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This can be a good question for finding bugs. No? Okay for beginners at least.

#define SIZE 4
int main(void){
  int chars_read = 1;
  char buffer[SIZE + 1] = {0};  
  setvbuf(stdin, (char *)NULL, _IOFBF, sizeof(buffer)-1);  
  while(chars_read){
    chars_read = fread(buffer, sizeof('1'), SIZE, stdin);
    printf("%d, %s\n", chars_read, buffer);
  }
  return 0;
}

Using the above code, I am trying to read from a file using redirection ./a.out < data. Contents of input file:

1line
2line
3line
4line

But I am not getting the expected output, rather some graphical characters are mixed in. What is wrong?


Hint: (Courtesy Alok)

  • sizeof('1') == sizeof(int)
  • sizeof("1") == sizeof(char)*2

So, use 1 instead :-)

Take a look at this post for buffered IO example using fread.

share|improve this question
    
I don't know C, but it may be a text encoding thing. – Bart van Heukelom Mar 4 '10 at 10:04
    
i guess not, because with using scanf, i am getting the correct output. – N 1.1 Mar 4 '10 at 10:05
    
fread(buffer, sizeof('1'), SIZE, stdin); why sizeof('1')? just use 1 instead. – Buhake Sindi Mar 4 '10 at 10:07
    
@Gentlmean: its the same thing. – N 1.1 Mar 4 '10 at 10:07
    
and how does chars_read get incremented? – Buhake Sindi Mar 4 '10 at 10:11
up vote 9 down vote accepted

The type of '1' is int in C, not char, so you are reading SIZE*sizeof(int) bytes in each fread. If sizeof(int) is greater than 1 (on most modern computers it is), then you are reading past the storage for buffer. This is one of the places where C and C++ are different: in C, character literals are of type int, in C++, they are of type char.

So, you need chars_read = fread(buffer, 1, SIZE, stdin); because sizeof(char) is 1 by definition.

In fact, I would write your loop as:

while ((chars_read = fread(buffer, 1, sizeof buffer - 1)) > 0) {
    buffer[chars_read] = 0; /* In case chars_read != sizeof buffer - 1.
                               You may want to do other things in this case,
                               such as check for errors using ferror. */
    printf("%d, %s\n", chars_read, buffer);
}

To answer your another question, '\0' is the int 0, so {'\0'} and {0} are equivalent.

For setvbuf, my documentation says:

The size argument may be given as zero to obtain deferred optimal-size buffer allocation as usual.

Why are you commenting with \\ instead of // or /* */? :-)

Edit: Based upon your edit of the question, sizeof("1") is wrong, sizeof(char) is correct.

sizeof("1") is 2, because "1" is a char array containing two elements: '1' and 0.

share|improve this answer
    
Seriously, OMG! I didnt realise '1'. Blunder. thanks :) – N 1.1 Mar 4 '10 at 10:15
    
\\ typo i was frustrated :P. What documentation do you use? – N 1.1 Mar 4 '10 at 10:20
    
On linux, man - otherwise see POSIX: opengroup.org/onlinepubs/009695399/functions/fread.html. Also, you don't want sizeof("1"), see my edit. – Alok Singhal Mar 4 '10 at 10:22
    
sizeof("1")! saved again. i am overlooking everything! – N 1.1 Mar 4 '10 at 10:26
    
I asked nvl about the sizeof('1') but I guess he overlooked it. – Buhake Sindi Mar 4 '10 at 12:03

Here's a byte-by-byte way to fread the lines from a file using redirection ./a.out < data.

Produces the expected output at least ... :-)

/*

Why does this code not output the expected output ?,
http://stackoverflow.com/questions/2378264/why-does-this-code-not-output-the-expected-output

compile with:
gcc -Wall -O3 fread-test.c

create data:
echo $'1line\n2line\n3line\n4line' > data

./a.out < data

*/

#include <stdio.h>

#define SIZE 5

int main(void) 
{

   int i=0, countNL=0;
   char singlechar = 0;
   char linebuf[SIZE + 1] = {0};
   setvbuf(stdin, (char *)NULL, _IOFBF, sizeof(linebuf)-1);  

   while(fread(&singlechar, 1, 1, stdin))     // fread stdin byte-by-byte
   {
      if ( (singlechar == '\n') )
      {
         countNL++;
         linebuf[i] = '\0';
         printf("%d:  %s\n", countNL, linebuf);
         i = 0;
      } else {
         linebuf[i] = singlechar; 
         i++;
      }
   }

   if ( i > 0 )    // if the last line was not terminated by '\n' ...
   {
      countNL++;
      linebuf[i] = '\0';
      printf("%d:  %s\n", countNL, linebuf);
   }

 return 0;

}
share|improve this answer

char buffer[SIZE + 1] = {0};

This isn't doing what you expect, it is making buffer point to a one byte region in the programs constant data segment. I.e this will corrupt SIZE amount of bytes and possibly cause a memory protection fault. Always initialize C strings with strcpy() or equivalent.

share|improve this answer
    
Wrong! It does exactly what i intend to do with it. – N 1.1 Mar 5 '10 at 4:15
    
@gregery: char buffer[SIZE+1] = {0}; is perfectly valid. It sets each element of buffer to 0. – Alok Singhal Mar 5 '10 at 4:22
    
Ok so it's valid, but I would rewrite it because it's bad style. The fact that the buffer is filled with '0' is not obvious and would require a reading the c standard to find out how partial initializations are filled. I never use compile time initialization on an array with variable content so it looks wrong to me. – gregery Mar 5 '10 at 5:15

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