深入理解计算机系统(2)——bomblab
目录
- phase_1
- phase_2
- phase_3
- phase_4
- phase_5
- phase_6
我在过程中用到的命令:
| 名字 | 功能 |
|---|---|
| gdb bomb | 编译文件 |
| break +函数名 | 设置断点 |
| ni | 单步调试 |
| si | 进入子函数的单步调试 |
| i r | 查看每个寄存器里的值 |
| print *(int*)+地址 | 打印指向地址的整数值 |
| x/s +地址 | 打印指向地址的字符串 |
| print+地址 | 打印指向地址内的数(十进制形式) |
| x/nw+地址 | 检测从该地址开始的n个四字节值 |
| run sol.txt | 读取sol.txt文件中的内容作为输入 |
phase_1
0000000000400ee0 <phase_1>:
400ee0: 48 83 ec 08 sub $0x8,%rsp
400ee4: be 00 24 40 00 mov $0x402400,%esi
400ee9: e8 4a 04 00 00 callq 401338 <strings_not_equal>
400eee: 85 c0 test %eax,%eax
400ef0: 74 05 je 400ef7 <phase_1+0x17>
400ef2: e8 43 05 00 00 callq 40143a <explode_bomb>
400ef7: 48 83 c4 08 add $0x8,%rsp
400efb: c3 retq
思路:
由test句可知,答案存储在%eax里,因此用命令:
x/s $eax
即可得出答案:
Border relations with Canada have never been better.
phase_2
0000000000400efc <phase_2>:
400efc: 55 push %rbp
400efd: 53 push %rbx
400efe: 48 83 ec 28 sub $0x28,%rsp
400f02: 48 89 e6 mov %rsp,%rsi
400f05: e8 52 05 00 00 callq 40145c <read_six_numbers>
400f0a: 83 3c 24 01 cmpl $0x1,(%rsp)//first number
400f0e: 74 20 je 400f30 <phase_2+0x34>
400f10: e8 25 05 00 00 callq 40143a <explode_bomb>
400f15: eb 19 jmp 400f30 <phase_2+0x34>
400f17: 8b 43 fc mov -0x4(%rbx),%eax//pre
400f1a: 01 c0 add %eax,%eax//pre*2
400f1c: 39 03 cmp %eax,(%rbx)
400f1e: 74 05 je 400f25 <phase_2+0x29>
400f20: e8 15 05 00 00 callq 40143a <explode_bomb>
400f25: 48 83 c3 04 add $0x4,%rbx//pointer to the next number
400f29: 48 39 eb cmp %rbp,%rbx//find the end
400f2c: 75 e9 jne 400f17 <phase_2+0x1b>
400f2e: eb 0c jmp 400f3c <phase_2+0x40>
400f30: 48 8d 5c 24 04 lea 0x4(%rsp),%rbx//sec
400f35: 48 8d 6c 24 18 lea 0x18(%rsp),%rbp//the end of input
400f3a: eb db jmp 400f17 <phase_2+0x1b>
400f3c: 48 83 c4 28 add $0x28,%rsp
400f40: 5b pop %rbx
400f41: 5d pop %rbp
400f42: c3 retq
思路:
首先从内置函数名%rsp开始(记住这个,因为后面还会用到这个函数)。
400f0a: 83 3c 24 01 cmpl $0x1,(%rsp)//first number
这一句说明第一个数一定是1,否则触发炸弹。跳转之后,将第二个数赋值给%rbx,并且将%rbp定位在输入的最后一个数之后的位置,避免越界。之后的跳转是将得到的第二个数与前一个数的两倍比较,以此类推。因此得到答案:1 2 4 8 16 32
phase_3
0000000000400f43 <phase_3>:
400f43: 48 83 ec 18 sub $0x18,%rsp
400f47: 48 8d 4c 24 0c lea 0xc(%rsp),%rcx
400f4c: 48 8d 54 24 08 lea 0x8(%rsp),%rdx
400f51: be cf 25 40 00 mov $0x4025cf,%esi//the needing format string
400f56: b8 00 00 00 00 mov $0x0,%eax//the number of input int
400f5b: e8 90 fc ff ff callq 400bf0 <__isoc99_sscanf@plt>
400f60: 83 f8 01 cmp $0x1,%eax//format fit?
400f63: 7f 05 jg 400f6a <phase_3+0x27>
400f65: e8 d0 04 00 00 callq 40143a <explode_bomb>
400f6a: 83 7c 24 08 07 cmpl $0x7,0x8(%rsp)//the first input<7
400f6f: 77 3c ja 400fad <phase_3+0x6a>
400f71: 8b 44 24 08 mov 0x8(%rsp),%eax
400f75: ff 24 c5 70 24 40 00 jmpq *0x402470(,%rax,8)//jump table
400f7c: b8 cf 00 00 00 mov $0xcf,%eax
400f81: eb 3b jmp 400fbe <phase_3+0x7b>
400f83: b8 c3 02 00 00 mov $0x2c3,%eax
400f88: eb 34 jmp 400fbe <phase_3+0x7b>
400f8a: b8 00 01 00 00 mov $0x100,%eax
400f8f: eb 2d jmp 400fbe <phase_3+0x7b>
400f91: b8 85 01 00 00 mov $0x185,%eax
400f96: eb 26 jmp 400fbe <phase_3+0x7b>
400f98: b8 ce 00 00 00 mov $0xce,%eax
400f9d: eb 1f jmp 400fbe <phase_3+0x7b>
400f9f: b8 aa 02 00 00 mov $0x2aa,%eax
400fa4: eb 18 jmp 400fbe <phase_3+0x7b>
400fa6: b8 47 01 00 00 mov $0x147,%eax
400fab: eb 11 jmp 400fbe <phase_3+0x7b>
400fad: e8 88 04 00 00 callq 40143a <explode_bomb>
400fb2: b8 00 00 00 00 mov $0x0,%eax
400fb7: eb 05 jmp 400fbe <phase_3+0x7b>
400fb9: b8 37 01 00 00 mov $0x137,%eax
400fbe: 3b 44 24 0c cmp 0xc(%rsp),%eax//if the second number is right
400fc2: 74 05 je 400fc9 <phase_3+0x86>
400fc4: e8 71 04 00 00 callq 40143a <explode_bomb>
400fc9: 48 83 c4 18 add $0x18,%rsp
400fcd: c3 retq
思路:
这个题第一眼看上去有些不知从何入手,不过可以找到一个地址常量$0x4025cf,因此不妨先用x/s访问一下,得到字符串 “%d %d”,因此可以猜知这是scanf输入时的字符串,那么也就是要我们输入两个整数了。输入的个数存储在%eax里。
第一个输入存储在0x8(%rsp)里,由跳转得到的语句可知,第一个输入必须<7。
400f75: ff 24 c5 70 24 40 00 jmpq *0x402470(,%rax,8)//jump table
这一句就是明显的跳转表格式了,通过第一个的输入查找对应的值输出即可。
我选择的是:6 682
phase_4
000000000040100c <phase_4>:
40100c: 48 83 ec 18 sub $0x18,%rsp
401010: 48 8d 4c 24 0c lea 0xc(%rsp),%rcx
401015: 48 8d 54 24 08 lea 0x8(%rsp),%rdx
40101a: be cf 25 40 00 mov $0x4025cf,%esi
40101f: b8 00 00 00 00 mov $0x0,%eax
401024: e8 c7 fb ff ff callq 400bf0 <__isoc99_sscanf@plt>
401029: 83 f8 02 cmp $0x2,%eax//input two int
40102c: 75 07 jne 401035 <phase_4+0x29>
40102e: 83 7c 24 08 0e cmpl $0xe,0x8(%rsp)//the first number<=14
401033: 76 05 jbe 40103a <phase_4+0x2e>
401035: e8 00 04 00 00 callq 40143a <explode_bomb>
40103a: ba 0e 00 00 00 mov $0xe,%edx
40103f: be 00 00 00 00 mov $0x0,%esi
401044: 8b 7c 24 08 mov 0x8(%rsp),%edi
401048: e8 81 ff ff ff callq 400fce <func4>
40104d: 85 c0 test %eax,%eax//return 0
40104f: 75 07 jne 401058 <phase_4+0x4c>
401051: 83 7c 24 0c 00 cmpl $0x0,0xc(%rsp)
401056: 74 05 je 40105d <phase_4+0x51>
401058: e8 dd 03 00 00 callq 40143a <explode_bomb>
40105d: 48 83 c4 18 add $0x18,%rsp
401061: c3 retq
思路:
这题依旧使用了sscanf函数,因此同phase_的思路就可以很快的找出本题也是输入两个参数,且第一个参数存储在0x8(%rsp)里。
40102e: 83 7c 24 08 0e cmpl $0xe,0x8(%rsp)//the first number<=14
本句写出了第一个参数的范围。那么第一个参数确定了之后,第二个参数怎么确定呢?由题目可知,第一个参数传入了寄存器%edi中,作为func4的参数参与计算,func4(x,0)且func4的返回值%eax必须为0,且由:
401051: 83 7c 24 0c 00 cmpl $0x0,0xc(%rsp)
知第二个输入的数也要为0。
那么func4的内容是什么呢?
0000000000400fce <func4>:
400fce: 48 83 ec 08 sub $0x8,%rsp
400fd2: 89 d0 mov %edx,%eax
400fd4: 29 f0 sub %esi,%eax
400fd6: 89 c1 mov %eax,%ecx
400fd8: c1 e9 1f shr $0x1f,%ecx
400fdb: 01 c8 add %ecx,%eax
400fdd: d1 f8 sar %eax
400fdf: 8d 0c 30 lea (%rax,%rsi,1),%ecx//get answer
400fe2: 39 f9 cmp %edi,%ecx//<=7 first para
400fe4: 7e 0c jle 400ff2 <func4+0x24>//key
400fe6: 8d 51 ff lea -0x1(%rcx),%edx
400fe9: e8 e0 ff ff ff callq 400fce <func4>
400fee: 01 c0 add %eax,%eax
400ff0: eb 15 jmp 401007 <func4+0x39>
400ff2: b8 00 00 00 00 mov $0x0,%eax//right way
400ff7: 39 f9 cmp %edi,%ecx
400ff9: 7d 0c jge 401007 <func4+0x39>//>=7
400ffb: 8d 71 01 lea 0x1(%rcx),%esi
400ffe: e8 cb ff ff ff callq 400fce <func4>
401003: 8d 44 00 01 lea 0x1(%rax,%rax,1),%eax
401007: 48 83 c4 08 add $0x8,%rsp
40100b: c3 retq
从内部结构可以看出这是一个递归函数,我们要找出使返回值为0的输入值,情况当然是越简单越好。
前面的运算:
400fce: 48 83 ec 08 sub $0x8,%rsp
400fd2: 89 d0 mov %edx,%eax
400fd4: 29 f0 sub %esi,%eax
400fd6: 89 c1 mov %eax,%ecx
400fd8: c1 e9 1f shr $0x1f,%ecx
400fdb: 01 c8 add %ecx,%eax
400fdd: d1 f8 sar %eax
400fdf: 8d 0c 30 lea (%rax,%rsi,1),%ecx//get answer
令人眼花缭乱,不过庆幸的是,似乎与我们输入的值没什么关系,于是我们使用si命令直接进入func4内部,再用print $ecx命令打印出%ecx看看,得到的结果是7。
那么进行第一个比较
400fe2: 39 f9 cmp %edi,%ecx//<=7 first para
第一个参数<=7则将eax赋值为0,岂不美哉!于是赶紧向下看,下面还有一个比较
400ff7: 39 f9 cmp %edi,%ecx
400ff9: 7d 0c jge 401007 <func4+0x39>//>=7
综合来看,就是第一个参数=7时就没有复杂递归了,直接返回值为0并退出执行。
故,本题的一个答案为7 0。
phase_5
0000000000401062 <phase_5>:
401062: 53 push %rbx
401063: 48 83 ec 20 sub $0x20,%rsp
401067: 48 89 fb mov %rdi,%rbx//the input string
40106a: 64 48 8b 04 25 28 00 mov %fs:0x28,%rax
401071: 00 00
401073: 48 89 44 24 18 mov %rax,0x18(%rsp)
401078: 31 c0 xor %eax,%eax
40107a: e8 9c 02 00 00 callq 40131b <string_length>
40107f: 83 f8 06 cmp $0x6,%eax//len=6
401082: 74 4e je 4010d2 <phase_5+0x70>
401084: e8 b1 03 00 00 callq 40143a <explode_bomb>
401089: eb 47 jmp 4010d2 <phase_5+0x70>
40108b: 0f b6 0c 03 movzbl (%rbx,%rax,1),%ecx//first ascll
40108f: 88 0c 24 mov %cl,(%rsp)
401092: 48 8b 14 24 mov (%rsp),%rdx//ascll
401096: 83 e2 0f and $0xf,%edx//lower four bits
401099: 0f b6 92 b0 24 40 00 movzbl 0x4024b0(%rdx),%edx
4010a0: 88 54 04 10 mov %dl,0x10(%rsp,%rax,1)//create a new string
4010a4: 48 83 c0 01 add $0x1,%rax//itrator
4010a8: 48 83 f8 06 cmp $0x6,%rax
4010ac: 75 dd jne 40108b <phase_5+0x29>
4010ae: c6 44 24 16 00 movb $0x0,0x16(%rsp)
4010b3: be 5e 24 40 00 mov $0x40245e,%esi//maduiersnfotvbylSo you think you can stop the bomb with ctrl-c, do you?
4010b8: 48 8d 7c 24 10 lea 0x10(%rsp),%rdi//flyers in %rsi
4010bd: e8 76 02 00 00 callq 401338 <strings_not_equal>
4010c2: 85 c0 test %eax,%eax
4010c4: 74 13 je 4010d9 <phase_5+0x77>
4010c6: e8 6f 03 00 00 callq 40143a <explode_bomb>
4010cb: 0f 1f 44 00 00 nopl 0x0(%rax,%rax,1)
4010d0: eb 07 jmp 4010d9 <phase_5+0x77>
4010d2: b8 00 00 00 00 mov $0x0,%eax
4010d7: eb b2 jmp 40108b <phase_5+0x29>
4010d9: 48 8b 44 24 18 mov 0x18(%rsp),%rax
4010de: 64 48 33 04 25 28 00 xor %fs:0x28,%rax
4010e5: 00 00
4010e7: 74 05 je 4010ee <phase_5+0x8c>
4010e9: e8 42 fa ff ff callq 400b30 <__stack_chk_fail@plt>
4010ee: 48 83 c4 20 add $0x20,%rsp
4010f2: 5b pop %rbx
4010f3: c3 retq
思路:
首先找到输入%rbx里。
40108b: 0f b6 0c 03 movzbl (%rbx,%rax,1),%ecx//first ascll
这句话是对输入字符串的遍历。
40108f: 88 0c 24 mov %cl,(%rsp)
401092: 48 8b 14 24 mov (%rsp),%rdx//ascll
401096: 83 e2 0f and $0xf,%edx//lower four bits
这一串操作是取了被选中字母acsll码的后四位,那么选后四位干嘛呢,其实是作为数组下标访问题中提供的字符串常量$0x40245e,内容为:maduiersnfotvbylSo you think you can stop the bomb with ctrl-c, do you?,那么自己构造一传符合要求的字符串就好了。
我的答案为:ionefg
phase_6
00000000004010f4 <phase_6>:
4010f4: 41 56 push %r14
4010f6: 41 55 push %r13
4010f8: 41 54 push %r12
4010fa: 55 push %rbp
4010fb: 53 push %rbx
4010fc: 48 83 ec 50 sub $0x50,%rsp
401100: 49 89 e5 mov %rsp,%r13
401103: 48 89 e6 mov %rsp,%rsi
401106: e8 51 03 00 00 callq 40145c <read_six_numbers>
40110b: 49 89 e6 mov %rsp,%r14
40110e: 41 bc 00 00 00 00 mov $0x0,%r12d
401114: 4c 89 ed mov %r13,%rbp
401117: 41 8b 45 00 mov 0x0(%r13),%eax//a[0]
40111b: 83 e8 01 sub $0x1,%eax
40111e: 83 f8 05 cmp $0x5,%eax//a[0]<=6
401121: 76 05 jbe 401128 <phase_6+0x34>
401123: e8 12 03 00 00 callq 40143a <explode_bomb>
401128: 41 83 c4 01 add $0x1,%r12d//ini:1
40112c: 41 83 fc 06 cmp $0x6,%r12d
401130: 74 21 je 401153 <phase_6+0x5f>
401132: 44 89 e3 mov %r12d,%ebx//counter
401135: 48 63 c3 movslq %ebx,%rax//counter copy
401138: 8b 04 84 mov (%rsp,%rax,4),%eax//a[i]:start from a[1]
40113b: 39 45 00 cmp %eax,0x0(%rbp)//compare with a[0]
40113e: 75 05 jne 401145 <phase_6+0x51>
401140: e8 f5 02 00 00 callq 40143a <explode_bomb>
401145: 83 c3 01 add $0x1,%ebx
401148: 83 fb 05 cmp $0x5,%ebx
40114b: 7e e8 jle 401135 <phase_6+0x41>
40114d: 49 83 c5 04 add $0x4,%r13//next element
401151: eb c1 jmp 401114 <phase_6+0x20>
401153: 48 8d 74 24 18 lea 0x18(%rsp),%rsi//last
401158: 4c 89 f0 mov %r14,%rax//a[0]
40115b: b9 07 00 00 00 mov $0x7,%ecx
401160: 89 ca mov %ecx,%edx
401162: 2b 10 sub (%rax),%edx//7-a[0]
401164: 89 10 mov %edx,(%rax)//a[0]-=7
401166: 48 83 c0 04 add $0x4,%rax//a[i++]
40116a: 48 39 f0 cmp %rsi,%rax//not the last ele
40116d: 75 f1 jne 401160 <phase_6+0x6c>
40116f: be 00 00 00 00 mov $0x0,%esi
401174: eb 21 jmp 401197 <phase_6+0xa3>
401176: 48 8b 52 08 mov 0x8(%rdx),%rdx
40117a: 83 c0 01 add $0x1,%eax
40117d: 39 c8 cmp %ecx,%eax
40117f: 75 f5 jne 401176 <phase_6+0x82>
401181: eb 05 jmp 401188 <phase_6+0x94>
401183: ba d0 32 60 00 mov $0x6032d0,%edx
401188: 48 89 54 74 20 mov %rdx,0x20(%rsp,%rsi,2)
40118d: 48 83 c6 04 add $0x4,%rsi
401191: 48 83 fe 18 cmp $0x18,%rsi
401195: 74 14 je 4011ab <phase_6+0xb7>
401197: 8b 0c 34 mov (%rsp,%rsi,1),%ecx
40119a: 83 f9 01 cmp $0x1,%ecx
40119d: 7e e4 jle 401183 <phase_6+0x8f>
40119f: b8 01 00 00 00 mov $0x1,%eax
4011a4: ba d0 32 60 00 mov $0x6032d0,%edx//the address of a list
4011a9: eb cb jmp 401176 <phase_6+0x82>
4011ab: 48 8b 5c 24 20 mov 0x20(%rsp),%rbx
4011b0: 48 8d 44 24 28 lea 0x28(%rsp),%rax
4011b5: 48 8d 74 24 50 lea 0x50(%rsp),%rsi
4011ba: 48 89 d9 mov %rbx,%rcx
4011bd: 48 8b 10 mov (%rax),%rdx
4011c0: 48 89 51 08 mov %rdx,0x8(%rcx)
4011c4: 48 83 c0 08 add $0x8,%rax
4011c8: 48 39 f0 cmp %rsi,%rax
4011cb: 74 05 je 4011d2 <phase_6+0xde>
4011cd: 48 89 d1 mov %rdx,%rcx
4011d0: eb eb jmp 4011bd <phase_6+0xc9>
4011d2: 48 c7 42 08 00 00 00 movq $0x0,0x8(%rdx)
4011d9: 00
4011da: bd 05 00 00 00 mov $0x5,%ebp
4011df: 48 8b 43 08 mov 0x8(%rbx),%rax
4011e3: 8b 00 mov (%rax),%eax
4011e5: 39 03 cmp %eax,(%rbx)
4011e7: 7d 05 jge 4011ee <phase_6+0xfa>
4011e9: e8 4c 02 00 00 callq 40143a <explode_bomb>
4011ee: 48 8b 5b 08 mov 0x8(%rbx),%rbx
4011f2: 83 ed 01 sub $0x1,%ebp
4011f5: 75 e8 jne 4011df <phase_6+0xeb>
4011f7: 48 83 c4 50 add $0x50,%rsp
4011fb: 5b pop %rbx
4011fc: 5d pop %rbp
4011fd: 41 5c pop %r12
4011ff: 41 5d pop %r13
401201: 41 5e pop %r14
401203: c3 retq
本题的代码非常复杂了,首先指出本题中含有链表的结构体。从(%rsp)。
接下来的这句,通过之前的练习,可以看出这是一个遍历数组的句子。(不包括0号元素),第一次循环时,每个元素与a[0]比较是否相等,若相等则炸弹爆炸。
401138: 8b 04 84 mov (%rsp,%rax,4),%eax
40113b: 39 45 00 cmp %eax,0x0(%rbp)//compare with a[0]
%ebx相当于数组下标,继续循环。
401145: 83 c3 01 add $0x1,%ebx
401148: 83 fb 05 cmp $0x5,%ebx
当下标1-5执行完毕后,会按如下执行:
40114d: 49 83 c5 04 add $0x4,%r13//next element
//跳转
401114: 4c 89 ed mov %r13,%rbp
401117: 41 8b 45 00 mov 0x0(%r13),%eax//a[0]-a[5]
40111b: 83 e8 01 sub $0x1,%eax
40111e: 83 f8 05 cmp $0x5,%eax//a[0]<=6
可见这次变成了先验证a[1]<=6,再将每个数与a[1]比较是否相等。
从而可以得到,数组由<=6且互不相等的6个数组成。
401153: 48 8d 74 24 18 lea 0x18(%rsp),%rsi//last
401158: 4c 89 f0 mov %r14,%rax//a[0]
40115b: b9 07 00 00 00 mov $0x7,%ecx
401160: 89 ca mov %ecx,%edx
401162: 2b 10 sub (%rax),%edx//7-a[i]
401164: 89 10 mov %edx,(%rax)//a[i]=7-a[i]
401166: 48 83 c0 04 add $0x4,%rax//a[i++]
40116a: 48 39 f0 cmp %rsi,%rax//not the last ele
40116d: 75 f1 jne 401160 <phase_6+0x6c>
接下来这又是一组循坏,目的是将a[i]=7-a[i]。
紧接着执行的是:
401197: 8b 0c 34 mov (%rsp,%rsi,1),%ecx
40119a: 83 f9 01 cmp $0x1,%ecx
40119d: 7e e4 jle 401183 <phase_6+0x8f>
又是一个数组遍历,遍历的目的是什么呢?那么看跳转之后访问的代码段,找到一个常数地址$0x6032d0,以下循环便是关于这个地址的。
401183: ba d0 32 60 00 mov $0x6032d0,%edx
401188: 48 89 54 74 20 mov %rdx,0x20(%rsp,%rsi,2)
40118d: 48 83 c6 04 add $0x4,%rsi//访问下一个元素
401191: 48 83 fe 18 cmp $0x18,%rsi//看是否完成遍历
401195: 74 14 je 4011ab <phase_6+0xb7>//跳出循环句
401197: 8b 0c 34 mov (%rsp,%rsi,1),%ecx
40119a: 83 f9 01 cmp $0x1,%ecx
40119d: 7e e4 jle 401183 <phase_6+0x8f>
这一串执行完毕后,大家应该已经有点晕了,这是在干什么呢?我们可以先访问一下地址$0x6032d0:
可以得到链表中的结点,每个结点占4字(以4字节为一字),链表中每个部分的组成很好猜,我就不多解释。
插入科普:
说完了局部,整体放大来看:这一段其实是将链表按输入数组中的值对应排到某个位置上。(0x20(%rsp,%rsi,2))
40116f: be 00 00 00 00 mov $0x0,%esi
401174: eb 21 jmp 401197 <phase_6+0xa3>
//下个结点地址
401176: 48 8b 52 08 mov 0x8(%rdx),%rdx
40117a: 83 c0 01 add $0x1,%eax
40117d: 39 c8 cmp %ecx,%eax
40117f: 75 f5 jne 401176 <phase_6+0x82>
401181: eb 05 jmp 401188 <phase_6+0x94>
401183: ba d0 32 60 00 mov $0x6032d0,%edx
401188: 48 89 54 74 20 mov %rdx,0x20(%rsp,%rsi,2)
40118d: 48 83 c6 04 add $0x4,%rsi
401191: 48 83 fe 18 cmp $0x18,%rsi
//最后的跳出
401195: 74 14 je 4011ab <phase_6+0xb7>
//数组遍历
401197: 8b 0c 34 mov (%rsp,%rsi,1),%ecx
40119a: 83 f9 01 cmp $0x1,%ecx
40119d: 7e e4 jle 401183 <phase_6+0x8f>
40119f: b8 01 00 00 00 mov $0x1,%eax
4011a4: ba d0 32 60 00 mov $0x6032d0,%edx//the address of a list
4011a9: eb cb jmp 401176 <phase_6+0x82>
之后,便跳转到这一段,按降序重建链表
//链表首地址
4011ab: 48 8b 5c 24 20 mov 0x20(%rsp),%rbx
//链表下一个节点地址
4011b0: 48 8d 44 24 28 lea 0x28(%rsp),%rax
//链表尾
4011b5: 48 8d 74 24 50 lea 0x50(%rsp),%rsi
4011ba: 48 89 d9 mov %rbx,%rcx
4011bd: 48 8b 10 mov (%rax),%rdx
4011c0: 48 89 51 08 mov %rdx,0x8(%rcx)
4011c4: 48 83 c0 08 add $0x8,%rax
4011c8: 48 39 f0 cmp %rsi,%rax
4011cb: 74 05 je 4011d2 <phase_6+0xde>
4011cd: 48 89 d1 mov %rdx,%rcx
4011d0: eb eb jmp 4011bd <phase_6+0xc9>
//尾指针为空
4011d2: 48 c7 42 08 00 00 00 movq $0x0,0x8(%rdx)
4011d9: 00
这一段是最后的测试部分,测试是否确实降序,若不是则引爆炸弹
4011da: bd 05 00 00 00 mov $0x5,%ebp//跳出条件
4011df: 48 8b 43 08 mov 0x8(%rbx),%rax
4011e3: 8b 00 mov (%rax),%eax
//和上一个元素值相比较
4011e5: 39 03 cmp %eax,(%rbx)
4011e7: 7d 05 jge 4011ee <phase_6+0xfa>
4011e9: e8 4c 02 00 00 callq 40143a <explode_bomb>
4011ee: 48 8b 5b 08 mov 0x8(%rbx),%rbx
4011f2: 83 ed 01 sub $0x1,%ebp
4011f5: 75 e8 jne 4011df <phase_6+0xeb>
按照降序排列后,顺序是3 4 5 6 1 2,但还要翻转一下,于是为4 3 2 1 6 5。
运行结果:
