Code Examples from Class: Difference between revisions

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* Compare Two Null Terminated Strings (Note: this is not tested. It may or may not work.)
* Compare Two Null Terminated Strings
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; Subroutine to compare two null terminated ASCII strings.
; Subroutine to compare two null terminated ASCII strings.
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compare_strings
compare_strings
stmfd sp!, {r4,r5,lr} ; save used registers and the link register (r14)
stmfd sp!, {r2,r4,r5,lr} ; save used registers and the link register (r14)
mov r2, #0 ; Initialize the counter for the first position.
mov r2, #0 ; Initialize the counter for the first position.
loop
loop
Line 173: Line 173:
match
match
mov r0, #1
mov r0, #1
finish
finish
ldmfd sp!, {r4,r5,pc} ; pop the stack and return
mov r1,r2 ; Move the count into the result register.
ldmfd sp!, {r2,r4,r5,pc} ; pop the stack and return
string1
string1
DCB "This is the first string.",00 ; For testing purposes.
DCB "This is the first string.",00 ; For testing purposes.
ALIGN
ALIGN
string2
string2
DCB "This is the second string.",00
DCB "This is the first string.",00
ALIGN
ALIGN
END
END

Revision as of 10:22, 8 November 2013

  • Factorial
; Factorial Calculation
; The answer is in R10

; Rob Frohne 2013

	GLOBAL Reset_Handler 
	AREA Factorial, CODE, READONLY
	ENTRY

Reset_Handler
		movs r8, #0 ; Take the factorial of this number, n.
		mov r10, #1	 ; 0! and 1! are 1
		beq stop   ; If r8 is zero we are done
		cmp r8, #1	 ; If r8 is 1, 
		beq stop	  ; we are done
		subs r9, r8, #1	; n-1
loop	mulne r10, r9, r8 ; n(n-1)
		mov r8, r10
		subs r9, r9, #1
		bne loop
stop 	b stop
		END


  • 64 Bit Add
VAL1A EQU 0xffffffff
VAL1B EQU 0x0000000f
VAL2A EQU 0x00000001
VAL2B EQU 0x00000001
	AREA LongAdd, CODE
	ENTRY
		ldr R0, = VAL1A
		ldr R1, = VAL1B
		ldr R2, = VAL2A
		ldr R3, = VAL2B
		adds R8,R0,R1
		adcs R9,R1,R3
stop 	b stop
	END

  • Copy to RAM
   AREA Exaddress, CODE, READONLY
   EXPORT Reset_Handler
Reset_Handler
   LDR R9, =list
   mov R7, #4 ; number in list
   ldr r6, =datastart 
loop
   ldr r8,[r9],#4
   str r8,[r6],#4
   subs r7,r7,#1
   bne loop
 
stop b stop
   ALIGN
list DCW 0x1111, 0x2222, 0x3333, 0x4444, 0x5555
   ALIGN
string DCB "This is a test.",0
string2 DCB 'T','h','i'
   ALIGN
   AREA Thedata, DATA, NOINIT, READWRITE
datastart SPACE 20
 
   END

  • Subroutine Example1
; First Subroutine Example
; This program demonstrates using a subroutine,
; saving registers on the stack, etc.

; Rob Frohne, 1/3/2013

stack_start EQU 0x40001000
   AREA Subroutine_Example, CODE

   ENTRY

Start
   ldr sp, =stack_start ; Tell where we will place the stack.
                        ; (It goes down (lower addresses from here.)
   mov r1, #1 ; Store some numebers in some registers
   mov r2, #2
   mov r3, #3
   bl subroutine
stop b stop

; This subroutine saves the registers,
; messes up the registers locally,
; then restores the registers and returns.
subroutine
   stmfd sp!, {r1-r2,lr} ; save used registers and the link register (r14)
   mov r1,#0xffffffff ; mess up the registers
   mov r2, r1
   ldmfd sp!, {r1,r2,pc} ; pop the stack and return 
   END

  • Minimum of a Signed Number
; This program finds the minimum of a list of constant words in signed format
; The result is in r3 at the end of the routine.
; Rob Frohne 10/30/2013

	AREA Program, CODE, READONLY

	ENTRY

	ldr r0,=end		; load the beginning address of the code & initialize it as the pointer.
	ldr r2,=begin	; load the ending address of the code.
	mov r3,#0x7fffffff ; Initialize r3 as the most positive number.

loop	
	ldr r6,[r2],#4 ; load the next data into r6 and post increment r2 for the next data.
	cmp r6,r3 ; Find out if r6 > r3. result from r6-r3  like subs r7,r6,r3 without r6 necessary.
	bgt no_update	 ; If it is no update.
	mov r3,r6		; update if r6 is lower than r3.
no_update
	cmp r0,r2  ;  are we at the end yet
	bne loop		   ; if r7 != 0 then keep looping

stop b stop
ALIGN
begin
	DCD 0x8fffffff, 0x55555555, 0x44444444, 0x77777777, 0xffffffff
end	
	END 

  • Compare Two Null Terminated Strings
; Subroutine to compare two null terminated ASCII strings.
; The address where the two strings start are in r0 and r1
; The return is in r0, 1 for match and 0 for don't match.
; If they don't match, r1 gives the number of the first 
; character that didn't match, starting with 0.
; r2 and r3 are not protected.
; Rob Frohne 11/6/2013
stack_start EQU 0x40001000
	AREA String_Compare, CODE
    ENTRY
Start
	ldr sp, =stack_start ; Tell where we will place the stack.
                        ; (It goes down (lower addresses from here.)
	ldr r0, =string1
	ldr r1, =string2
	bl compare_strings
stop b stop

compare_strings
	stmfd sp!, {r2,r4,r5,lr} ; save used registers and the link register (r14)
	mov r2, #0 ; Initialize the counter for the first position.
loop
	ldrb r4,[r0],#1
	ldrb r5,[r1],#1
	cmp r5,r4
	bne do_not_match
	cmp r4, #0 ; check for end of string.
	beq match
	add r2, #1
	b loop
do_not_match
	mov r0, #0 ; don't match
	b finish
match
	mov r0, #1
finish
	mov r1,r2 ; Move the count into the result register.	
	ldmfd sp!, {r2,r4,r5,pc} ; pop the stack and return 
string1
	DCB "This is the first string.",00	; For testing purposes.
	ALIGN
string2
	DCB "This is the first string.",00
	ALIGN
        END