Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Why is this not working?

case ARGV.length
  when 0
    abort "Error 1"
  when > 2
    abort "Error 2"
share|improve this question

4 Answers 4

up vote 3 down vote accepted

An if statement would probably be more fitting for your code, since you don't have a definitive range/value, but rather just a greater-than:

if ARGV.length == 0
  abort "Error 1"
elsif ARGV.length > 2
  abort "Error 2"
share|improve this answer

It's not valid ruby syntax.

What you need is

  when ARGV.length == 0
    abort "Error 1"
  when ARGV.length > 2
    abort "Error 2"

When you write case x, the important part you need to understand is that ruby takes the x and then applies a comparison to the argument or expressions you insert in the when clause.

The line where you say when x >2 reads to ruby like:

if ARGV.length == > 2

When you remove a specific object from the case statements, you can apply conditionals within the when statements .

share|improve this answer
Ruby 1.8.7 + irb 0.9.5 reports (irb):4: syntax error, unexpected '>' with the OP's original instruction set. My answer includes a working rewritten instruction set. – Philip Reynolds Jun 1 '11 at 23:24
I tried it out in a .rb file, it does show a syntax error then. *&^^%&^ IRB. – Zabba Jun 1 '11 at 23:25
Actually what's annoying here is that I cannot find definitive documentation to support my claim, I just happen to know the answer. and aren't being helpful. The language syntax specs I can find don't seem to cover this case. – Philip Reynolds Jun 1 '11 at 23:32

Use 1.0 / 0.0 to get infinity, which fixes @mosch's code:

case ARGV.length
  when 0
    raise "Too few"
  when 3..(1.0/0.0)
    raise "Too many"

You don't have to be Chuck Norris to divide by a floating point zero.

share|improve this answer
Instead of (1.0 / 0.0) we can use Float::INFINITY, which was added in ruby 1.9.3. – Jared Beck Jun 8 at 23:57

Well, it doesn't work because it's not valid ruby syntax. However, you can do this:

x = 15
case x
  when 0..9 then puts "good"
  when 10..12 then puts "better"
  when 13..200 then puts "best"
    puts "either great or poor"
share|improve this answer
How can I fix my specific code? Thanks. – emurad Jun 1 '11 at 23:08
Yours is the only answer that makes sense to me - truly idiomatic and elegant. It's what I have used as well. – Steve Benner Aug 15 '14 at 16:10

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.