$HandlerLabel ;标号
sub sp,sp,#4 ;(1)减少sp(用于存放转跳地址)
stmfd sp!,{r0} ;(2)把工作寄存器压入栈(lr does not push because it return to original address)
ldr r0,=$HandleLabel;将HandleXXX的址址放入r0
ldr r0,[r0] ;把HandleXXX所指向的内容(也就是中断程序的入口)放入r0
str r0,[sp,#4] ;(3)把中断服务程序(ISR)压入栈
ldmfd sp!,{r0,pc} ;(4)用出栈的方式恢复r0的原值和为pc设定新值(也就完成了到ISR的转跳)
MEND
IMPORT |Image$$RO$$Base| ; Base of ROM code
IMPORT |Image$$RO$$Limit| ; End of ROM code (=start of ROM data)
IMPORT |Image$$RW$$Base| ; Base of RAM to initialise
IMPORT |Image$$ZI$$Base| ; Base and limit of area
IMPORT |Image$$ZI$$Limit| ; to zero initialise
;1)The code, which converts to Big-endian, should be in little endian code.
;2)The following little endian code will be compiled in Big-Endian mode.
; The code byte order should be changed as the memory bus width.
;3)The pseudo instruction,DCD can not be used here because the linker generates error.
;条件编译,在编译成机器码前就设定好
ASSERT EF:ENDIAN_CHANGE ;判断ENDIAN_CHANGE是否已定义
[ ENDIAN_CHANGE ;如果已经定义了ENDIAN_CHANGE,则(在Option.inc里已经设为FALSE )
ASSERT EF:ENTRY_BUS_WIDTH ;判断ENTRY_BUS_WIDTH是否已定义
[ ENTRY_BUS_WIDTH=32 ;如果已经定义了ENTRY_BUS_WIDTH,则判断是不是为32
b ChangeBigEndian ;DCD 0xea000007
]
;在bigendian中,地址为A的字单元包括字节单元A,A+1,A+2,A+3,字节单元由高位到低位为A,A+1,A+2,A+3
; 地址为A的字单元包括半字单元A,A+2,半字单元由高位到低位为A,A+2
[ ENTRY_BUS_WIDTH=16
andeq r14,r7,r0,lsl #20 ;DCD 0x0007ea00 也是b ChangeBigEndian指令,只是由于总线不一样而取机器码的顺序不一样
] ;先取低位->高位 上述指令是通过机器码装换而来的
b HandlerUndef ;handler for Undefined mode ;0x04
b HandlerSWI ;handler for SWI interrupt ;0x08
b HandlerPabort ;handler for PAbort ;0x0c
b HandlerDabort ;handler for DAbort ;0x10
b . ;reserved 注意小圆点 ;0x14
b HandlerIRQ ;handler for IRQ interrupt ;0x18
b HandlerFIQ ;handler for FIQ interrupt ;0x1c
[ ENTRY_BUS_WIDTH=32
DCD 0xee110f10 ;0xee110f10 => mrc p15,0,r0,c1,c0,0
DCD 0xe3800080 ;0xe3800080 => orr r0,r0,#0x80; //Big-endian
DCD 0xee010f10 ;0xee010f10 => mcr p15,0,r0,c1,c0,0
;对存储器控制寄存器操作,指定内存模式为Big-endian
;因为刚开始CPU都是按照32位总线的指令格式运行的,如果采用其他的话,CPU别不了,必须转化
;但当系统初始化好以后,则CPU能自动识别
]
[ ENTRY_BUS_WIDTH=16
DCD 0x0f10ee11
DCD 0x0080e380
DCD 0x0f10ee01
;因为采用Big-endian模式,采用16位总线时,物理地址的高位和数据的地位对应
;所以指令的机器码也相应的高低对调
]
[ ENTRY_BUS_WIDTH=8
DCD 0x100f11ee
DCD 0x800080e3
DCD 0x100f01ee
]
DCD 0xffffffff ;swinv 0xffffff is similar with NOP and run well in both endian mode.
DCD 0xffffffff
DCD 0xffffffff
DCD 0xffffffff
DCD 0xffffffff
b ResetHandler
;=========================================================================================
; Function for entering power down mode
; 1. SDRAM should be in self-refresh mode.
; 2. All interrupt should be maksked for SDRAM/DRAM self-refresh.
; 3. LCD controller should be disabled for SDRAM/DRAM self-refresh.
; 4. The I-cache may have to be turned on.
; 5. The location of the following code may have not to be changed.
;//进入Stop mode
ENTER_STOP
ldr r0,=REFRESH ;0x48000024 DRAM/SDRAM refresh config
ldr r3,[r0] ;r3=rREFRESH
mov r1, r3
orr r1, r1, #BIT_SELFREFRESH ;Enable SDRAM self-refresh
str r1, [r0] ;Enable SDRAM self-refresh
mov r1,#16 ;wait until self-refresh is issued. may not be needed.
0
subs r1,r1,#1
bne %B0
;//wait 16 fclks for self-refresh
ldr r0,=CLKCON ;enter STOP mode.
str r2,[r0]
mov r1,#32
0
subs r1,r1,#1 ;1) wait until the STOP mode is in effect.
bne %B0 ;2) Or wait here until the CPU&eripherals will be turned-off
;Entering SLEEP mode, only the reset by wake-up is available.
ldr r0,=REFRESH ;exit from SDRAM self refresh mode.
str r3,[r0]
MOV_PC_LR ;back to main process
ENTER_SLEEP
;NOTE.
;1) rGSTATUS3 should have the return address after wake-up from SLEEP mode.
mov r1,#16 ;Wait until self-refresh is issued,which may not be needed.
0
subs r1,r1,#1
bne %B0
;//Wait until self-refresh is issued,which may not be needed
b . ;CPU will die here.
;//进入Sleep Mode,1)设置SDRAM为self-refresh
;// 2)设置MISCCR bit[17] 1:sclk0=sclk 0:sclk0=0
;// bit[18] 1:sclk1=sclk 0:sclk1=0
;// bit[19] 1:Self refresh retain enable
;// 0:Self refresh retain disable
;// When 1, After wake-up from sleep, The self-refresh will be retained.
WAKEUP_SLEEP
;Release SCLKn after wake-up from the SLEEP mode.
ldr r1,=MISCCR
ldr r0,[r1]
bic r0,r0,#(7<<17) ;SCLK0:0->SCLK, SCLK1:0->SCLK, SCKE:0->=SCKE.
str r0,[r1]
;//设置MISCCR
; ==手册第243页==
; If HDIVN is not 0, the CPU bus mode has to be changed from the fast bus mode to the asynchronous
; bus mode using following instructions
;MMU_SetAsyncBusMode
;mrc p15,0,r0,c1,c0,0
;orr r0,r0,#R1_nF:OR:R1_iA
;mcr p15,0,r0,c1,c0,0
[ CLKDIV_VAL>1 ; 意思是 Fclk:Hclk 不是 1:1.
mrc p15,0,r0,c1,c0,0
orr r0,r0,#0xc0000000;R1_nF:OR:R1_iA
mcr p15,0,r0,c1,c0,0
|
mrc p15,0,r0,c1,c0,0
bic r0,r0,#0xc0000000;R1_iA:OR:R1_nF
mcr p15,0,r0,c1,c0,0
]
;检查是否从SLEEP模式中恢复
;//Check if the boot is caused by the wake-up from SLEEP mode.
ldr r1,=GSTATUS2
ldr r0,[r1]
tst r0,#0x2 ;test if bit[1] is 1 or 0 0->C=1
; 1->C=0
;In case of the wake-up from SLEEP mode, go to SLEEP_WAKEUP handler.
bne WAKEUP_SLEEP ;C=0,jump
;要是r21 ; means Fclk:Hclk is not 1:1.
; bl MMU_SetAsyncBusMode
; |
; bl MMU_SetFastBusMode ; default value.
; ]
;bl Led_Test
;===========================================================
; 进入C语言前的最后一步了,就是把我们用说查二级向量表
; 的中断例程安装到一级向量表(异常向量表)里.
;//5.设置缺省中断处理函数
; Setup IRQ handler
ldr r0,=HandleIRQ ;This routine is needed
ldr r1,=IsrIRQ ;if there isn't 'subs pc,lr,#4' at 0x18, 0x1c
str r1,[r0]
;//initialize the IRQ 将普通中断判断程序的入口地址给HandleIRQ
;//////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////
;注意,以下这段可能不需要!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!
;//6.将数据段拷贝到ram中 将零初始化数据段清零跳入C语言的main函数执行到这步结束bootloader初步引导结束
;If main() is used, the variable initialization will be done in __main().
[ {FALSE} ;by tinko -- 最外面的条件由tinko添加,实际上不再执行这段
[ NOT:USE_MAIN ;initialized {FALSE}
;Copy and paste RW data/zero initialized data
LDR r0, =|Image$$RO$$Limit| ; Get pointer to ROM data
LDR r1, =|Image$$RW$$Base| ; and RAM copy
LDR r3, =|Image$$ZI$$Base|
;Zero init base => top of initialised data
CMP r0, r1 ; Check that they are different just for debug??????????????????????????
BEQ %F2
1
CMP r1, r3 ; Copy init data
LDRCC r2, [r0], #4 ;--> LDRCC r2, [r0] + ADD r0, r0, #4
STRCC r2, [r1], #4 ;--> STRCC r2, [r1] + ADD r1, r1, #4
BCC %B1
2
LDR r1, =|Image$$ZI$$Limit| ; Top of zero init segment
MOV r2, #0
3
CMP r3, r1 ; Zero init
STRCC r2, [r3], #4
BCC %B3
]
]
;!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!!
[ NOT:THUMBCODE ;if thumbcode={false} bl main L代表logic变量
bl Main ;Don't use main() because ......
b . ;注意小圆点
]
;//if thumbcod={ture}
[ THUMBCODE ;for start-up code for Thumb mode
orr lr,pc,#1
bx lr
CODE16
bl Main ;Don't use main() because ......
b . ;注意小圆点
CODE32
]
;function initializing stacks
InitStacks
;Don't use DRAM,such as stmfd,ldmfd......
;SVCstack is initialized before
;Under toolkit ver 2.5, 'msr cpsr,r1' can be used instead of 'msr cpsr_cxsf,r1'