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If I want to have a while loop: while a variable does NOT equal several different values, is this valid?:

while (uInput != ('a' || 'b' || 'c')){
    //do something to make it equal one of those
}

Or would I have to individually compare uInput to a, uInput to b, and so on?

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Did you try to compile this yourself? – DarkWanderer Apr 14 '13 at 17:51
2  
This has been asked a million times, and answered a million times, most notably towards the beginning of your C++ book. Which one are you using? – Lightness Races in Orbit Apr 14 '13 at 17:51
up vote 5 down vote accepted

It doesn't do what you want it to do. You need to compare to each value individually:

uInput != 'a' && uInput != 'b' && uInput != 'c'

As it is, ('a' || 'b' || 'c') would be evaluated to true and the expression becomes equivalent to:

uInput != true
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Thanks, just making sure. – ModdedLife Apr 14 '13 at 17:48
    
@M.M. Hm, I suppose that depends on how you interpret what they're trying to do. But you're probably right. – Joseph Mansfield Apr 14 '13 at 17:58
    
Write an incorrect answer, then plagiate the correct one to get to the top. Way to go. – DarkWanderer Apr 20 '13 at 6:47
    
@DarkWanderer I corrected my answer based on a comment that has now been deleted. It was just a different interpretation of what exactly the asker was looking for. I didn't give myself the votes and I'm really sure Andy couldn't care less. – Joseph Mansfield Apr 20 '13 at 9:46

No. What you want to write is:

while ((uInput != 'a') && (uInput != 'b') && (uInput != 'c'))
{
    //do something to make it equal one of those
}

The expression ('a' || 'b' || 'c') would be evaluated by converting the characters 'a', 'b', and 'c' too bool; actually, only the first operand ('a') gets evaluated here, since its evaluation yields value true and guarantees that the whole expression ('a' || 'b' || 'c') evaluates to true as well - short-circuiting is applied.

So what your initial loop does is:

while (uInput != true)
{
    //do something to make it equal one of those
}

Which is unlikely what you want.

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Thanks I was just making sure. – ModdedLife Apr 14 '13 at 17:51
    
@MM.: Correct, I edited. Thank you – Andy Prowl Apr 14 '13 at 17:58
    
Incorrectly edited; too many parentheses. <g> – Pete Becker Apr 14 '13 at 18:00

No.

Would this be a valid way of running a loop in c++?

It's "valid", but it doesn't do what you wanted it to do. Unlike me, the compiler won't magically deduce your intention, as it differs from the semantics of the language.

The != operator is dumb, in that it doesn't care what funny magic you're trying to do on the right-hand-side of it — the result of that right-hand-side expression is what gets compared, and the result of ('a' || 'b' || 'c') is just one value i.e. not a list of options, as you'd intended.

Some languages provide alternative operators that do allow you these semantics, e.g. in SQL:

SELECT * FROM tbl WHERE NOT value IN ('a', 'b', 'c')
--                      ^^^^^^^^^^^^^^^^^^^^^^^^^^^^

But even in SQL the basic inequality operator does not care about lists:

SELECT * FROM tbl WHERE value != ('a', 'b', 'c')
-- probably a syntax error, or otherwise failure to do what you wanted

In C++ you only get the dumb syntax, though if you really wanted to you could place those options inside a container (such as an std::vector) and use an algorithm such as std::find:

std::vector<char> v{'a', 'b', 'c'};
while (std::find(uInput, v.begin(), v.end()) != v.end()) {
  // ...
}

Of course, this is way over the top when all you want to do is write:

while (uInput != 'a' && uInput != 'b' && uInput != 'c')
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1  
Also, Pascal has in keyword to do this. I remember something like if x in ['a','b','c'] then ... – deepmax Apr 14 '13 at 18:18

The correct answer is

while (uInput != 'a' && uInput != 'b' && uInput != 'c')

Because the condition

uInput != 'a' || uInput != 'b' || uInput != 'c'

will always evaluate to true, even if uInput is equal to one of the values, making your loop an infinite one.

You really need to read about C++ syntax.

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