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int main(void){
    char buffer[5] = {0};  
    int i;
    FILE *fp = fopen("haha.txt", "r");
    if (fp == NULL) {
    perror("Failed to open file \"mhaha\"");
    return EXIT_FAILURE;
    }
    for (i = 0; i < 5; i++) {
        int rc = getc(fp);
        if (rc == EOF) {
            fputs("An error occurred while reading the file.\n", stderr);
            return EXIT_FAILURE;
        }
    buffer[i] = rc;
    }
    fclose(fp);
    printf("The bytes read were... %x %x %x %x %x\n", buffer[0], buffer[1], buffer[2], buffer[3], buffer[4]);
    return EXIT_SUCCESS;
}

I put eight 0s in my haha.txt file, and when I run this code it always gives me :

The bytes read were... 30 30 30 30 30

Can someone tell me why?

share|improve this question
4  
Because 0's ASCII code is 30 in hexadecimal. – AntonH Feb 10 '14 at 22:44
1  
Change %x to %c in printf call. – ouah Feb 10 '14 at 22:45

because '0' == 0x30

The character '0' is the 0x30 (ascii).

share|improve this answer

'0' that you have entered in your text file is interpreted as char and not as an int. Now, when you try to print that char in its hex (%x) value, the code just finds the equivalent of that char in hex and prints it.

So, your '0' = 0x30. You can also try giving 'A' in your text file and printing it as hex, you will be getting '41' because 'A' = 0x41. For your reference, the AsciiTable.

If you want to print out exactly what you have typed in your text file, then simply change your printf("The bytes read were... %x %x %x %x %x\n", buffer[0], buffer[1], buffer[2], buffer[3], buffer[4]);

To

printf("The bytes read were... %c %c %c %c %c\n", buffer[0], buffer[1], buffer[2], buffer[3], buffer[4]); 
/* %c will tell the compiler to print the chars as char and not as hex values. */

You might want to read Format Specifiers and MSDN Link.

share|improve this answer

In your printf you use %x and this print in hex. The char '0' is equal to 48 in decimal so 0x30 in hex.

To print 0 in char you need to use printf with %c

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