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I'm just wondering whether this is "good" code for a C89 program.

obj_ptr = (obj*) (ptr1 || ptr2);

Essentially what it does (atleast in GCC on my computer) is set obj_ptr as ptr1 if ptr1 != NULL and ptr2 otherwise.

I've looked around and I can't see whether this is proper, but judging by the fact that the || operator has to convert the pointers to integers and then I have to cast them back is a hint of bad style.

If this is bad style or unportable, and is there a better and (hopefully) equally as terse solution?

EDIT: My primary concern whether the code I have written is portable and doesn't rely on undefined behavior.

I may have found a better way which is portable and which I think is "good style" (unless you don't like assignment in if statements).

if(!(obj_ptr = ptr1))
    obj_ptr = ptr2;
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3  
Don't look for terse. That's so 70's. Look for clear and understandable (read: maintainable). –  Amardeep Sep 10 '11 at 1:17
2  
It's not only non-portable, it's just plain wrong. –  Carey Gregory Sep 10 '11 at 1:27
    
Yeah, it's wrong. I need to stop hacking and write some good code. –  Tnelsond Sep 10 '11 at 1:39

3 Answers 3

up vote 9 down vote accepted

No, what it does is set obj_ptr to 1 if either ptr1 is not NULL or ptr2 is not NULL, and 0 otherwise. You need to use the ternary operator:

obj_ptr = ptr1 ? ptr1 : ptr2;
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I don't think so. When I compile it on my computer it doesn't convert the results to 1. I think the reason this is is that in C true is defined as any number that is not 0. –  Tnelsond Sep 10 '11 at 1:19
    
@Tnelsond fixed the wording. –  Seth Carnegie Sep 10 '11 at 1:22
2  
@Tnelsond: Print the value with %p, I'd be surprised if you don't get 0x1. –  Omri Barel Sep 10 '11 at 1:23
    
But the result of a|| b should be zero if both a and b are zero, or otherwise 1. You might be using a buggy compiler. –  Jonathan Leffler Sep 10 '11 at 1:24
    
So you're saying that what the result is if they both aren't NULL is undefined behavior? –  Tnelsond Sep 10 '11 at 1:24

Well, it would definitely be invalid in C++ (where both operands are promoted to bool). I admit I am not sure about C.

[Update] OK, found it, C99 spec section 6.5.14:

Semantics

The || operator shall yield 1 if either of its operands compare unequal to 0; otherwise, it yields 0. The result has type int.

So || always evaluates either to 0 or to 1.

The usual way to formulate that expression is:

obj_ptr = (ptr1 ? ptr1 : ptr2);

If you actually need the (obj *) cast, there is a good chance you are doing something wrong.

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You shouldn't need the cast in this case –  David Brown Sep 10 '11 at 1:18
    
@David: I figured it was being included for a good reason, but you are right, it is probably being included for a bad reason :-) –  Nemo Sep 10 '11 at 1:20
    
The cast was neccessary with my code, my compiler complained, but I guess I was doing integer logic with pointers. –  Tnelsond Sep 10 '11 at 1:22
    
@Nemo: I really like the ternary operator, but I don't like how I have to write ptr1 twice in this case. –  Tnelsond Sep 10 '11 at 1:22
    
+1 for "If you actually need the (obj *) cast, there is a good chance you are doing something wrong." –  R.. Sep 10 '11 at 3:45

if you don't like writing ptr1 twice, you can use a macro:

#define or(a, b) (a ? a : b)

obj_ptr = or(ptr1, prt2);
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3  
That kind of macro is an absolute abuse of macros. It's reinventing the language and hiding what's actually happening. It's the most unmaintainable nonsense possible. –  Carey Gregory Sep 10 '11 at 1:39
1  
That's an interesting solution, but if "a" is a function call that'd suffer unnecessary overhead. –  Tnelsond Sep 10 '11 at 1:40
3  
Never mind unnecessary overhead. Once you've had to deal with 50K+ lines of code where people concealed the obvious with cute macros like this, you'll understand how evil they are. –  Carey Gregory Sep 10 '11 at 1:57
2  
Total macrobation. –  Amardeep Sep 10 '11 at 2:00
    
@Amardeep: Can you find the question about "words you invented?" and add yours? I love it. –  R.. Sep 10 '11 at 3:47

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