
  puts "parameter is a #{parameter.class}"
  case parameter
    when Symbol
      # process Symbol logic
    when String
      # process String logic
    else
      # some other class logic
   end
end
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Thanks a lot!!! –  Misha Moroshko Dec 12 '10 at 14:22
    
Shouldn't that be case parameter.class? –  Beerlington Dec 12 '10 at 14:49
    
@Beerlington I just tested, and it works fine using only parameter. –  Thiago Silveira Dec 12 '10 at 15:39
10  
@Beerlington: No: in a case x; when y ....; end, Ruby runs y === x to determine if it should enter the when block. === is just defined to do something "useful"; for instance, for classes, it's instance_of?; for ranges, it's include?, etc. –  Antal S-Z Dec 12 '10 at 15:42
    
@Antal - thanks for explaining, very helpful! –  Beerlington Dec 12 '10 at 17:00
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def my_method(parameter)
  if parameter.is_a? String
    puts "parameter is a string"
  elsif parameter.is_a? Symbol
    puts "parameter is a symbol"
  end
end

should solve your issue

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if parameter.is_a? String
  puts "string"
elsif parameter.is_a? Symbol
  puts "symbol"
end

I hope this helps.

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sorry my code is not elegant as the rest :) –  Saif al Harthi Dec 12 '10 at 14:11
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def my_method(parameter)
  if parameter.is_a? String
    puts "parameter is a string"
  elsif parameter.is_a? Symbol
    puts "parameter is a symbol"
  end
end
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add comment
if parameter.respond_to? id2name
      p "Symbol"
else
     p "not a symbol"

This will also work , but not an elegant solution.

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