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I have a block of memory allocated 20bytes(160-bits) with memset value of 1. Each bit represents an incoming data, if the data is received the bit is set else reset. I have initially set all the 160-bits and I will reset if the data is not received. Below is the sample code:

char *buf = malloc(20);
memset(buf,1,20);

recvfun() {
static int index;
index++;
   if(!received)
     *buf = *buf ^ (1<<(160-index));
...
}

I think *buf will give only 8-bits, not the complete memory block, so everytime I try to reset the bit, the above code only resets in the first 8-bits. If suppose a 99th data is not received I need to reset 99th bit. Can you please help me in achieving this. thanks for your valuable time.

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2 Answers 2

up vote 4 down vote accepted

You need to break it down into a byte index and a bit index, e.g. change:

if(!received)
  *buf = *buf ^ (1<<(160-index));

to:

if (!received)
{
    const int byte_index = index / CHAR_BIT;
    const int bit_index = index & (1 << CHAR_BIT - 1);
    buf[byte_index] ^= (1 << bit_index);
}

Note also that memset(buf,1,20); in your code above should be memset(buf,255,20); if you want to initialise all bits to 1.

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Thanks a lot for your quick answer.. –  foo_l Oct 1 '12 at 11:33

You need to calculated two things:

  • index in the block
  • bit-offset

The code to calculate it is quite straightforward:

blockindex = index / 8;
offset     = index % 8;

Then just set the bit by combining the index and the offset:

buf[blockindex] ^= 1 << offset;

EDIT: Although my answer uses the same principle as the one of Paul R, Paul's answer is technically better because he uses the correct constants (CHAR_BIT) instead of hardcoding 8 (shame on me).

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Thanks a lot for your quick answer.. –  foo_l Oct 1 '12 at 11:33

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