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Is the compound operator '&=' logical or bitwise AND ?

In other words, is a &= b the same as:

  • a = a & b
  • a = a && b
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5  
Why don't you run a sample and see for yourself? -1 –  axiom Nov 29 '12 at 14:53
    
Fair enough (+1 to comment above), but he may not have a build environment ready to go ATM. This seems a fair question to me. –  Dogbert Nov 29 '12 at 15:07
1  
Ok, But we have ideone.com ,codepad.org to name a few. –  axiom Nov 29 '12 at 15:13
    
@axoim I was away from home, and didn't have access to a computer with an environment. school computers, ya know ... I tried it out now, seems to work like &&, but its weird coz when I googled it, it says its bitwise –  Zyyk Savvins Nov 29 '12 at 17:01

5 Answers 5

up vote 2 down vote accepted

a &= b is using the bitwise AND operator. Think of the += operation:

a += 5;

is the same as:

a = a + 5;

It's just a combination of two operations: & and =.

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1  
How is a++ related? –  effeffe Nov 29 '12 at 14:56
    
@effeffe - My point was just &= and += are two operations put together, so why would the OP think &= should end up = && anymore then += would end up ++ –  Mike Nov 29 '12 at 15:00
    
Because there is no binary operator ++, while both & and && exist and they are both binary operators. –  effeffe Nov 29 '12 at 15:04

It's the bitwise AND, not the logical. (have to add some characters)

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In C, a &= b is a = a & b, i.e. bitwise. In C++, where there is a dedicated bool type, &= on booleans is boolean as well, as is a simple & on bool. None of these does exhibit the short-circuit behaviour of &&, though.

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It's bitwise ANDsimple

When you do a&=b It means a=a&b

Remember aand bshould be integral typeor promoted to integer type

While && is logical AND.

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This is one of the queries that can be resolved through experimentation rather than interrogation:

#include <stdio.h>
#include <inttypes.h>

int main(int argc, char *argv[]) {
    uint8_t a = 0xFF;
    uint8_t b = 0x0F;

    a &= b;
    printf("a &= b : %02X\n",a);

    a = 0xFF;
    printf("a & b : %02X\n", a & b);
    printf("a && b: %02X\n", a && b);
}

Prints:

a &= b : 0F
a & b : 0F
a && b: 01

to the console.

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2  
Actually, it's best resolved by consulting an authoritative C reference manual, or checking the standard. There are times where experimentation is the wrong approach (anything that invokes undefined behavior like i = i++, for example). –  John Bode Nov 29 '12 at 15:12
    
True - although adult learning theory would suggest an important role for learning through experimentation. In this case, reading the standard would seem the most prudent as you suggest. –  NSBum Nov 29 '12 at 15:21

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