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📄 tgt_machdep.c

📁 MIPS处理器的bootloader,龙芯就是用的修改过的PMON2
💻 C
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}int netioctl(int a, int b, void *c){        return -1;}void netpoll(void){}voidtgt_netpoll(){}#endif /*INET*//*************************************************************************//* *	Target dependent Non volatile memory support code *	================================================= * * *  On this target a part of the boot flash memory is used to store *  environment. See PUMA.h for mapping details. (offset and size). *//* *  Read in environment from NV-ram and set. */voidtgt_mapenv(int (*func) __P((char *, char *))){        char *ep;        char env[512];        char *nvram;	int i;        /*         *  Check integrity of the NVRAM env area. If not in order         *  initialize it to empty.         */#ifdef NVRAM_IN_FLASH        nvram = (char *)(tgt_flashmap())->fl_map_base;	if(fl_devident(nvram, NULL) == 0 ||           cksum(nvram + NVRAM_OFFS, NVRAM_SIZE, 0) != 0) {	nvram += NVRAM_OFFS;#else        nvram = (char *)malloc(NVRAM_SECSIZE);	nvram_get(nvram);	nvram += NVRAM_OFFS;	if(cksum(nvram, NVRAM_SIZE, 0) != 0) {#endif                nvram_invalid = 1;        }        else {                ep = nvram+2;;                while(*ep != 0) {                        char *val = 0, *p = env;			i = 0;                        while((*p++ = *ep++) && (ep <= nvram + NVRAM_SIZE - 1) && i++ < 255) {                                if((*(p - 1) == '=') && (val == NULL)) {                                        *(p - 1) = '\0';                                        val = p;                                }                        }                        if(ep <= nvram + NVRAM_SIZE - 1 && i < 255) {                                (*func)(env, val);                        }                        else {                                nvram_invalid = 2;                                break;                        }                }        }	/*	 *  Ethernet address for Galileo ethernet is stored in the last	 *  six bytes of nvram storage. Set environment to it.	 */	bcopy(&nvram[ETHER_OFFS], hwethadr, 6);	sprintf(env, "%02x:%02x:%02x:%02x:%02x:%02x", hwethadr[0], hwethadr[1],	    hwethadr[2], hwethadr[3], hwethadr[4], hwethadr[5]);	(*func)("ethaddr", env);	ep = nvram - NVRAM_OFFS + NVRAM_VXWORKS;	for (i = 0; i < 256; i++) {		if (ep[i] == '\0') {			(*func)("vxWorks", ep);			break;		}		else if (!isprint(ep[i]))			break;	}#ifndef NVRAM_IN_FLASH	free(nvram - NVRAM_OFFS);#endif	sprintf(env, "%d", memorysize / (1024 * 1024));	(*func)("memsize", env);	sprintf(env, "%d", md_pipefreq);	(*func)("cpuclock", env);	sprintf(env, "%d", md_cpufreq);	(*func)("busclock", env);	(*func)("systype", SYSTYPE);}inttgt_unsetenv(char *name){        char *ep, *np, *sp;        char *nvram;        char *nvrambuf;        char *nvramsecbuf;	int status;        if(nvram_invalid) {                return(0);        }	/* Use first defined flash device (we probably have only one) */#ifdef NVRAM_IN_FLASH        nvram = (char *)(tgt_flashmap())->fl_map_base;	/* Map. Deal with an entire sector even if we only use part of it */        nvram += NVRAM_OFFS & ~(NVRAM_SECSIZE - 1);	nvramsecbuf = (char *)malloc(NVRAM_SECSIZE);	if(nvramsecbuf == 0) {		printf("Warning! Unable to malloc nvrambuffer!\n");		return(-1);	}        memcpy(nvramsecbuf, nvram, NVRAM_SECSIZE);	nvrambuf = nvramsecbuf + (NVRAM_OFFS & (NVRAM_SECSIZE - 1));#else        nvramsecbuf = nvram = (char *)malloc(NVRAM_SECSIZE);	nvram_get(nvram);	nvrambuf = nvramsecbuf + NVRAM_OFFS;#endif        ep = nvrambuf + 2;	status = 0;        while((*ep != '\0') && (ep <= nvrambuf + NVRAM_SIZE)) {                np = name;                sp = ep;                while((*ep == *np) && (*ep != '=') && (*np != '\0')) {                        ep++;                        np++;                }                if((*np == '\0') && ((*ep == '\0') || (*ep == '='))) {                        while(*ep++);                        while(ep <= nvrambuf + NVRAM_SIZE) {                                *sp++ = *ep++;                        }                        if(nvrambuf[2] == '\0') {                                nvrambuf[3] = '\0';                        }                        cksum(nvrambuf, NVRAM_SIZE, 1);#ifdef NVRAM_IN_FLASH                        if(fl_erase_device(nvram, NVRAM_SECSIZE, FALSE)) {                                status = -1;				break;                        }                        if(fl_program_device(nvram, nvramsecbuf, NVRAM_SECSIZE, FALSE)) {                                status = -1;				break;                        }#else			nvram_put(nvram);#endif			status = 1;			break;                }                else if(*ep != '\0') {                        while(*ep++ != '\0');                }        }	free(nvramsecbuf);        return(status);}inttgt_setenv(char *name, char *value){        char *ep;        int envlen;        char *nvrambuf;        char *nvramsecbuf;#ifdef NVRAM_IN_FLASH        char *nvram;#endif	/* Non permanent vars. */	if(strcmp(EXPERT, name) == 0) {		return(1);	}        /* Calculate total env mem size requiered */        envlen = strlen(name);        if(envlen == 0) {                return(0);        }        if(value != NULL) {                envlen += strlen(value);        }        envlen += 2;    /* '=' + null byte */        if(envlen > 255) {                return(0);      /* Are you crazy!? */        }	/* Use first defined flash device (we probably have only one) */#ifdef NVRAM_IN_FLASH        nvram = (char *)(tgt_flashmap())->fl_map_base;	/* Deal with an entire sector even if we only use part of it */        nvram += NVRAM_OFFS & ~(NVRAM_SECSIZE - 1);#endif        /* If NVRAM is found to be uninitialized, reinit it. */	if(nvram_invalid) {		nvramsecbuf = (char *)malloc(NVRAM_SECSIZE);		if(nvramsecbuf == 0) {			printf("Warning! Unable to malloc nvrambuffer!\n");			return(-1);		}#ifdef NVRAM_IN_FLASH		memcpy(nvramsecbuf, nvram, NVRAM_SECSIZE);#else		nvram_get(nvramsecbuf);#endif		nvrambuf = nvramsecbuf + (NVRAM_OFFS & (NVRAM_SECSIZE - 1));                memset(nvrambuf, -1, NVRAM_SIZE);                nvrambuf[2] = '\0';                nvrambuf[3] = '\0';                cksum((void *)nvrambuf, NVRAM_SIZE, 1);		printf("Warning! NVRAM checksum fail. Reset!\n");#ifdef NVRAM_IN_FLASH                if(fl_erase_device(nvram, NVRAM_SECSIZE, FALSE)) {			printf("Error! Nvram erase failed!\n");			free(nvramsecbuf);                        return(-1);                }                if(fl_program_device(nvram, nvramsecbuf, NVRAM_SECSIZE, FALSE)) {			printf("Error! Nvram init failed!\n");			free(nvramsecbuf);                        return(-1);                }#else		nvram_put(nvramsecbuf);#endif                nvram_invalid = 0;		free(nvramsecbuf);        }        /* Remove any current setting */        tgt_unsetenv(name);        /* Find end of evironment strings */	nvramsecbuf = (char *)malloc(NVRAM_SECSIZE);	if(nvramsecbuf == 0) {		printf("Warning! Unable to malloc nvrambuffer!\n");		return(-1);	}#ifndef NVRAM_IN_FLASH	nvram_get(nvramsecbuf);#else        memcpy(nvramsecbuf, nvram, NVRAM_SECSIZE);#endif	nvrambuf = nvramsecbuf + (NVRAM_OFFS & (NVRAM_SECSIZE - 1));	/* Etheraddr is special case to save space */	if (strcmp("ethaddr", name) == 0) {		char *s = value;		int i;		int32_t v;		for(i = 0; i < 6; i++) {			gethex(&v, s, 2);			hwethadr[i] = v;			s += 3;         /* Don't get to fancy here :-) */		} 	}	else if (strcasecmp("vxworks", name) == 0) {		bcopy(value, nvramsecbuf + NVRAM_VXWORKS, envlen);	}	else {		ep = nvrambuf+2;		if(*ep != '\0') {			do {				while(*ep++ != '\0');			} while(*ep++ != '\0');			ep--;		}		if(((int)ep + NVRAM_SIZE - (int)ep) < (envlen + 1)) {			free(nvramsecbuf);			return(0);      /* Bummer! */		}		/*		 *  Special case heaptop must always be first since it		 *  can change how memory allocation works.		 */		if(strcmp("heaptop", name) == 0) {			bcopy(nvrambuf+2, nvrambuf+2 + envlen,				 ep - nvrambuf+1);			ep = nvrambuf+2;			while(*name != '\0') {				*ep++ = *name++;			}			if(value != NULL) {				*ep++ = '=';				while((*ep++ = *value++) != '\0');			}			else {				*ep++ = '\0';			}		}		else {			while(*name != '\0') {				*ep++ = *name++;			}			if(value != NULL) {				*ep++ = '=';				while((*ep++ = *value++) != '\0');			}			else {				*ep++ = '\0';			}			*ep++ = '\0';   /* End of env strings */		}	}        cksum(nvrambuf, NVRAM_SIZE, 1);	bcopy(hwethadr, &nvrambuf[ETHER_OFFS], 6);#ifdef NVRAM_IN_FLASH        if(fl_erase_device(nvram, NVRAM_SECSIZE, FALSE)) {		printf("Error! Nvram erase failed!\n");		free(nvramsecbuf);                return(0);        }        if(fl_program_device(nvram, nvramsecbuf, NVRAM_SECSIZE, FALSE)) {		printf("Error! Nvram program failed!\n");		free(nvramsecbuf);                return(0);        }#else	nvram_put(nvramsecbuf);#endif	free(nvramsecbuf);        return(1);}/* *  Calculate checksum. If 'set' checksum is calculated and set. */static intcksum(void *p, size_t s, int set){	u_int16_t sum = 0;	u_int8_t *sp = p;	int sz = s / 2;	if(set) {		*sp = 0;	/* Clear checksum */		*(sp+1) = 0;	/* Clear checksum */	}	while(sz--) {		sum += (*sp++) << 8;		sum += *sp++;	}	if(set) {		sum = -sum;		*(u_int8_t *)p = sum >> 8;		*((u_int8_t *)p+1) = sum;	}	return(sum);}#ifndef NVRAM_IN_FLASH/* *  Read and write data into non volatile memory in clock chip. */voidnvram_get(char *buffer){	int i;	/* Select Bank 1 */	outb(RTC_BASE+DS_REG_CTLA, inb(RTC_BASE+DS_REG_CTLA) | DS_CTLA_DV0);	for(i = 0; i < 2048; i++) {		outb(RTC_BASE+DS_EXRAM_LSB, i & 0xff);	/* Address */		outb(RTC_BASE+DS_EXRAM_MSB, i >> 8);		buffer[i] = inb(RTC_BASE+DS_EXRAM_DATA);	}	/* Deselect Bank 1 trying to protect environment */	outb(RTC_BASE+DS_REG_CTLA, inb(RTC_BASE+DS_REG_CTLA) & ~DS_CTLA_DV0);}voidnvram_put(char *buffer){	int i;	/* Select Bank 1 */	outb(RTC_BASE+DS_REG_CTLA, inb(DS_REG_CTLA) | DS_CTLA_DV0);	for(i = 0; i < 2048; i++) {		outb(RTC_BASE+DS_EXRAM_LSB, i & 0xff);	/* Address */		outb(RTC_BASE+DS_EXRAM_MSB, i >> 8);		outb(RTC_BASE+DS_EXRAM_DATA, buffer[i]);	}	/* Deselect Bank 1 trying to protect environment */	outb(RTC_BASE+DS_REG_CTLA, inb(RTC_BASE+DS_REG_CTLA) & ~DS_CTLA_DV0);}#endif/*************************************************************************//* *	Target dependent miscelaneous support code *	========================================== * *//* *  Simple display function to display a 4 char string or code. *  Called during startup to display progress on any feasible *  display before any serial port have been initialized. */voidtgt_display(char *msg, int x){	/* Have simple serial port driver */	tgt_putchar(msg[0]);	tgt_putchar(msg[1]);	tgt_putchar(msg[2]);	tgt_putchar(msg[3]);	tgt_putchar('\r');	tgt_putchar('\n');}voidclrhndlrs(){}inttgt_getmachtype(){	return(md_cputype());}/* *  Reboot system. Do the best possible and if we are lucky the HW *  designers put in a way to pull the reset input from SW. If they *  goofed and forgot about this feature, well it may be very *  unreliable so it may be better to leave it alone and depend on *  the ol'e 'thumb'... */voidtgt_reboot(){	if(clk_invalid) {		printf("No device module or clock, can't reset to reboot!\n");		while(1);	}	printf("Reset did not work! Reset manually!\n");        while(1);}/* *  Put all machine dependent initialization here. This call *  is done after console has been initialized so it's safe *  to output configuration and debug information with printf. */voidtgt_devconfig(){    	/*      	 * PCI device initialization     	 */#if NPCIBR > 0    	_pci_devinit(1);#endif#if NMAINBUS > 0	config_init();	configure();#endif}voidtgt_devinit(){    	/*       	 * PCI device initialization     	 */#if NPCIBR > 0	_pci_businit(1);#endif}voidtgt_machreset(){	tgt_netreset();}

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