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I am trying to write to a file binary data that does not fit in 8 bits. From what I understand you can write binary data of any length if you can group it in a predefined length of 8, 16, 32,64. Is there a way to write just 9 bits to a file? Or two values of 9 bits?

I have one value in the range -+32768 and 3 values in the range +-256. What would be the way to save most space?

Thank you

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6  
post your code... –  Gangadhar Oct 7 '13 at 13:52
1  
possible duplicate of Writing bits to a file in C –  Daniel Daranas Oct 7 '13 at 13:53
    
On all systems that you're likely to be working on, files are always a number of bytes in length, i.e. any multiple of 8 bits. You can of course write two 9 bit values (18 bits) using 3 bytes (24 bits). –  davmac Oct 7 '13 at 13:55
    
There is no code yet, because I don't know how to do it. I want to write values in the range +-255 on 9 bits –  DCuser Oct 7 '13 at 13:56
    
You go up to the next available size. If you're working with integers in the range +-255, use an int16_t (two octets). If you need more than that, go up to an int32_t, and so on. –  Nicholas Wilson Oct 7 '13 at 14:07

3 Answers 3

No, I don't think there's any way using C's file I/O API:s to express storing less than 1 char of data, which will typically be 8 bits.

If you're on a 9-bit system, where CHAR_BIT really is 9, then it will be trivial.

If what you're really asking is "how can I store a number that has a limited range using the precise number of bits needed", inside a possibly larger file, then that's of course very possible.

This is often called bitstreaming and is a good way to optimize the space used for some information. Encoding/decoding bitstream formats requires you to keep track of how many bits you have "consumed" of the current input/output byte in the actual file. It's a bit complicated but not very hard.

Basically, you'll need:

  • A byte stream s, i.e. something you can put bytes into, such as a FILE *.
  • A bit index i, i.e. an unsigned value that keeps track of how many bits you've emitted.
  • A current byte x, into which bits can be put, each time incrementing i. When i reaches CHAR_BIT, write it to s and reset i to zero.
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You cannot store values in the range –256 to +256 in nine bits either. That is 513 values, and nine bits can only distinguish 512 values.

If your actual ranges are –32768 to +32767 and –256 to +255, then you can use bit-fields to pack them into a single structure:

struct MyStruct
{
    int a : 16;
    int b :  9;
    int c :  9;
    int d :  9;
};

Objects such as this will still be rounded up to a whole number of bytes, so the above will have six bytes on typical systems, since it uses 43 bits total, and the next whole number of eight-bit bytes has 48 bits.

You can either accept this padding of 43 bits to 48 or use more complicated code to concatenate bits further before writing to a file. This requires additional code to assemble bits into sequences of bytes. It is rarely worth the effort, since storage space is currently cheap.

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You can apply the principle of base64 (just enlarging your base, not making it smaller).

Every value will be written to two bytes and and combined with the last/next byte by shift and or operations.

I hope this very abstract description helps you.

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