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program:

typedef bitset<8> bits;
char original = 0xF0F0F0F0;
char Mask = 0xFFFF0000;
char newBits = 0x0000AAAA;

/*& operation with "0bit set 0" & "1bit give no change to original byte" */
cout<<"Original o: "<<bits(original)<<endl;
cout<<"NewBits: "<<bits(newBits)<<endl;
cout<<"Mask m: "<<bits(Mask)<<endl;
cout<<"o & m with Mask: "<<bits(original & Mask)<<endl;/*0 set original bit as 0 */

Result:

Original o: 11110000
NewBits: 10101010
Mask m: 00000000
o & m with Mask: 00000000
Result 10101010

I understand the hex & its result.. but....... o & m == 0000 0000 so bits(o & m | newBits) result should be 0000 0000, not 1010 1010...

Where i am missing the concept...

Can anyone help me please...

Expecting a good response

Thanks

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4  
char original = 0xF0F0F0F0;? Really? How about giving real code? –  ildjarn Apr 13 '11 at 7:36

1 Answer 1

up vote 6 down vote accepted

o & m = 0000 0000 and newBits = 1010 1010. So if you OR them (bitwise) you will get the result as 1010 1010 as 0|0=0, 0|1=1, 1|0=1, 1|1=1.

0000 0000 OR WITH
1010 1010
-----------------
1010 1010
-----------------
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@Asha thanks.... –  RidaSana Apr 13 '11 at 7:40
    
@Miss: You can accept the answer using the tick on the left. This closes the question as answered and gives additional reward to the answerer. –  Björn Pollex Apr 13 '11 at 7:44
    
@Space_C0wb0y: 1111 0000, here LSB is 0 and MSB is 1.. am i right? –  RidaSana Apr 13 '11 at 7:54
    
@Miss: Yes, that is correct. –  Björn Pollex Apr 13 '11 at 8:12

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