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jobs.each do | job |
  msg job.name do
    break if stop_all_jobs?
    job.run!
  end
end   

def msg(msg, &block)
  puts 'START ' + msg
  yield
  puts 'END ' + msg
end

In the above example break does not break out of the loop as expected. It only breaks out of the msg code block.

This seems a little odd, but I guess it is based on context, that said, how do I break out of the loop from code which is within a yielded code block?

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To be clear, you want to return from msg so that "END" is never printed? Or are you trying to simply have job.run! never called, but continue on with msg? –  Phrogz Jan 18 '11 at 17:16
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2 Answers

up vote 1 down vote accepted

One way is to use throw/catch. No, not exceptions, Ruby has a separate control-of-flow feature that works a bit like exceptions, without all the overhead (although I must admit I'm not sure that there isn't any overhead in using it):

catch :stop_all_jobs do
  msg job.name do
    throw :stop_all_jobs if stop_all_jobs?
    job.run!
  end
end

You can even pass a value as the second argument to throw which will be the result of the catch block.

A potentially more readable solution would, of course, be to pack the code up in a method and use return in place of break. But that wouldn't be as fun.

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throw/catch seems a bit like goto, or is it just me? –  Kris Jan 30 '11 at 22:47
    
Yep. It's goto with a different name, and a return value :) –  Theo Jan 31 '11 at 10:26
    
When Ruby encounters a throw, it zips back up the call stack looking for a catch block with a matching symbol. When it finds it, Ruby unwinds the stack to that point and terminates the block. Cite: ruby-doc.org/docs/ProgrammingRuby/html/tut_exceptions.html –  Kris Feb 15 '11 at 14:00
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Use next instead of break.

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