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I have this C driver program

#include <stdlib.h>
#include <stdio.h>

extern void subs( char *string, char this_c, char that_cr ) ;

int main(int argc, char *argv[] )
{
    char this_c= 'e' ;  
    char that_c = 'X' ;
    char orgstr[] = "sir sid easily teases sea sick seals" ;

    subs( orgstr, this_c, that_c ) ;
    printf( "Changed string: %s\n", orgstr ) ;

    exit( 0 ) ;
}

I have to make an arm program that changes the 'e' on the String to 'x', so far this is what I have \

.global subs

subs:   
    stmfd sp!, {v1-v6, lr} //string entry
    mov v1, #0 //set index to 0
    mov v2, #0 // set count to 0


loop :
    ldrb    v3, [a1,v1] // get the first char
    cmp     a2,v3    //compare char if its the same to the one that has to b chang
    mov v3, a3   // change the character for the new character
    addeq   v2, v2, #1 //increment count
    add     v1, v1, #1 // increment index
    cmp v3,#0   //end of string
    bne     loop
    mov     a1,v2 //return value

    ldmfd   sp!, {v1-v6, pc}
.end

This is giving me an infinite loop though and I'm stuck, can anyone help me figure out where the problem is??


So this is what i have so far,

.global subs

subs:   
    stmfd sp!, {v1-v6, lr} //string entry
    mov v1, #0 //set index to 0
    mov v2, #0 // set count to 0


loop :
    ldrb    v3, [a1,v1] // get the first char
    cmp     a2,v3    //compare char if its the same to the one that has to b chang
    moveq   v3, a3   // change the character for the new character
    addeq   v2, v2, #1 //increment count
    add     v1, v1, #1 // increment index
    cmp v3,#0   //end of string
    bne     loop
    mov     a1,v2 //return value

    ldmfd   sp!, {v1-v6, pc}
.end

it runs but the character is never changed..., the output and the end is the same one as the input, for some reason, the a2 registry is null...

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2 Answers 2

This line is completely wrong

mov v3, a3   // change the character for the new character

This should be a conditional store back into the string.

streqb a3, [a1, v1]
share|improve this answer
    
i changed the mov to moveq, now it doesnt give me an infinite loop anymore but the string comes out just like the original one, no changes where made –  user1773469 Nov 8 '12 at 6:52
    
It needs to be an STR not a mov. MOV won't change the string in memory, just the contents of the register. –  Pete Fordham Nov 8 '12 at 19:04
    
im geting this error type: OFFSET_IMM –  user1773469 Nov 8 '12 at 19:14
    
I've updated my answer with the instruction I think you should use. Please post the exact text of the error message if it still doesn't work. –  Pete Fordham Nov 8 '12 at 20:18
    
Error: bad instruction `strbeq a3,[a1,v1] this is the error im getting now –  user1773469 Nov 9 '12 at 2:13

There are a couple of problems with your code. Is this for homework?

mov v3, a3 overwrites v3 with the new character unconditionally and is never written back to memory (like Pete Fordham noted). Since you also use v3 when checking for the end of the string, you will never terminate the loop since you just changed v3 into a3. You are also setting a return value for a function which is declared as void which will give problems if you ever attempt to use the return value in the C-code.

I would probably do something like this instead (untested but should give you some ideas):

loop:
    ldrb v3, [a1], #1
    cmp a2, v3
    strbeq a2, [a1, #-1]
    cmp v3, #0
    bne loop
share|improve this answer
1  
mmm, that gave me an idea but in that loop you never change the char to the new char...since the X char is stored in a3 and u never use it there, if u do i dont see it, i am new at arm –  user1773469 Nov 8 '12 at 17:21
    
@Leo You should do the post increment on the strb to simplify things. If it's ARMv7 you could also use CBNZ instead of CMP + BNE. –  Pete Fordham Nov 8 '12 at 20:20
    
@PeteFordham: Since the strb is conditional I cannot really see how doing the post increment there works. Regarding CBNZ: Thanks for the tip, hadn't noticed that they had added an instruction for that. –  Leo Nov 9 '12 at 8:21
    
@user1773469: I think you are missing how memory manipulation works. When you do mov v3, a3 you are setting the register v3 to a3. This will not change anything in the string since the string is stored in memory. If you want to change the string you will have to do some kind of writing to memory, in this case strbeq. Since you can write any register to memory, there is no reason to first set v3 to a2. –  Leo Nov 9 '12 at 8:29
    
i changed that line to streqb a3, v3 and i am getting this : Error: internal_relocation (type: OFFSET_IMM) not fixed up –  user1773469 Nov 11 '12 at 0:11

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