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There's a variable:

char segment = 0;

After 1 or with bit 15, segment = 1;

Just means this bit check already.

Question is how to cancel the mark of bit 15 (set back to 0)?

Use "~"?

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4  
char only has 8 bits (not 15) –  mvp Mar 20 '13 at 6:10
2  
@mvp is correct - also, see here stackoverflow.com/q/47981/2065121 –  Roger Rowland Mar 20 '13 at 6:11
    
sorry, I just started learning C language. 0 0 0 1 set back to 0 0 0 0 –  Yun Mar 20 '13 at 6:14
    
Thx for @roger_rowland post –  Yun Mar 20 '13 at 6:16
    
char does NOT only have 8 bits, this is a property of the implementation which you can find out by using CHAR_BIT from limits.h. Please don't perpetuate inaccuracies. –  paxdiablo Mar 20 '13 at 6:19

2 Answers 2

up vote 0 down vote accepted

To get rid of the MSB of an 8-bit character for example, you can AND with 0x7F

e.g. segment = segment & 0x7F;

To dynamically produce the mask, you can use bit shifting operations (i.e. the << operator).

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Following program sets bit, clears bit and toggles bit

#include<stdio.h>

void main(void)
{
unsigned int byte;
unsigned int bit_position;
unsigned int tempbyte = 0x01;
//get the values of the byte and the bit positions 
//set bit
byte = (byte | (tempbyte << bit_position));// set the bit at the position given by bit_position
//clear bit
byte = (byte & ~(tempbyte << bit_position));//clear the bit at the position given by bit_position
//toggle bits
byte = (byte ^ (tempbyte << bit_position));//toggle the bit at the position given by bit_position
}
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