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hex version of programs , For example in linux is a program is written in the form

char esp[] __attribute__ ((section(“.text”))) /* e.s.p
release */
= “\xeb\x3e\x5b\x31\xc0\x50\x54\x5a\x83\xec\x64\x68″
 ...........
 ......
 .....
“\xc0\x40\xeb\xf9\xe8\xbd\xff\xff\xff\x2f\x62\x69″
“\x6e\x2f\x73\x68\x00\x2d\x63\x00″
“cp -p /bin/sh /tmp/.beyond; chmod 4755
/tmp/.beyond;”;

Could someone explain to me what the above code does ?

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closed as off-topic by Kerrek SB, P0W, brasofilo, Mark J. Bobak, syb0rg Mar 4 '14 at 0:45

This question appears to be off-topic. The users who voted to close gave these specific reasons:

  • "This question appears to be off-topic because it lacks sufficient information to diagnose the problem. Describe your problem in more detail or include a minimal example in the question itself." – Mark J. Bobak, syb0rg
  • "Questions asking for code must demonstrate a minimal understanding of the problem being solved. Include attempted solutions, why they didn't work, and the expected results. See also: Stack Overflow question checklist" – Kerrek SB, P0W, brasofilo
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1  
looks like a buffer overflow exploit –  P0W Aug 25 '13 at 11:21
    
@nlightnfotis : "what is cp -p /bin/sh /tmp/.beyond; chmod 4755 /tmp/.beyond; " means –  Kajal Aug 25 '13 at 12:05
    
@Kajal It copies the basic system shell (might be bash) in a new hidden file under /tmp/ called .beyond, and then changes its ownership to be able to execute it under the current process. –  NlightNFotis Aug 25 '13 at 12:10
    
@NlightNFotis , so why dont we need a compilation ? i thought every c program needs to be compiled inorder to run. –  Kajal Aug 25 '13 at 12:12
    
@Kajal these are shell commands, not C source code. It's essentially the same thing you write in your command line interface. –  NlightNFotis Aug 25 '13 at 12:13

1 Answer 1

up vote 4 down vote accepted

What you have linked at is usually refered to as shellcode

This is raw bytes representing instructions that the computer can execute, and is usually used as payload in various attacks, such as a buffer overflow attack.

Answering your question about how it gets produced:

Consider this piece of code in assembly:

[SECTION .text]
global _start
_start:
        xor eax, eax       ;exit is syscall 1
        mov al, 1       ;exit is syscall 1
        xor ebx,ebx     ;zero out ebx
        int 0x80

If you assemble it you get this:

Disassembly of section .text:

08048080 <_start>:
 8048080:       b0 01                   mov    $0x1,%al
 8048082:       31 db                   xor    %ebx,%ebx
 8048084:       cd 80                   int    $0x80

The bytes you need are b0, 01, 31, db, cd 80. Now you can easily use it like this:

char shellcode[] = "\xb0\x01\x31\xdb\xcd\x80";

Source
Another Source

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