solved new crackme

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Chenx221 2024-09-29 11:50:57 +08:00
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GPG Key ID: D7A9EC07024C3021
3 changed files with 89 additions and 0 deletions

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寻找小球正确的摆放位置
1. 分析程序大致可得到这样的程序结构
```
[ebp-18]: index
[ebp-1C]: 正确计数
2734Index Loop
检查圈[index]与框[index]的左边
2826
检查圈[index]与框[index]的上边
2918
检查圈[index]与框[index]的右边
2b02
检查圈[index]与框[index]的下边
```
这已经足够找出各个小球和盒子的位置关系了,因为我比较懒,所以这里就不列出详细坐标了。想看正确答案的看底下↓
2. 这是一个笨方法
首先转到成功部分
```assembly
00402CF8 | 74 11 | je balls.402D0B |
00402CFA | 66:8B4D E4 | mov cx,word ptr ss:[ebp-1C] |
00402CFE | 66:83C1 01 | add cx,1 |
00402D02 | 0F80 07010000 | jo balls.402E0F |
00402D08 | 894D E4 | mov dword ptr ss:[ebp-1C],ecx |
00402D0B | B8 01000000 | mov eax,1 |
00402D10 | 66:0345 E8 | add ax,word ptr ss:[ebp-18] |
00402D14 | 0F80 F5000000 | jo balls.402E0F | error
00402D1A | 8945 E8 | mov dword ptr ss:[ebp-18],eax |
00402D1D | 33DB | xor ebx,ebx |
00402D1F | E9 07FAFFFF | jmp balls.40272B |
00402D24 | B9 0A000000 | mov ecx,A | ecx:&"S领O", 0A:'\n'
00402D29 | 66:394D E4 | cmp word ptr ss:[ebp-1C],cx | 检查2
00402D2D | 75 6C | jne <balls.fail> |
00402D2F | B8 04000280 | mov eax,80020004 | success
00402D34 | 894D 84 | mov dword ptr ss:[ebp-7C],ecx |
00402D37 | 894D 94 | mov dword ptr ss:[ebp-6C],ecx |
00402D3A | 894D A4 | mov dword ptr ss:[ebp-5C],ecx | [ebp-5C]:_PeekMessageA@20
00402D3D | 8D95 74FFFFFF | lea edx,dword ptr ss:[ebp-8C] |
00402D43 | 8D4D B4 | lea ecx,dword ptr ss:[ebp-4C] | [ebp-4C]:rtcGetCurrentCalendar+2F5
00402D46 | 8945 8C | mov dword ptr ss:[ebp-74],eax |
00402D49 | 8945 9C | mov dword ptr ss:[ebp-64],eax | [ebp-64]:rtcIsMissing+11A
00402D4C | 8945 AC | mov dword ptr ss:[ebp-54],eax |
00402D4F | C785 7CFFFFFF 4C | mov dword ptr ss:[ebp-84],balls.401B4C | 401B4C:L"CONGRATULATIONS"
00402D59 | C785 74FFFFFF 08 | mov dword ptr ss:[ebp-8C],8 |
```
能看到成功之前是要检查[ebp-1C]是否等于10
翻找了一下,只有这里涉及到[ebp-1C]
```assembly
00402CF0 | F7DB | neg ebx |
00402CF2 | 83C4 24 | add esp,24 |
00402CF5 | 66:85DB | test bx,bx |
00402CF8 | 74 11 | je balls.402D0B |
00402CFA | 66:8B4D E4 | mov cx,word ptr ss:[ebp-1C] |
00402CFE | 66:83C1 01 | add cx,1 |
00402D02 | 0F80 07010000 | jo <balls.ErrOverflow> |
00402D08 | 894D E4 | mov dword ptr ss:[ebp-1C],ecx |
00402D0B | B8 01000000 | mov eax,1 |
00402D10 | 66:0345 E8 | add ax,word ptr ss:[ebp-18] |
00402D14 | 0F80 F5000000 | jo <balls.ErrOverflow> | error
00402D1A | 8945 E8 | mov dword ptr ss:[ebp-18],eax |
00402D1D | 33DB | xor ebx,ebx |
00402D1F | E9 07FAFFFF | jmp balls.40272B |
```
所以
```
00402CFE | 66:83C1 01 | add cx,1 |
```
在这里设置条件断点,cx==1
然后去程序窗口中随便找个球拖拽,只要对了就会触发断点
触发后把条件+1然后继续找
最后你会得到正确答案
![2024-09-29_101703](img\2024-09-29_101703.png)
顺带一提观察球和盒的index可见一对一关系