The difference between mov and movl instruction in X86? and I meet some trouble when reading assembly
Question
Recently, I read some books about computer science. I wrote some C code, and disassembled them, using gcc and objdump .
The following C code:
#include <stdio.h>
#include <stdbool.h>
int dojob()
{
static short num[ ][4] = { {2, 9, -1, 5}, {3, 8, 2, -6}};
static short *pn[ ] = {num[0], num[1]};
static short s[2] = {0, 0};
int i, j;
for (i=0; i<2; i++) {
for (j=0; j<4; j++){
s[i] += *pn[i]++;
}
printf ("sum of line %d: %d\n", i+1, s[i]);
}
return 0;
}
int main ( )
{
dojob();
}
got the following assembly code (AT&T syntex; only assembly of function dojob and some data is list):
00401350 <_dojob>:
401350: 55 push %ebp
401351: 89 e5 mov %esp,%ebp
401353: 83 ec 28 sub $0x28,%esp
401356: c7 45 f4 00 00 00 00 movl $0x0,-0xc(%ebp)
40135d: eb 75 jmp 4013d4 <_dojob+0x84>
40135f: c7 45 f0 00 00 00 00 movl $0x0,-0x10(%ebp)
401366: eb 3c jmp 4013a4 <_dojob+0x54>
401368: 8b 45 f4 mov -0xc(%ebp),%eax
40136b: 8b 04 85 00 20 40 00 mov 0x402000(,%eax,4),%eax
401372: 8d 48 02 lea 0x2(%eax),%ecx
401375: 8b 55 f4 mov -0xc(%ebp),%edx
401378: 89 0c 95 00 20 40 00 mov %ecx,0x402000(,%edx,4)
40137f: 0f b7 10 movzwl (%eax),%edx
401382: 8b 45 f4 mov -0xc(%ebp),%eax
401385: 0f b7 84 00 08 50 40 movzwl 0x405008(%eax,%eax,1),%eax
40138c: 00
40138d: 89 c1 mov %eax,%ecx
40138f: 89 d0 mov %edx,%eax
401391: 01 c8 add %ecx,%eax
401393: 89 c2 mov %eax,%edx
401395: 8b 45 f4 mov -0xc(%ebp),%eax
401398: 66 89 94 00 08 50 40 mov %dx,0x405008(%eax,%eax,1)
40139f: 00
4013a0: 83 45 f0 01 addl $0x1,-0x10(%ebp)
4013a4: 83 7d f0 03 cmpl $0x3,-0x10(%ebp)
4013a8: 7e be jle 401368 <_dojob+0x18>
4013aa: 8b 45 f4 mov -0xc(%ebp),%eax
4013ad: 0f b7 84 00 08 50 40 movzwl 0x405008(%eax,%eax,1),%eax
4013b4: 00
4013b5: 98 cwtl
4013b6: 8b 55 f4 mov -0xc(%ebp),%edx
4013b9: 83 c2 01 add $0x1,%edx
4013bc: 89 44 24 08 mov %eax,0x8(%esp)
4013c0: 89 54 24 04 mov %edx,0x4(%esp)
4013c4: c7 04 24 24 30 40 00 movl $0x403024,(%esp)
4013cb: e8 50 08 00 00 call 401c20 <_printf>
4013d0: 83 45 f4 01 addl $0x1,-0xc(%ebp)
4013d4: 83 7d f4 01 cmpl $0x1,-0xc(%ebp)
4013d8: 7e 85 jle 40135f <_dojob+0xf>
4013da: b8 00 00 00 00 mov $0x0,%eax
4013df: c9 leave
4013e0: c3 ret
Disassembly of section .data:
00402000 <__data_start__>:
402000: 08 20 or %ah,(%eax)
402002: 40 inc %eax
402003: 00 10 add %dl,(%eax)
402005: 20 40 00 and %al,0x0(%eax)
Disassembly of section .bss:
...
00405008 <_s.1927>:
405008: 00 00 add %al,(%eax)
...
I have two questions:
I don't understand the difference between mov and movl instruction? Why the compiler generate mov for some code, and movl for others?
I completely understand the meaning of the C code, but not the assembly that the compiler generated. Who can make some comments for it for me to understand? I will thank a lot.
1 answers
solution1
-1 2018-06-05 08:02:12
The MOVL instruction was generated because you put two int (i and j variables), MOVL will perform a MOV of 32 bits, and integer' size is 32 bits.
a non exhaustive list of all MOV* exist (like MOVD for doubleword or MOVQ for quadword) to allow to optimize your code and use the better expression to gain most time as possible.
PS: may be the -M intel objdump's argument can help you to have a better comprehension of the disassembly, a lot of man on the Intel syntax can may be find easily.
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