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For Example:

for(j=0;t1&&t2&&t3;j++);

if t1 fails , will the for loop check for t2 and t3 or not?

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See short-circuit evaluation. –  chrisaycock Feb 11 '13 at 0:59

7 Answers 7

up vote 1 down vote accepted

No , if you have ( value && anything ) and value becomes false everything else is ignored.

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C will short-circuit expressions involving logical ANDs and ORs, so as soon as the result of the expression is known, evaluation will stop. The given expression is:

t1 && t2 && t3

Since it's a logical AND operator, as soon as t1 is evaluated as false, evaluation of t2 and t3 will be skipped, since the overall result is known.

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In for loops and in all other situations where && or || are used, evaluation proceeds left to right until the answer is known. At that point the evaluation stopped. This is known as short circuiting.

This is a very important feature, because it lets you "guard" subsequent expressions by inserting checks earlier on. For example,

if (ptr != 0 && ptr->property == 42) {
}

will not crash on ptr == NULL only because of short-circuiting. Had it not been for it, programmers would be forced to write much less pleasant

if (ptr != 0) {
    if (ptr->property == 42) {
    }
}

to avoid the crash.

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No, C and C++ guarantees "short circuiting" of conditions - meaning that the "tests" stop as soon as the condition can be determined - if something is false for &&, then the it's determined that it can never be true, and if something is true in an ||, it can not be false.

This makes it safe to do something like:

if (ptr != NULL && ptr->x > 10) ... 
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From the ISO 9899 C standard (this one is a fairly recent draft version, but this particular paragraph has been present since the drafts of ANSI-C)

Unlike the bitwise binary & operator, the && operator guarantees left-to-right evaluation; there is a sequence point after the evaluation of the first operand. If the first operand compares equal to 0, the second operand is not evaluated.

Emphasis mine, so yes, a compiler must shortcircuit a logical and condition as soon as it encounters an operand that will cause it to return 0.

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Logically it doesn't need to since the first condition being false makes the entire statement false. It's technically called a "short-circuit evaluation". This is why you should't create t2 and t3 conditions that create side effects and assume they are happening every cycle of the loop.

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for(j=0; (t1 && t2) && (t2 && t3); j++); // should work

Misread the question. No it will not. C uses short circuit evaluation which means as soon as it's false, it's false.

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