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Would some please tell me why this code leads to such an error?

unsigned char buffer;
fread(&buffer,1,1,image_ptr);
printf("%s ",buffer);

The image is 8-bit grayscale. Thank you.

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4 Answers 4

up vote 5 down vote accepted

%s is the format specifier to print a string, but buffer is not a string. That causes undefined behaviour. You want %c or maybe %u or %x depending on what you want as output.

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1  
Thank you for help :) –  the ninety'er Jun 28 '13 at 20:51

The %s specifier is for strings i.e. a char *, you're passing a char, which isn't the same.

Use %c in printf to print buffer:

printf("%c ", buffer);
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1  
%c doesn't seem to make sense given the context of "the image is 8-bit grayscale". –  Carl Norum Jun 28 '13 at 20:48
    
that was dumb of me. thank you. –  the ninety'er Jun 28 '13 at 20:50
    
Two comments - unsigned char seems a much more appropriate type here than plain old char. And %02X seems like a much more appropriate format string here after you switch to unsigned char. –  Nik Bougalis Jun 28 '13 at 21:01

Because you read one byte into the buffer and treat it as an 0-terminated string in printf. This will interpret the memory at @buffer as a pointer to char (on most modern machines 4 or 8 bytes long) and then print bytes starting at that memory address until a 0 is found.

This way you tell printf to

  • first read 3-7 bytes behind the variable buffer
  • and the read bytes from a completely random memory address

Accessing memory you do not own is undefined behaviour, often honored with segmentation fault.

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This answer is just plain wrong: there is no access to "memory behind buffer" here. –  Employed Russian Jun 29 '13 at 1:39
    
@Employed Russian: my answer is plain wrong: true. But there is access to memory behind buffer here. See my edit. –  Xie Jun 29 '13 at 12:06

replace %s with %c .. %c is for single character %s is for a string (more than 1 charachter)

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