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Is there a "very bad thing" that can happen &&= and ||= were used as syntactic sugar for bool foo = foo && bar and bool foo = foo || bar?

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4  
See this other question: stackoverflow.com/questions/2324549/… That one's about Java, but sharing the C lineage, the same arguments mostly apply. –  jamesdlin Mar 21 '10 at 19:38
    
Basically, just c++ doesn't have it b/c they didn't put it in - languages like Ruby has it. boo... –  Kache Mar 21 '10 at 19:54
2  
But in Ruby, isn't x ||= y roughly equivalent to C++ x = x ? x : y; for any type? In other words, "set to y if not already set". That's considerably more useful than C or C++ x ||= y, which (barring operator overloading) would do "set x to (bool)y unless already set". I'm not anxious to add another operator for that, it seems a bit feeble. Just write if (!x) x = (bool)y. But then, I don't really use bool variables enough to want extra operators that are only really useful with that one type. –  Steve Jessop Mar 21 '10 at 21:26

3 Answers 3

up vote 20 down vote accepted

A bool may only be true or false in C++. As such, using &= and |= is perfectly safe (even though I don’t particularly like the notation). True, they will perform bit operations rather than logical operations (and as such, they won’t short-circuit) but these bit operations follow a well-defined mapping, which is effectively equivalent to the logical operations, as long as both operands are indeed of type bool.

Contrary to what other people have said here, a bool in C++ must never have a different value such as 2. When assigning that value to a bool, it will be converted to true as per the standard.

The only way to get an invalid value into a bool is by using reinterpret_cast on pointers:

int i = 2;
bool b = *reinterpret_cast<bool*>(&i);
b |= true; // MAY yield 3 (but doesn’t on my PC!)

But since this code results in undefined behaviour anyway, we may safely ignore this potential problem in conforming C++ code.

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2  
But the && and || operators will work on anything that converts to bool, not just bool. –  dan04 Mar 21 '10 at 20:08
2  
They don't do the same thing, even on bools. || and && shortcut, i.e. the second argument isn't operand if the first operand is true (resp. false for &&). |, &, |= and &= always evaluate both operands. –  nikie Mar 21 '10 at 20:09
1  
@nikie: I didn’t say that they did the same. And do you really want to short-circuit an assignment such as a &&= b? I think that’s asking for trouble. –  Konrad Rudolph Mar 21 '10 at 20:15
    
In fact, if you try to do a switch on the above b, it is likely you end up in default: even if you have both true and false branches. –  Johannes Schaub - litb Mar 21 '10 at 23:11
    
@Johannes: The UB case? Yes, that’s possible. But I’ve tested this and on my PC (OS X 10.5, GCC 4.4.2) it actually doesn’t – which kind of surprised me, too. –  Konrad Rudolph Mar 22 '10 at 7:38

&& and & have different semantics: && will not evaluate the second operand if the first operand is false. i.e. something like

flag = (ptr != NULL) && (ptr->member > 3);

is safe, but

flag = (ptr != NULL) & (ptr->member > 3);

is not, although both operands are of type bool.

The same is true for &= and |=:

flag = CheckFileExists();
flag = flag && CheckFileReadable();
flag = flag && CheckFileContents();

will behave differently than:

flag = CheckFileExists();
flag &= CheckFileReadable();
flag &= CheckFileContents();
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4  
all the more reason to have &&= in my opinion. =P –  Kache Mar 21 '10 at 20:19
    
+1 Brilliant idea. –  Pavel Radzivilovsky Mar 21 '10 at 20:20

Reason

The operators &&= and ||= are not available on C / C++ / Java because :

  • error-prone
  • useless

Example for &&=

If C or C++ or Java allowed &&= operator, then this code:

bool ok = true; //becomes false when at least a function returns false
ok &&= f1();
ok &&= f2(); //we may expect f2() is called whatever the f1() returned value

is equivalent to:

bool ok = true;
if (ok) ok = f1();
if (ok) ok = f2(); //f2() is called only when f1() returns true

This first code is error-prone because many developers would think f2() is always called whatever the f1() returned value. It is like writing bool ok = f1() && f2(); where f2() is called only when f1() returns true.

  • If the developer actually wants f2() to be called only when f1() returns true, therefore the second code above is less error-prone.
  • Else (the developer wants f2() to be always called), &= is sufficient:

Example for &=

bool ok = true;
ok &= f1();
ok &= f2(); //f2() always called whatever the f1() returned value

Moreover, it is easier for compiler to optimize this above code than that below one:

bool ok = true;
if (!f1())  ok = false;
if (!f2())  ok = false;  //f2() always called

Compare && and &

We may wonder whether the operators && and & give the same result when applied on bool values?

Let's check using the following C++ code:

#include <iostream>

void test (int testnumber, bool a, bool b)
{
   std::cout << testnumber <<") a="<< a <<" and b="<< b <<"\n"
                "a && b = "<< (a && b)  <<"\n"
                "a &  b = "<< (a &  b)  <<"\n"
                "======================"  "\n";
}

int main ()
{
    test (1, true,  true);
    test (2, true,  false);
    test (3, false, false);
    test (4, false, true);
}

Output:

1) a=1 and b=1
a && b = 1
a &  b = 1
======================
2) a=1 and b=0
a && b = 0
a &  b = 0
======================
3) a=0 and b=0
a && b = 0
a &  b = 0
======================
4) a=0 and b=1
a && b = 0
a &  b = 0
======================

Conclusion

Therefore YES we can replace && by & for bool values ;-)
So better use &= instead of &&=.
We can consider &&= as useless for booleans.

Same for ||=

operator |= is also less error-prone than ||=

If a developer wants f2() be called only when f1() returns false, instead of:

bool ok = false;
ok ||= f1();
ok ||= f2(); //f2() is called only when f1() returns false
ok ||= f3(); //f3() is called only when f1() or f2() return false
ok ||= f4(); //f4() is called only when ...

I advice the following more understandable alternative:

bool ok = false;
if (!ok) ok = f1();
if (!ok) ok = f2();
if (!ok) ok = f3();
if (!ok) ok = f4();
// no comment required here (code is enough understandable)

or if you prefer all in one line style:

// this comment is required to explain to developers that 
// f2() is called only when f1() returns false, and so on...
bool ok = f1() || f2() || f3() || f4();
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1  
Great explanation –  iNFINITEi Mar 28 '13 at 16:08
3  
What if I actually want this behaviour? That the right hand expression is not executed if the left hand expression is wrong. It is annoying to write the variables two times, like success = success && DoImportantStuff() –  Niklas R Jul 19 '13 at 8:29
    
My advice is to write if(success) success = DoImportantStuff(). If the statement success &&= DoImportantStuff() was allowed, many developers would think DoImportantStuff() is always called whatever the value of success. Hope this answers what you wonder... I have also improved many parts of my answer. Please tell me if my answer is more understandable now? (about your comment purpose) Cheers, See you ;-) –  olibre Jul 19 '13 at 11:39
1  
"If the statement success &&= DoImportantStuff() was allowed, many developers would think DoImportantStuff() is always called whatever the value of success." You can say that about if (success && DoImportantStuff()) though. As long as they remember the logic behind the if syntax they should have no trouble with &&=. –  pilkch Jun 5 at 0:13
    
Hummm... You are right @pilkch :-) –  olibre Jun 5 at 13:08

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