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In the seventh line, I get the warning, "string literal in condition". What does the warning mean, and how can I resolve it?

   print 'Continue to use calculator?   Y or N'
   userAgree = gets.chomp
   if userAgree == 'Y' or 'y'
        userAgree = true
   else
        userAgree = false
   end
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closed as off-topic by Jan Dvorak, vba4all, Stijn, Lynn Crumbling, Ryan Kempt Sep 30 '14 at 14:53

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "This question was caused by a problem that can no longer be reproduced or a simple typographical error. While similar questions may be on-topic here, this one was resolved in a manner unlikely to help future readers. This can often be avoided by identifying and closely inspecting the shortest program necessary to reproduce the problem before posting." – Jan Dvorak, Community, Stijn, Lynn Crumbling, Ryan Kempt
If this question can be reworded to fit the rules in the help center, please edit the question.

1  
user_agree = (gets.chomp.upcase == 'Y') – steenslag Jun 5 '12 at 15:22
up vote 20 down vote accepted

Change

if userAgree == 'Y' or 'y'

to

if userAgree == 'Y' or userAgree == 'y'

Or, cleaner and clearer in my opinion:

if userAgree.upcase() == 'Y'
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Your if condition is not valid. This one works.

print 'Continue to use calculator?   Y or N'
userAgree = gets.chomp
if userAgree == 'Y' or userAgree == 'y'
  userAgree = true
else
  userAgree = false
end
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you can make that:

    puts 'Continue to use calculator?   Y or N'
    userAgree = gets.chomp
    userAgree.to_s.upcase!

    def Check (ans)

    if ["Y","N"].include?(ans)
        puts"true"
    else
        puts "false"
    end

end

Check userAgree
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why not

if userAgree == ('Y' or 'y')

the syntax feels more expressive to me.

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2  
Because that's the same as using if userAgree == 'Y'. The expression 'Y' or 'y' will always evaluate as 'Y'! – omninonsense Dec 31 '12 at 4:38

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