84 lines
4.3 KiB
ArmAsm
84 lines
4.3 KiB
ArmAsm
#---------------------------------------------------------------------------------------------------------------#
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# description: handwritten program running gets to a buffer of [8] to exemplify a quick and dirty #
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# buffer overflow exploit. #
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# #
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# objectives: SY0-601 1.3, 2.3, 3.2 #
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# #
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# intended environment: DOCKER - kalilinux/kali-last-release:latest #
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# #
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# author: bfu #
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# file: bof.s #
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# binary: bof.elf #
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# #
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# assembler: GNU Assembler (as or GAS) #
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# assemble: as bof.s -o bof.o #
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# link: gcc -no-pie -nostartfiles -z execstack -ggdb -fno-stack-protector bof.o -o bof.elf #
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# #
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#---------------------------------------------------------------#---------------------------------------------- #
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.code64 # not required, but specifying we're 64-bit :) #
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#---------------------------------------------------------------#-----------------------------------------------#
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# ~ read only data ~ #
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.section .rodata #-----------------------------------------------#
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money_str: .string "woohoo!! free money\n" # this is the string we're going to print on #
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# successful exploitation #
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#---------------------------------------------------------------#-----------------------------------------------#
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.section .text # ~ text section ~ #
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#-----------------------------------------------#
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.globl _start # make it known that `_start` is global #
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#-----------------------------------------------#
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.extern printf # (FROM LIBC) #
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.extern gets # printf(char*,...), gets(char*) #
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#---------------------------------------------------------------#-----------------------------------------------#
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_get_input: # #
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push %rbp # void _get_input(void) { #
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mov %rsp, %rbp # char ptr[8]; #
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sub $0x10, %rsp # gets(ptr); #
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lea -0x8(%rbp),%rax # return; #
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mov %rax, %rdi # } #
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call gets@plt # #
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#---------------------------------------------------------------#-----------------------------------------------#
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# Knowing that the buffer size is 8 and that there are no protections on this binary, we can overflow the #
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# buffer to call a function such as `_get_rich_fast`. This is because the stack also contains a saved base #
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# pointer (1) to know where to jump back to at the of the function. After inputting the correct amount of #
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# any data, for example, the character 'a' to fill the buffer, the stack looks like this: #
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# #
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# _______________________________________________________________________ #
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# | 0 | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 | a | b | c | d | e | f | #
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# |---|---|---|---|---|---|---|---|----|----|----|----|----|----|----|----| #
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# | / | / | / | / | / | / | / | / | 61 | 61 | 61 | 61 | 61 | 61 | 61 | 61 | #
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# |---|---|---|---|---|---|---|---|----|----|----|----|----|----|----|----| #
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# | x | x | x | x | x | x | x | x | 6a | 11 | 40 | 00 | <-- saved bp (1) | #
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# |___|___|___|___|___|___|___|___|____|____|____|____|___________________| #
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# #
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# woohoo more information
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#
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#
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#
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#
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# Allowing us to craft the final payload: "aaaaaaaa\x0\x0\x0\x0\x0\x0\x0\x0\x47\x10\x40". #
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#---------------------------------------------------------------------------------------------------------------#
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# Execution: bash -c 'printf "aaaaaaaa\x0\x0\x0\x0\x0\x0\x0\x0\x47\x10\x40" | ./bof.elf' #
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#---------------------------------------------------------------#-----------------------------------------------#
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nop #
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leave #
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ret #
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#---------------------------------------------------------------#-----------------------------------------------#
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_get_rich_fast: #
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push %rbp #
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mov %rsp, %rbp #
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lea money_str, %rdi #
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mov %rdi, %rax #
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call printf@plt #
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pop %rbp #
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nop #
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ret #
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#---------------------------------------------------------------#-----------------------------------------------#
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_start: #
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push %rbp #
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call _get_input #
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pop %rbp # TODO: segfault
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xor %rax, %rax #
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mov $1, %al #
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mov $0, %rbx #
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syscall #
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