进入本次正题:
(四)[ C++ 之 流程控制 ]
//cpp
// Lesson4.cpp : Defines the entry point for the console application.
//
#include "stdafx.h"
#include <stdio.h>
int main(int argc, char* argv[])
{
int i; int max = 0x100; int sum =0;
__asm int 3
//for loop
for (i=0;i<max;i++)
{
sum += i;
}
//while do
while(max-->0)
{
sum +=max;
}
max = 0x99;
do
{
sum -=max;
i += sum ;
} while (max-->10);
return 0;
}
//来Dasm
00401010 > 55 push ebp
00401011 8BEC mov ebp,esp
00401013 83EC 4C sub esp,4C
00401016 53 push ebx
00401017 56 push esi
00401018 57 push edi
00401019 8D7D B4 lea edi,dword ptr ss:[ebp-4C]
0040101C B9 13000000 mov ecx,13
00401021 B8 CCCCCCCC mov eax,CCCCCCCC
00401026 F3:AB rep stos dword ptr es:[edi]
00401028 C745 F8 0001000>mov dword ptr ss:[ebp-8],100
0040102F C745 F4 0000000>mov dword ptr ss:[ebp-C],0
00401036 90 nop
00401037 C745 FC 0000000>mov dword ptr ss:[ebp-4],0 ; for循环的初始条件弄好,再jmp过去 i=0
0040103E EB 09 jmp short Lesson4.00401049 ; jmp到循环块.
00401040 8B45 FC mov eax,dword ptr ss:[ebp-4] ; 这个块的开始.
00401043 83C0 01 add eax,1
00401046 8945 FC mov dword ptr ss:[ebp-4],eax ; i++
00401049 8B4D FC mov ecx,dword ptr ss:[ebp-4]
0040104C 3B4D F8 cmp ecx,dword ptr ss:[ebp-8] ; i > max ?
0040104F 7D 0B jge short Lesson4.0040105C ; 跳出循环,执行完毕
00401051 8B55 F4 mov edx,dword ptr ss:[ebp-C]
00401054 0355 FC add edx,dword ptr ss:[ebp-4]
00401057 8955 F4 mov dword ptr ss:[ebp-C],edx ; sum +=i
0040105A ^ EB E4 jmp short Lesson4.00401040
0040105C 837D F8 00 cmp dword ptr ss:[ebp-8],0 ; while(max>0) ?
00401060 7E 0B jle short Lesson4.0040106D
00401062 8B45 F4 mov eax,dword ptr ss:[ebp-C]
00401065 0345 F8 add eax,dword ptr ss:[ebp-8]
00401068 8945 F4 mov dword ptr ss:[ebp-C],eax ; sum +=max
0040106B ^ EB EF jmp short Lesson4.0040105C ; 呵呵, 忘了max--
0040106D C745 F8 9900000>mov dword ptr ss:[ebp-8],99
00401074 8B4D F4 mov ecx,dword ptr ss:[ebp-C]
00401077 2B4D F8 sub ecx,dword ptr ss:[ebp-8]
0040107A 894D F4 mov dword ptr ss:[ebp-C],ecx ; sum -=max
0040107D 8B55 FC mov edx,dword ptr ss:[ebp-4]
00401080 0355 F4 add edx,dword ptr ss:[ebp-C]
00401083 8955 FC mov dword ptr ss:[ebp-4],edx ; i += sum
00401086 837D F8 0A cmp dword ptr ss:[ebp-8],0A ; max>10 ?
0040108A ^ 7F E8 jg short Lesson4.00401074 ; 又忘了max-- .呵呵
0040108C 33C0 xor eax,eax
0040108E 5F pop edi
0040108F 5E pop esi
00401090 5B pop ebx
00401091 83C4 4C add esp,4C
00401094 3BEC cmp ebp,esp
00401096 E8 D5C30000 call Lesson4._chkesp
0040109B 8BE5 mov esp,ebp
0040109D 5D pop ebp
0040109E C3 retn
来看下Release版本的.
00401002 90 nop
00401003 33C9 xor ecx,ecx
00401005 03C1 add eax,ecx
00401007 41 inc ecx
00401008 81F9 00010000 cmp ecx,100
0040100E ^ 7C F5 jl short Lesson4.00401005
00401010 56 push esi
00401011 BA FF000000 mov edx,0FF
00401016 03C2 add eax,edx
00401018 8BF2 mov esi,edx
0040101A 4A dec edx
0040101B 85F6 test esi,esi
0040101D ^ 7F F7 jg short Lesson4.00401016
0040101F BA 99000000 mov edx,99
00401024 2BC2 sub eax,edx
00401026 8BF2 mov esi,edx
00401028 03C8 add ecx,eax
0040102A 4A dec edx
0040102B 83FE 0A cmp esi,0A
0040102E ^ 7F F4 jg short Lesson4.00401024
00401030 33C0 xor eax,eax
00401032 5E pop esi
00401033 C3 retn
这几个循环太简单了,懒得解释. 小结: 其实对于循环控制的逆向没什么好研究的, 传统的if else 什么的, 都是 j**的指令 ,循环控制的一般也很轻易看出来, 还有switch语句也都容易看出来, 就不多讲什么了.
PS:
这里追加一点其他的知识:
1. 缺省参数只能放在函数声明中
2. 函数重载是C++的特性, 不要刻意去和对象相联系, 重载而已, just so so !
3.引用传参的一般表现形式是指针传值, 但是不代表全部. 引用就是"引用"了.
引用上了就绑死了, 一改皆改.如 : int a =9; int b = 8; int &c = b; c =a ; 执行result: a = b = c = 9 ;
[注意]传递专业知识、拓宽行业人脉——看雪讲师团队等你加入!