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Let's say there's an object file input.obj. In the terminal, if I do "cat input.obj," it returns some random characters like "???A?J." But when I "hexdump" it, it shows the values I want to read in into my program.

I read in this obj file into program.c, firstly by opening it using fopen and read byte by byte using fgetc. However, it is actually reading the contents as shown in "cat input.obj," whereas I want it to read the actual contents as in hexdump. Any ideas?

Code snippet (from poster's comment):

 char *filename; 
 FILE *f; 
 char c; 
 f = fopen(filename, "r"); 
 c = fgetc(f);
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Show us the fopen() statement, because there are flags that specify whether the file to be opened is in binary or in text, which can break what you get out of the stream if you do not use the right mode. –  Alex Reynolds Nov 20 '12 at 1:06
3  
Basically, please provide code. –  Alex Reynolds Nov 20 '12 at 1:07
    
You will need to use binary input; either getc() or fread() or one of their relatives. You will need to understand the structure of the file to emulate hexdump. That involves understanding ELF format on Linux, and different object file formats on other machines. You'll need to look up the object file reading libraries on the different machines you're interested in. –  Jonathan Leffler Nov 20 '12 at 1:08
    
@JonathanLeffler I don't think these "object files" have anything to do with compiled elf files. More likely they're just binary files the OP happens to call objects (correct me if I'm wrong, OP). –  Chris Nov 20 '12 at 1:12
    
@Chris: You may be right, though input.obj might be a Windows object file. More seriously, hexdump probably doesn't interpret the object files as object files but as simple binary files, for which fgetc() is fine as long as the file is opened in binary mode (it matters on Windows; it doesn't on Unix, of course). I was thinking of objdump instead of hexdump for no very clear reason. –  Jonathan Leffler Nov 20 '12 at 1:17

1 Answer 1

Essentially, you need to print the integer representation of each byte to get what you want, not the byte itself. Try this:

char ch = ...; // Set ch to the value you read from the file
printf("%x", ch & 0xff);

The & 0xFF makes sure that the value is printed as 1 byte.

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Since a char is always one byte in C, why mask it? –  Alex Reynolds Nov 20 '12 at 1:16
1  
@AlexReynolds: char is promoted to int when passed through varargs. Also, char is often signed by default. –  Greg Hewgill Nov 20 '12 at 1:16

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