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I am writing a program were one number (A 10 bit number) is stored in the first part of a 16 bit number and then a 6 bit number is stored at the end. Now I am not familiar with bitshifting but I would like to know how I could to do this?

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I have edited your title. Please see, "Should questions include “tags” in their titles?", where the consensus is "no, they should not". –  John Saunders Aug 17 '12 at 20:18
    
Sorry , I didn't mean to do that. –  user1454902 Aug 17 '12 at 20:19

3 Answers 3

Note: I'm interpreting "first part of a 16 bit number" as the "10 least significant bits" - as bit-math usually counts backwards from the right.

short x = (short)(value & 1023); // the first 10 bits
short y = (short)((value >> 10) & 63); // the last 6 bits

and to recombine:

value = (short)(x | (y << 10));
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Use the << left shift operator, and the | binary or operator.

To put the values together:

short n = (short)(oneNumber << 6 | otherNumber);

(The values are cast to int by the binary operators, so you have to cast the result to short.)

To split the values:

int oneNumber = n >> 6;
int otherNumher = n && 0x3F;
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Bitwise or is | not || –  mocj Aug 17 '12 at 20:24
    
@mocj: Yes, you are right. I corrected that. Thanks. –  Guffa Aug 17 '12 at 20:25
ushort result=0;
ushort a=100;
ushort b= 43;
result=((result|(a<<6))|b&63) 

//shift a by 6 bits to empty 6 bits at end,and then OR it with result.Strip from b, any bit ahead of 6 th place and OR it with result.

Mathematically:-

0000000000000000 = result
0000000001100100 = a
0000000000101011 = b

0001100100000000 = (a<<6)
0000000000000000|0001100100000000 = (result|(a<<6))=0001100100000000
0000000000101011|0000000000111111 = b&63 =0000000000101011
0001100100000000|0000000000101011 = ((result|(a<<6))|b&63)=0001100100101011

result=6443
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