호출 스택 기초
호출 스택의 원리와 구조, 함수 호출과 지역 데이터를 관리하는 데 사용되는 방식을 살펴봅니다.
호출 스택 기초은(는) CoddyKit의 무료 Assembly Language & x86 Low-Level Systems Programming 강의입니다. 이것은 4개 중 1번째 강의입니다. 아래에서 전체 강의를 무료로 읽을 수 있으며, 내장 코드 에디터와 24/7 AI 튜터와 함께 브라우저에서 직접 실습할 수 있습니다. 이 강의는 Assembly Language & x86 Low-Level Systems Programming 학습 경로의 일부이며, 진행 상황이 웹과 CoddyKit 앱에 동기화됩니다. Assembly Language & x86 Low-Level Systems Programming 강의에는 총 4개의 강의가 포함되어 있습니다.
이 강의의 일부는 아직 번역되지 않았으며 영어로 표시됩니다.
Meet the Call Stack
Every time your program calls a function or procedure, it uses a special area of memory called the call stack. Think of it like a stack of plates in a cafeteria. You can only add or remove plates from the top.
The call stack is crucial for managing function calls, local variables, and remembering where to return to after a function finishes.
LIFO: Last In, First Out
The call stack operates on a LIFO principle: Last In, First Out. This means the last item added to the stack is always the first one to be removed.
- When a function is called, its data is 'pushed' onto the stack.
- When it returns, its data is 'popped' off.
- This ensures proper order for nested calls.
Stack Pointers: ESP & EBP
Two main registers are essential for managing the stack in x86 assembly:
- ESP (Stack Pointer): Always points to the top of the stack, the very last item pushed. The stack grows downwards (towards lower memory addresses).
- EBP (Base Pointer): Points to a fixed location within the current stack frame, helping locate local variables and function arguments.
We'll see how they work together to organize data.
Adding Data with PUSH
The PUSH instruction adds data to the top of the stack. When you PUSH a value (e.g., a 32-bit register):
- The ESP register is first decremented by the size of the data (4 bytes for a 32-bit value).
- Then, the value is written to the memory location that ESP now points to.
It's like placing a new plate on top of the stack, which makes the stack 'taller' and its top move 'down'.
PUSH in Action
Observe how PUSH changes the stack pointer and stores values. In this example, assume ESP initially points to 0x100 (a high memory address). The stack grows downwards.
section .text
global _start
_start:
; Assume ESP initially points to 0x100
; Stack grows downwards (towards lower addresses)
mov eax, 0x10 ; Load value 10 (hex) into EAX
push eax ; ESP becomes 0xFC, memory at [0xFC] = 0x10
mov ebx, 0x20 ; Load value 20 (hex) into EBX
push ebx ; ESP becomes 0xF8, memory at [0xF8] = 0x20
; At this point:
; ESP = 0xF8
; Memory at 0xF8 contains 0x20
; Memory at 0xFC contains 0x10
; Exit the program cleanly
mov eax, 1 ; sys_exit system call number
xor ebx, ebx ; exit code 0
int 0x80Removing Data with POP
The POP instruction removes data from the top of the stack and places it into a specified register or memory location. When you POP a value:
- The value at the memory location currently pointed to by ESP is read.
- Then, the ESP register is incremented by the size of the data (e.g., 4 bytes).
This effectively 'removes' the top item and moves the pointer 'up', making the stack 'shorter'.
PUSH & POP Example
Let's see PUSH and POP working in sequence. Notice how ESP returns to its original position after an equal number of pushes and pops.
section .text
global _start
_start:
; Assume ESP starts at some address (e.g., 0x100)
mov eax, 50 ; Load 50 into EAX
push eax ; Push EAX onto stack. ESP -= 4. [ESP] = 50
mov ebx, 100 ; Load 100 into EBX
push ebx ; Push EBX onto stack. ESP -= 4. [ESP] = 100
; Stack now has 100 at top, then 50.
; ESP is pointing to the 100.
pop ecx ; Pop top of stack into ECX. ESP += 4. ECX = 100
pop edx ; Pop next item into EDX. ESP += 4. EDX = 50
; After pops, ECX is 100, EDX is 50.
; ESP is back to its initial position before the pushes.
; Exit
mov eax, 1
xor ebx, ebx
int 0x80Understanding Stack Frames
When a function (or procedure) is called, a dedicated region on the stack, called a stack frame (or activation record), is created for it. This frame holds all the data related to that specific function call.
A stack frame typically includes:
- Function arguments passed to it
- Local variables used within the function
- The return address (where the program should jump back to after the function finishes)
- Saved register values from the calling function
EBP: The Frame Pointer
The EBP (Base Pointer) register is primarily used to manage stack frames. Unlike ESP, which constantly moves as data is pushed and popped, EBP usually remains fixed at the base of the current function's stack frame.
This stability makes it easy to access local variables and arguments using fixed offsets from EBP (e.g., [EBP-4] for a local variable, [EBP+8] for an argument), even if ESP changes due to pushes/pops within the function.
Stack Check
Consider the following assembly code snippet:
mov eax, 10
push eax
mov ebx, 20
push ebx
pop ecx
pop edx
What will be the final value in the EDX register after this code executes?
Recap: Call Stack Fundamentals
You've learned the basics of the x86 call stack!
- The call stack is a LIFO data structure fundamental for managing function calls.
- ESP (Stack Pointer) always points to the top of the stack and moves with
PUSH/POPoperations. - EBP (Base Pointer) is used to define a stable stack frame for a function, helping access local data and arguments.
PUSHdecrements ESP then stores the value;POPretrieves the value then increments ESP.
Next, we'll build on this by learning how to define and call our own procedures, utilizing these stack concepts.
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호출 스택의 원리와 구조, 함수 호출과 지역 데이터를 관리하는 데 사용되는 방식을 살펴봅니다. 브라우저에서 직접 실행하는 실습 코드로 Assembly Language & x86 Low-Level Systems Programming을(를) 배우며, 24/7 AI 튜터가 강의를 진행하면서 질문에 답변해줍니다.
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