UBOOT学习(其三):uboot第一阶段代码分析

uboot第一阶段代码

uboot的作用主要就是加载内核,但加载内核就设计了flash,sdram等外设,而uboot的第一阶段代码就是初始化各个硬件的外设.

如何查看代码?

首先我们要知道CPU的架构,在cpu/目录下打开相应cpu的文件夹,(我这里用的是arm920t),打开后就有start.S文件,这个文件就是uboot的起始.为什么?因为在上电时,栈还没被设置,只能使用汇编语言.

.globl _start
_start:	b       reset

...

reset:
	/*
	 * set the cpu to SVC32 mode
	 */
	mrs	r0,cpsr
	bic	r0,r0,#0x1f
	orr	r0,r0,#0xd3
	msr	cpsr,r0

/* turn off the watchdog */
#if defined(CONFIG_S3C2400)
# define pWTCON		0x15300000
# define INTMSK		0x14400008	/* Interupt-Controller base addresses */
# define CLKDIVN	0x14800014	/* clock divisor register */
#elif defined(CONFIG_S3C2410)
# define pWTCON		0x53000000
# define INTMSK		0x4A000008	/* Interupt-Controller base addresses */
# define INTSUBMSK	0x4A00001C
# define CLKDIVN	0x4C000014	/* clock divisor register */
#endif

#if defined(CONFIG_S3C2400) || defined(CONFIG_S3C2410)
	ldr     r0, =pWTCON
	mov     r1, #0x0
	str     r1, [r0]

	/*
	 * mask all IRQs by setting all bits in the INTMR - default
	 */
	mov	r1, #0xffffffff
	ldr	r0, =INTMSK
	str	r1, [r0]
# if defined(CONFIG_S3C2410)
	ldr	r1, =0x3ff
	ldr	r0, =INTSUBMSK
	str	r1, [r0]
# endif

	/* FCLK:HCLK:PCLK = 1:2:4 */
	/* default FCLK is 120 MHz ! */
	ldr	r0, =CLKDIVN
	mov	r1, #3
	str	r1, [r0]
#endif	/* CONFIG_S3C2400 || CONFIG_S3C2410 */

	/*
	 * we do sys-critical inits only at reboot,
	 * not when booting from ram!
	 */
#ifndef CONFIG_SKIP_LOWLEVEL_INIT
	bl	cpu_init_crit
#endif

第一条执行就是reset函数,

而reset执行的内容为:

1.设置cpu 为svc32模式,我也不知道,往下看

2.关闭看门狗

3.关中断

4.设置时钟

5.跳转到cpu_init_crit

cpu_init_crit:
	/*
	 * flush v4 I/D caches
	 */
	mov	r0, #0
	mcr	p15, 0, r0, c7, c7, 0	/* flush v3/v4 cache */
	mcr	p15, 0, r0, c8, c7, 0	/* flush v4 TLB */

	/*
	 * disable MMU stuff and caches
	 */
	mrc	p15, 0, r0, c1, c0, 0
	bic	r0, r0, #0x00002300	@ clear bits 13, 9:8 (--V- --RS)
	bic	r0, r0, #0x00000087	@ clear bits 7, 2:0 (B--- -CAM)
	orr	r0, r0, #0x00000002	@ set bit 2 (A) Align
	orr	r0, r0, #0x00001000	@ set bit 12 (I) I-Cache
	mcr	p15, 0, r0, c1, c0, 0

	/*
	 * before relocating, we have to setup RAM timing
	 * because memory timing is board-dependend, you will
	 * find a lowlevel_init.S in your board directory.
	 */
	mov	ip, lr
	bl	lowlevel_init
	mov	lr, ip
	mov	pc, lr

cpu_init_crit的主要内容就是:

6.刷新I/D cache (刷新总线)

7.关闭MMU和cache(缓存)

8.跳转到lowlevel_init

这个lowlevel_init就需要在bord文件夹下面去寻找了,根据你开发板的型号.

.globl lowlevel_init
lowlevel_init:
	/* memory control configuration */
	/* make r0 relative the current location so that it */
	/* reads SMRDATA out of FLASH rather than memory ! */
	ldr     r0, =SMRDATA
	ldr	r1, _TEXT_BASE
	sub	r0, r0, r1
	ldr	r1, =BWSCON	/* Bus Width Status Controller */
	add     r2, r0, #13*4
0:
	ldr     r3, [r0], #4
	str     r3, [r1], #4
	cmp     r2, r0
	bne     0b

	/* everything is fine now */
	mov	pc, lr

	.ltorg
/* the literal pools origin */

SMRDATA:
    .word (0+(B1_BWSCON<<4)+(B2_BWSCON<<8)+(B3_BWSCON<<12)+(B4_BWSCON<<16)+(B5_BWSCON<<20)+(B6_BWSCON<<24)+(B7_BWSCON<<28))
    .word ((B0_Tacs<<13)+(B0_Tcos<<11)+(B0_Tacc<<8)+(B0_Tcoh<<6)+(B0_Tah<<4)+(B0_Tacp<<2)+(B0_PMC))
    .word ((B1_Tacs<<13)+(B1_Tcos<<11)+(B1_Tacc<<8)+(B1_Tcoh<<6)+(B1_Tah<<4)+(B1_Tacp<<2)+(B1_PMC))
    .word ((B2_Tacs<<13)+(B2_Tcos<<11)+(B2_Tacc<<8)+(B2_Tcoh<<6)+(B2_Tah<<4)+(B2_Tacp<<2)+(B2_PMC))
    .word ((B3_Tacs<<13)+(B3_Tcos<<11)+(B3_Tacc<<8)+(B3_Tcoh<<6)+(B3_Tah<<4)+(B3_Tacp<<2)+(B3_PMC))
    .word ((B4_Tacs<<13)+(B4_Tcos<<11)+(B4_Tacc<<8)+(B4_Tcoh<<6)+(B4_Tah<<4)+(B4_Tacp<<2)+(B4_PMC))
    .word ((B5_Tacs<<13)+(B5_Tcos<<11)+(B5_Tacc<<8)+(B5_Tcoh<<6)+(B5_Tah<<4)+(B5_Tacp<<2)+(B5_PMC))
    .word ((B6_MT<<15)+(B6_Trcd<<2)+(B6_SCAN))
    .word ((B7_MT<<15)+(B7_Trcd<<2)+(B7_SCAN))
    .word ((REFEN<<23)+(TREFMD<<22)+(Trp<<20)+(Trc<<18)+(Tchr<<16)+REFCNT)
    .word 0x32
    .word 0x30
    .word 0x30

从这里我们可以看出,lowlevel_init.S的主要工作内容就是:

9.初始化SDRAM

回到start.S

relocate:				/* relocate U-Boot to RAM	    */
	adr	r0, _start		/* r0 <- current position of code   */
	ldr	r1, _TEXT_BASE		/* test if we run from flash or RAM */
	cmp     r0, r1                  /* don't reloc during debug         */
	beq     stack_setup

	ldr	r2, _armboot_start
	ldr	r3, _bss_start
	sub	r2, r3, r2		/* r2 <- size of armboot            */
	add	r2, r0, r2		/* r2 <- source end address         */

relocate用于重定位uboot

后面就是设置栈了

stack_setup:
	ldr	r0, _TEXT_BASE		/* upper 128 KiB: relocated uboot   */
	sub	r0, r0, #CFG_MALLOC_LEN	/* malloc area                      */
	sub	r0, r0, #CFG_GBL_DATA_SIZE /* bdinfo                        */
#ifdef CONFIG_USE_IRQ
	sub	r0, r0, #(CONFIG_STACKSIZE_IRQ+CONFIG_STACKSIZE_FIQ)
#endif
	sub	sp, r0, #12		/* leave 3 words for abort-stack    */

clear_bss:
	ldr	r0, _bss_start		/* find start of bss segment        */
	ldr	r1, _bss_end		/* stop here                        */
	mov 	r2, #0x00000000		/* clear                            */

clbss_l:str	r2, [r0]		/* clear loop...                    */
	add	r0, r0, #4
	cmp	r0, r1
	ble	clbss_l

	ldr	pc, _start_armboot

_start_armboot:	.word start_armboot

10.设置完栈后,uboot跳转到第二阶段(start_armboot)

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