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Simple, probably easy to answer question. What is the difference between || and or in something like an if statement.

Simple examples:

#include <iostream>

int main(){
    int x = 8;

    if(x == 8 or 17){
        std::cout << "Hello World!\n";


#include <iostream>

int main(){
    int x = 8;

    if(x == 8 || 17){
        std::cout << "Hello World!\n";

These seem to work the same way for me. They both compile and they both display "Hello World!" I've always used || and didn't even know about or. Do they do the same exact thing? Or is there a slight difference like using \n or endl where one acts slightly different. Sorry if this is a really simple question. Thanks for your time.

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I hope you know that's equivalent to if ((x == 8) || 17). It is always true. – GManNickG Aug 8 '12 at 23:47

2 Answers 2

up vote 3 down vote accepted

As Luchian says, there is no semantic difference. A draft of the latest C++ standard says, in the "Keywords" section:

Furthermore, the alternative representations shown in Table 5 for certain operators and punctuators (2.6) are reserved and shall not be used otherwise:

and     and_eq  bitand  bitor  compl   not
not_eq  or      or_eq   xor    xor_eq

But there could be a difference for anyone reading your code. The || operator for "logical or" goes back decades. The alternative representations are newer.

They were introduced at least as early as the 1998 C++ standard (I don't know if pre-ISO C++ had them). It's at least conceivable that you might encounter a C++ compiler that doesn't recognize them, but if so it's going to be an old enough compiler that you'll have other problems. C introduced similar identifiers in its 1995 amendment (but only with #include iso646.h>).

At least in C, and probably in C++, these alternate representations, along with digraphs and trigraphs, were introduced to cater to systems with character sets that don't include all the characters that would otherwise be required for C and C++:

{ } [ ] # & | ^ ~ !

With the introduction of more modern character sets, particularly Unicode, such systems are increasingly rare.

But as far as I can tell, they're rarely used in code (I don't think I've ever seen any code that uses them), and some C++ programmers might not be aware of them. I believe your code will be more legible if you use || rather than or.

And as Luchian also says, (x == 8 || 17) doesn't mean what you might expect from, say, English grammar. It doesn't mean "x is equal to either 8 or 17"; it means ((x == 8) || 17); 17 is treated as a condition by itself, not compared to x. Possibly you wanted to write (x == 8 || x == 17).

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Microsoft's compiler doesn't recognize alternative tokens. You have to include a special header that adds a few of them via macros. – bames53 Aug 9 '12 at 0:13
@bames53: In MS Visual C++ 2010 Express, or is a syntax error, but it's accepted (with the correct meaning) if you "Disable Language Extensions" (/Za). I guess the "extension" is allowing or et al as identifiers. Adding #include <iso646.h> or #include <ciso646> introduces the alternative forms (at least the ones that are identifiers), but gives me some bizarre run-time failure that I'm too lazy to diagnose. – Keith Thompson Aug 9 '12 at 0:25
I think the "extension" is forbidding or, you disable the extension to get the standard-conforming mode that accepts them. It's a good idea to similarly reject trigraphs in your own code as an "extension", because you never want to write code that contains one. – Steve Jessop Aug 9 '12 at 0:48

It's the exact same, it's an alternative operator. You can find a full list here.

Also, note that x == 8 or 17 returns true always. It doesn't check whether x is either 8 or 17.

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I'm aware that it's always true. I just wanted a very simple example that incorporated it. And thanks for the answer. That's what I though but I wasn't sure. – user1581100 Aug 8 '12 at 23:54
@NekkoRivera I want to highlight that you might consider it's always true only because you have set x to 8. However, what Luchian means is that if x was set to 42, the statement would still evaluate to true. If you are only interested in the case where x is either 8 or 17, you must explicitly state x == 8 || x == 17. The statement 17 on its own is counted as a boolean truth. Just want to make sure you're on the same page here. =) – paddy Aug 9 '12 at 0:02
@paddy Ohhhh! Haha I didn't realize that I did that. Opps it's wrong in example 2 also because I copied and pasted haha. – user1581100 Aug 9 '12 at 0:07
@NekkoRivera I'd come back to the post and accept Keith's answer. You don't have to accept the first correct answer, but the best one. – Luchian Grigore Aug 9 '12 at 4:27
I accept yours before his came up. I will though. Thanks. – user1581100 Aug 9 '12 at 7:04

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