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Is if ( c ) the same as if ( c == 0 ) in C++?

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2  
Bear in mind that 0 doesn't always mean the same thing. It can be the null pointer constant or integer zero. –  David Thornley Sep 25 '09 at 19:37
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Don't you mean "Is if ( c ) the same as if ( c != 0 ) in C++?" ? –  Peter Mortensen Sep 25 '09 at 21:10
    
Is the variable c of a particular type? –  Peter Mortensen Sep 25 '09 at 21:15
    
Just int. But what happens if c is a pointer? 'if (c)' checks if c is pointing to something? –  derrdji Sep 25 '09 at 21:22
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@derrdji, it's comparing against 0, which is value zero of type int. Depending on the type of c, different things will happen. If c is an object of a class, its overloaded operator== can be called. If c is a double, then the integer will be converted to double. And if c is a pointer, then the integer will be converted to a null pointer, and the comparison against the null pointer will check whether c points to a valid object (or function) of its type. Note that in all cases, 0 is always the same and always means the same. It just can be converted to many different things. –  Johannes Schaub - litb Sep 25 '09 at 23:30
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7 Answers

up vote 16 down vote accepted

No, if (c) is the same as if (c != 0). And if (!c) is the same as if (c == 0).

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8  
Assuming no odd overloading is taking place, which is often part of the answer in C++. –  David Thornley Sep 25 '09 at 19:38
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Ofcourse, if the operators == or != are overloaded, anything could happen, it could even start playing the national anthem for you... ;-) –  Jesper Sep 26 '09 at 6:27
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One of these days I'm going to make a class which overloads operators to play sound effects. It's gonna be awesome every time someone wants to sort them. –  rlbond Nov 5 '09 at 5:59
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I'll break from the pack on this one... "if (c)" is closest to "if (((bool)c) == true)". For integer types, this means "if (c != 0)". As others have pointed out, overloading operator != can cause some strangeness but so can overloading "operator bool()" unless I am mistaken.

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The question was originally tagged with only C, hence the above answers since there is no bool in C. –  Brian R. Bondy Sep 25 '09 at 19:44
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if(static_cast<bool>(c)) ... I'll get my coat. –  alex tingle Sep 25 '09 at 21:40
    
C99 has Bool... –  rlbond Sep 25 '09 at 22:54
    
Or if(bool cond = c) ...; to show the conversion is implicit. –  Johannes Schaub - litb Sep 25 '09 at 23:35
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It's more like if ( c != 0 )

Of course, != operator can be overloaded so it's not perfectly accurate to say that those are exactly equal.

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If c is a pointer or a numeric value,

if( c )

is equivalent to

if( c != 0 )

If c is a boolean (type bool [only C++]), (edit: or a user-defined type with the overload of the operator bool())

if( c )

is equivalent to

if( c == true )

If c is nor a pointer or a numeric value neither a boolean,

if( c )

will not compile.

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2  
It c is a user-defined type one can just implement operator bool() as D. Shawley and galets both pointed out and so it will compile just fine. –  Troubadour Sep 25 '09 at 20:39
    
Exact, I add it to the explanation –  Patrice Bernassola Sep 25 '09 at 22:49
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yes they are the same if you change

== 0

to

!= 0

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Uh, no they're not. –  Aistina Sep 25 '09 at 19:21
    
The if statement is defined to accept anything non-zero as true. So yes it is the same. –  Zan Lynx Sep 25 '09 at 19:57
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This is only true for numeric values. if c is class, there must be an operator overloaded which does conversion boolean, such as in here:

#include <stdio.h>

class c_type
{
public:
	operator bool()
	{
		return true;
	}
};

int main()
{
	c_type c;
	if (c) printf("true");
	if (!c) printf ("false");
}
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If c is a pointer then the test

if ( c )

is not quite the same as

if ( c != 0 )

The latter is a straightforward check of c against the 0 (null) pointer whereas the former is actually a instruction to check whether c is points to a valid object. Typically compilers produce the same code though.

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no, it's not... both mean absolutely the same in the case of a pointer: if( c != NULL ) –  Massa Sep 25 '09 at 22:38
    
There is no way for the compile and/or the runtime to know whether an object is valid in either C or C++. You can write: " X* c = (X*)1; " Then c almost certainly points to an invalid object. And " if(c) " will be true. –  Andrew Stein Sep 26 '09 at 4:47
    
@Andrew: I doubt you can justify your statement that there is no way to check that the object is valid or not. Certainly it would require a lot of effort by the compiler to generate run-time code to check and that's why compilers don't bother and generate the same code i.e. test against the null pointer. That's why your example fails to produce a false result on (probably) all current compilers. –  Troubadour Sep 26 '09 at 8:06
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@Massa: I'm afraid not. My reference is section 6.3.2 (Selection Statements) from "The C++ Programming Language, Special Edition" by Bjarne Stroustrup (the creator of C++). What's yours? –  Troubadour Sep 26 '09 at 8:09
    
Comparing an object pointer against a null pointer does check whether it points to a valid object, while "valid object" means "object with non-null-pointer address" –  Johannes Schaub - litb Sep 26 '09 at 11:10
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