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I used the fread function and I am getting a buffer size 4 and a "Reading Error".

Why is my buffer not the fileSize?

Here is my code:

FILE *fp;
char* buffer;
fp = fopen("help.txt","r");
if (fp == NULL){
    fputs("Can't open Help file, Help.txt",stderr);
exit(1);
}
fseek(fp, 0, SEEK_END);
long fileSize = ftell(fp);
rewind(fp);

buffer = (char*) malloc (sizeof(char)*fileSize);
if(buffer == NULL){
    fputs("Memory Allocation Error",stderr);
    exit(2);
}

size_t result = fread(buffer,1,fileSize,fp);
if(result != fileSize){
fputs("Reading error\n",stderr);
printf("File Size : %lu\n",fileSize);
printf("Result : %lu\n",result);
printf("Buffer Size : %u\n",sizeof(buffer));
exit(3);
}

fputs(buffer,stdout);

fclose(fp);
free (buffer);

This is the output when I run the program:

Reading error
File Size : 224
Result : 219
Buffer Size : 4
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1  
Try to open the file binary by adding a "b" -> fopen("help.txt","rb"); I think you have there some invisible chars or something like that which destroys your calculation. –  rekire Jan 18 '12 at 20:48
    
the "invisible chars" are system newlines being translated to C++ newlines, you lose a few bytes. Opening in binary mode prevents that translation. –  Mooing Duck Jan 18 '12 at 20:57
    
If you're using C++, why not read files the C++ way (with iostreams)? –  dreamlax Jan 18 '12 at 22:19
    
because I was going over c and c++. –  L7ColWinters Jan 19 '12 at 2:14

3 Answers 3

up vote 3 down vote accepted

The buffer is allocated correctly. The buffer size is calculated uslng sizeof(char)*fileSize, not sizeof(buffer). You can test if the buffer was allocated or not by verifying if buffer is null. If it's not, then it successfully allocated the buffer with the size greater than or equal to the size you requested.

The problem is that you opened the file in text mode. Because of that, Windows will replace all the "\r\n" sequences in your file with "\n" as ANSI C requires. You can either accept this behavior or you can open your file in binary mode using fp = fopen("help.txt","rb"); to read all the contents unaltered.

share|improve this answer
    
Yes, I thought of that just as you were typing. An alternative approach (if you don't want to read in binary mode) is to count the number of \ns in the resulting string and adjust the size accordingly when comparing. –  Mr Lister Jan 18 '12 at 20:54

buffer is a char*. Pointers are 4 bytes in size (for a 32-bit system). So sizeof(buffer) will always print 4.

After you allocate a pointer with a certain size, the size of the memory block it points to is what you allocated it with. In this case, sizeof(char)*fileSize.

Edit Oh, to answer your real question, wasn't there a problem in Windows where ftell reports the size in bytes, counting every CRLF as 2 bytes. When you read this in a buffer, CRLFs are translated to single byte \ns, reducing the size of the resulting text.
(Not on Windows right now, can't check.)

share|improve this answer
    
Windows does that, yes. It can be used as a crafty way to get a linecount too I think –  Mooing Duck Jan 18 '12 at 20:58

While you're okay casting the result of malloc (for C++), you don't need to multiply by sizeof(char), which is always one.

The sizeof function won't return the number of bytes allocated to a runtime-allocated variable (which you already keep in fileSize). It only works in the way you expect on statically allocated variables (e.g. int foo[BAR]; /* sizeof(foo) returns sizeof(int)*BAR bytes */).

#include <stdlib.h>
#include <stdio.h>

#define BAR 10

int main() {
    int foo[BAR];
    int *baz;

    fprintf(stdout, "foo: %zu\n", sizeof(foo)); /* 40 */

    baz = malloc(sizeof(int) * BAR);
    if (baz != NULL) {
        fprintf(stdout, "baz: %zu\n", sizeof(baz)); /* not 40, but sizeof(int*) */
        free(baz);
    }
    else {
        fprintf(stdout, "could not allocate memory for baz\n");
        return EXIT_FAILURE;
    }

    return EXIT_SUCCESS;
}

$ gcc -Wall -o test test.c
$ ./test
foo: 40
baz: 8

On a 64-bit system, a pointer is 8 bytes.

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