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[buuctf]刮开有奖
逻辑分析
这道题是无壳32位的程序,利用ida打开,找到main函数。
int __stdcall WinMain(HINSTANCE hInstance, HINSTANCE hPrevInstance, LPSTR lpCmdLine, int nShowCmd){DialogBoxParamA(hInstance, (LPCSTR)0x67, 0, (DLGPROC)DialogFunc, 0);return 0;}
之后进入DialogFunc中查看。
BOOL __userpurge DialogFunc@(int a1@, int a2@, HWND hDlg, UINT a4, WPARAM a5, LPARAM a6){const char *v6; // esiconst char *v7; // ediint v9; // [esp+4h] [ebp-20030h]int v10; // [esp+8h] [ebp-2002Ch]int v11; // [esp+Ch] [ebp-20028h]int v12; // [esp+10h] [ebp-20024h]int v13; // [esp+14h] [ebp-20020h]int v14; // [esp+18h] [ebp-2001Ch]int v15; // [esp+1Ch] [ebp-20018h]int v16; // [esp+20h] [ebp-20014h]int v17; // [esp+24h] [ebp-20010h]int v18; // [esp+28h] [ebp-2000Ch]int v19; // [esp+2Ch] [ebp-20008h]CHAR String; // [esp+30h] [ebp-20004h]char v21; // [esp+31h] [ebp-20003h]char v22; // [esp+32h] [ebp-20002h]char v23; // [esp+33h] [ebp-20001h]char v24; // [esp+34h] [ebp-20000h]char v25; // [esp+10030h] [ebp-10004h]char v26; // [esp+10031h] [ebp-10003h]char v27; // [esp+10032h] [ebp-10002h]int v28; // [esp+20028h] [ebp-Ch]int v29; // [esp+2002Ch] [ebp-8h]__alloca_probe();if ( a4 == 272 )return 1;v29 = a2;v28 = a1;if ( a4 != 273 )return 0;if ( (_WORD)a5 == 1001 ){memset(&String, 0, 0xFFFFu);GetDlgItemTextA(hDlg, 1000, &String, 0xFFFF);if ( strlen(&String) == 8 ){v9 = 90;v10 = 74;v11 = 83;v12 = 69;v13 = 67;v14 = 97;v15 = 78;v16 = 72;v17 = 51;v18 = 110;v19 = 103;sub_4010F0(&v9, 0, 10);memset(&v25, 0, 0xFFFFu);v6 = (const char *)sub_401000(&v25, strlen(&v25));memset(&v25, 0, 0xFFFFu);v26 = v23;v25 = v22;v27 = v24;v7 = (const char *)sub_401000(&v25, strlen(&v25));if ( String == v9 + 34&& v21 == v13&& 4 * v22 - 141 == 3 * v11&& v23 / 4 == 2 * (v16 / 9)&& !strcmp(v6, "ak1w")&& !strcmp(v7, "V1Ax") ){MessageBoxA(hDlg, "U g3t 1T!", "@_@", 0);}}return 0;}if ( (_WORD)a5 != 1 && (_WORD)a5 != 2 )return 0;EndDialog(hDlg, (unsigned __int16)a5);return 1;}
之后开始分析逻辑,看图。
之后往下跟进sub_4010F0函数。
int __cdecl sub_4010F0(int a1, int a2, int a3){int result; // eaxint i; // esiint v5; // ecxint v6; // edxresult = a3;for ( i = a2; i <= a3; a2 = i ){v5 = 4 * i;v6 = *(_DWORD *)(4 * i + a1);if ( a2 < result && i < result ){do{if ( v6 > *(_DWORD *)(a1 + 4 * result) ){if ( i >= result )break;++i;*(_DWORD *)(v5 + a1) = *(_DWORD *)(a1 + 4 * result);if ( i >= result )break;while ( *(_DWORD *)(a1 + 4 * i) <= v6 ){if ( ++i >= result )goto LABEL_13;}if ( i >= result )break;v5 = 4 * i;*(_DWORD *)(a1 + 4 * result) = *(_DWORD *)(4 * i + a1);}--result;}while ( i < result );}LABEL_13:*(_DWORD *)(a1 + 4 * result) = v6;sub_4010F0(a1, a2, i - 1);result = a3;++i;}return result;}
利用c语言,进行改写,之后直接运行。
int __cdecl sub_4010F0(char* a1, int a2, int a3){int result; // eaxint i; // esiint v5; // ecxint v6; // edxresult = a3;for (i = a2; i <= a3; a2 = i){v5 =i;v6 = a1[i];if (a2 < result && i < result){do{if (v6 > a1[result]){if (i >= result)break;++i;a1[v5] = a1[result];if (i >= result)break;while (a1[i] <= v6){if (++i >= result)goto LABEL_13;}if (i >= result)break;v5 =i;a1[result] = a1[i];}--result;} while (i < result);}LABEL_13:a1[result] = v6;sub_4010F0(a1, a2, i - 1);result = a3;++i;}return result;}int main() {char str[] = "ZJSECaNH3ng";sub_4010F0(str, 0, 10);printf("%s", str);return 0;}
可以获得结果是
3CEHJNSZagn
之后继续往下看sub_401000函数。
_BYTE *__cdecl sub_401000(int a1, int a2){int v2; // eaxint v3; // esisize_t v4; // ebx_BYTE *v5; // eax_BYTE *v6; // ediint v7; // eax_BYTE *v8; // ebxint v9; // edisigned int v10; // edxint v11; // edisigned int v12; // eaxsigned int v13; // esi_BYTE *result; // eax_BYTE *v15; // [esp+Ch] [ebp-10h]_BYTE *v16; // [esp+10h] [ebp-Ch]int v17; // [esp+14h] [ebp-8h]int v18; // [esp+18h] [ebp-4h]v2 = a2 / 3;v3 = 0;if ( a2 % 3 > 0 )++v2;v4 = 4 * v2 + 1;v5 = malloc(v4);v6 = v5;v15 = v5;if ( !v5 )exit(0);memset(v5, 0, v4);v7 = a2;v8 = v6;v16 = v6;if ( a2 > 0 ){while ( 1 ){v9 = 0;v10 = 0;v18 = 0;do{if ( v3 >= v7 )break;++v10;v9 = *(unsigned __int8 *)(v3++ + a1) | (v9 << 8);}while ( v10 < 3 );v11 = v9 << 8 * (3 - v10);v12 = 0;v17 = v3;v13 = 18;do{if ( v10 >= v12 ){*((_BYTE *)&v18 + v12) = (v11 >> v13) & 0x3F;v8 = v16;}else{*((_BYTE *)&v18 + v12) = 64;}*v8++ = byte_407830[*((char *)&v18 + v12)];v13 -= 6;++v12;v16 = v8;}while ( v13 > -6 );v3 = v17;if ( v17 >= a2 )break;v7 = a2;}v6 = v15;}result = v6;*v8 = 0;return result;}
之后知道
.rdata:00407830 byte_407830 db 41h ; DATA XREF: sub_401000+C0↑r.rdata:00407831 aBcdefghijklmno db 'BCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/=',0
所以这说明,这是一个base64
回到主函数,看这里。
可以算出来,第一位是U,第二位是J,第三位W,第四位P,之后base64出来,ak1w是jMp,V1Ax是WP1,之后就知道谁前谁后了。
答案为:flag{UJWP1jMp}
[buuctf]简单注册器
分析
这是一个apk文件,所以我用jadx来解题,把apk拖入到其中。
进入主函数MainActivity中
package com.example.flag;import android.os.Bundle;import android.support.v4.app.Fragment;import android.support.v7.app.ActionBarActivity;import android.view.LayoutInflater;import android.view.Menu;import android.view.MenuItem;import android.view.View;import android.view.ViewGroup;import android.widget.Button;import android.widget.EditText;import android.widget.TextView;/* loaded from: classes.dex */public class MainActivity extends ActionBarActivity {/* JADX INFO: Access modifiers changed from: protected */// android.support.v7.app.ActionBarActivity, android.support.v4.app.FragmentActivity, android.app.Activitypublic void onCreate(Bundle savedInstanceState) {super.onCreate(savedInstanceState);setContentView(R.layout.activity_main);if (savedInstanceState == null) {getSupportFragmentManager().beginTransaction().add(R.id.container, new PlaceholderFragment()).commit();}Button button = (Button) findViewById(R.id.button1);final TextView textview = (TextView) findViewById(R.id.textView1);final EditText editview = (EditText) findViewById(R.id.editText1);button.setOnClickListener(new View.OnClickListener() { // from class: com.example.flag.MainActivity.1// android.view.View.OnClickListenerpublic void onClick(View v) {int flag = 1;String xx = editview.getText().toString();if (xx.length() != 32 || xx.charAt(31) != 'a' || xx.charAt(1) != 'b' || (xx.charAt(0) + xx.charAt(2)) - 48 != 56) {flag = 0;}if (flag == 1) {char[] x = "dd2940c04462b4dd7c450528835cca15".toCharArray();x[2] = (char) ((x[2] + x[3]) - 50);x[4] = (char) ((x[2] + x[5]) - 48);x[30] = (char) ((x[31] + x[9]) - 48);x[14] = (char) ((x[27] + x[28]) - 97);for (int i = 0; i < 16; i++) {char a = x[31 - i];x[31 - i] = x[i];x[i] = a;}String bbb = String.valueOf(x);textview.setText("flag{" + bbb + "}");return;}textview.setText("输入注册码错误");}});}// android.app.Activitypublic boolean onCreateOptionsMenu(Menu menu) {getMenuInflater().inflate(R.menu.main, menu);return true;}// android.app.Activitypublic boolean onOptionsItemSelected(MenuItem item) {int id = item.getItemId();if (id == R.id.action_settings) {return true;}return super.onOptionsItemSelected(item);}/* loaded from: classes.dex */public static class PlaceholderFragment extends Fragment {// android.support.v4.app.Fragmentpublic View onCreateView(LayoutInflater inflater, ViewGroup container, Bundle savedInstanceState) {View rootView = inflater.inflate(R.layout.fragment_main, container, false);return rootView;}}}
其中主要的位置是。
if (flag == 1) {char[] x = "dd2940c04462b4dd7c450528835cca15".toCharArray();x[2] = (char) ((x[2] + x[3]) - 50);x[4] = (char) ((x[2] + x[5]) - 48);x[30] = (char) ((x[31] + x[9]) - 48);x[14] = (char) ((x[27] + x[28]) - 97);for (int i = 0; i < 16; i++) {char a = x[31 - i];x[31 - i] = x[i];x[i] = a;}之后针对这里进行改写,flag即可出来#include#includeint main() {char x[]= "dd2940c04462b4dd7c450528835cca15";x[2] = ((x[2] + x[3]) - 50);x[4] = ((x[2] + x[5]) - 48);x[30] = (char)((x[31] + x[9]) - 48);x[14] = (char)((x[27] + x[28]) - 97);for (int i = 0; i < 16; i++) {char a = x[31 - i];x[31 - i] = x[i];x[i] = a;}printf("flag{%s}", x);return 0;}
运行获得flag
flag{59acc538825054c7de4b26440c0999dd}
[buuctf][Zer0pts2020]easy strcmp
思路
第一步还是先查壳
放在linux中运行一下,发现竟然没有任何输入的位置。
放入ida64中查看,因为这个是一个64位的可执行文件,有main函数,直接进入main函数查看
__int64 __fastcall main(signed int a1, char **a2, char **a3){if ( a1 > 1 ){if ( !strcmp(a2[1], "zer0pts{********CENSORED********}") )puts("Correct!");elseputs("Wrong!");}else{printf("Usage: %sn", *a2, a3, a2);}return 0LL;}
这里面有一个判断是判断a2[1]是否是等于那个字符串的,之后我们再去找a2
__int64 __fastcall sub_6EA(__int64 a1, __int64 a2){int i; // [rsp+18h] [rbp-8h]int v4; // [rsp+18h] [rbp-8h]int j; // [rsp+1Ch] [rbp-4h]for ( i = 0; *(_BYTE *)(i + a1); ++i );v4 = (i >> 3) + 1;for ( j = 0; j < v4; ++j )*(_QWORD *)(8 * j + a1) -= qword_201060[j];return qword_201090(a1, a2);}
右移三位,先当与是8,八个一组,之后去减去qword_201060,看看这里是什么
qword_201060 dq 0, 410A4335494A0942h, 0B0EF2F50BE619F0h, 4F0A3A064A35282Bh是这些,那么写反推逆运算,因为是小端序,最后要反转过来,所以脚本可写
脚本
import binasciistr_1 = "********"str_2 = "CENSORED"str_3 = "********"word_1 = [0x410A4335494A0942]word_2 = [0x0B0EF2F50BE619F0]word_3 = [0x4F0A3A064A35282B]bin_1 = binascii.b2a_hex(str_1.encode('ascii')[::-1])bin_2 = binascii.b2a_hex(str_2.encode('ascii')[::-1])bin_3 = binascii.b2a_hex(str_3.encode('ascii')[::-1])j_1 = binascii.a2b_hex(hex(int(bin_1, 16) + word_1[0])[2:])[::-1]j_2 = binascii.a2b_hex(hex(int(bin_2, 16) + word_2[0])[2:])[::-1]j_3 = binascii.a2b_hex(hex(int(bin_3, 16) + word_3[0])[2:])[::-1]print(j_1 + j_2 + j_3)
最后答案是
flag{l3ts_m4k3_4_DETOUR_t0d4y}
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