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I have a set of bitsets pointers in an unordered_map

static unordered_map< size_t, bitset<BITSIZE>* > systemBits;

And my function

template<typename system>
     static bitset<BITSIZE> & getBitFor() {

    size_t hash = typeid(system).hash_code();

    bitset<BITSIZE> * bit = systemBits[hash];

    if(bit == NULL) {
        bit = new bitset<BITSIZE>(0);
        (*bit) << POS++; // tried *bit << POS++ as well;
        systemBits[hash] = bit;
    }

    return *bit;
}

Whereas POS is an int set to 1 at first.

All that I'm trying to do is shift the bitset with the amounts of position per new bitset.

 (*bit) << POS++;

However this doesn't seem to work. When I cout the returned bitset all its bits are set to 0. If I do to the following:

bit->flip();

or (*bit).flip();

The bitset returned does flip all the 0 to 1.

What gives? Why does the shift operator have no effect at all?

share|improve this question
    
Obvious question: is POS equal to 0? – Oliver Charlesworth Jun 26 '12 at 8:41
    
Even so, I'm calling the function twice on two different object. So it should at least print one bitset with 1 shift. But no. POS = 1; – Sidar Jun 26 '12 at 8:46
up vote 0 down vote accepted

Because you're not assigning the result to anything . You'd have the same problem if you were trying to shift an int.

Also, you've initialized your bitset to zero, and zero shifted by any amount is always zero.

share|improve this answer
    
Why does it need assignment? I'm working with the bitset directly. – Sidar Jun 26 '12 at 8:45
    
@sidar for the same reason that int i= 3; i<< 2; doesn't do anything. – Oliver Charlesworth Jun 26 '12 at 8:49
    
Well that was majorly lame. (*bit) = 1 << POS++; did the trick. Now I'm limited to the bit size of a number type though. Need to use a nother bitset then. Thanks mate. – Sidar Jun 26 '12 at 8:51

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