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/*
* Copyright ( C ) 1995 Linus Torvalds
*
* Support of BIGMEM added by Gerhard Wichert , Siemens AG , July 1999
*
* Memory region support
* David Parsons < orc @ pell . chi . il . us > , July - August 1999
*
* Added E820 sanitization routine ( removes overlapping memory regions ) ;
* Brian Moyle < bmoyle @ mvista . com > , February 2001
*
* Moved CPU detection code to cpu / $ { cpu } . c
* Patrick Mochel < mochel @ osdl . org > , March 2002
*
* Provisions for empty E820 memory regions ( reported by certain BIOSes ) .
* Alex Achenbach < xela @ slit . de > , December 2002.
*
*/
/*
* This file handles the architecture - dependent parts of initialization
*/
# include <linux/sched.h>
# include <linux/mm.h>
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# include <linux/mmzone.h>
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# include <linux/screen_info.h>
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# include <linux/ioport.h>
# include <linux/acpi.h>
# include <linux/apm_bios.h>
# include <linux/initrd.h>
# include <linux/bootmem.h>
# include <linux/seq_file.h>
# include <linux/console.h>
# include <linux/mca.h>
# include <linux/root_dev.h>
# include <linux/highmem.h>
# include <linux/module.h>
# include <linux/efi.h>
# include <linux/init.h>
# include <linux/edd.h>
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# include <linux/iscsi_ibft.h>
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# include <linux/nodemask.h>
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# include <linux/kexec.h>
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# include <linux/dmi.h>
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# include <linux/pfn.h>
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# include <linux/pci.h>
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# include <asm/pci-direct.h>
x86: early boot debugging via FireWire (ohci1394_dma=early)
This patch adds a new configuration option, which adds support for a new
early_param which gets checked in arch/x86/kernel/setup_{32,64}.c:setup_arch()
to decide wether OHCI-1394 FireWire controllers should be initialized and
enabled for physical DMA access to allow remote debugging of early problems
like issues ACPI or other subsystems which are executed very early.
If the config option is not enabled, no code is changed, and if the boot
paramenter is not given, no new code is executed, and independent of that,
all new code is freed after boot, so the config option can be even enabled
in standard, non-debug kernels.
With specialized tools, it is then possible to get debugging information
from machines which have no serial ports (notebooks) such as the printk
buffer contents, or any data which can be referenced from global pointers,
if it is stored below the 4GB limit and even memory dumps of of the physical
RAM region below the 4GB limit can be taken without any cooperation from the
CPU of the host, so the machine can be crashed early, it does not matter.
In the extreme, even kernel debuggers can be accessed in this way. I wrote
a small kgdb module and an accompanying gdb stub for FireWire which allows
to gdb to talk to kgdb using remote remory reads and writes over FireWire.
An version of the gdb stub fore FireWire is able to read all global data
from a system which is running a a normal kernel without any kernel debugger,
without any interruption or support of the system's CPU. That way, e.g. the
task struct and so on can be read and even manipulated when the physical DMA
access is granted.
A HOWTO is included in this patch, in Documentation/debugging-via-ohci1394.txt
and I've put a copy online at
ftp://ftp.suse.de/private/bk/firewire/docs/debugging-via-ohci1394.txt
It also has links to all the tools which are available to make use of it
another copy of it is online at:
ftp://ftp.suse.de/private/bk/firewire/kernel/ohci1394_dma_early-v2.diff
Signed-Off-By: Bernhard Kaindl <bk@suse.de>
Tested-By: Thomas Renninger <trenn@suse.de>
Signed-off-by: Ingo Molnar <mingo@elte.hu>
Signed-off-by: Thomas Gleixner <tglx@linutronix.de>
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# include <linux/init_ohci1394_dma.h>
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# include <linux/kvm_para.h>
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# include <linux/errno.h>
# include <linux/kernel.h>
# include <linux/stddef.h>
# include <linux/unistd.h>
# include <linux/ptrace.h>
# include <linux/slab.h>
# include <linux/user.h>
# include <linux/delay.h>
# include <linux/highmem.h>
# include <linux/kallsyms.h>
# include <linux/edd.h>
# include <linux/iscsi_ibft.h>
# include <linux/kexec.h>
# include <linux/cpufreq.h>
# include <linux/dma-mapping.h>
# include <linux/ctype.h>
# include <linux/uaccess.h>
# include <linux/percpu.h>
# include <linux/crash_dump.h>
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# include <video/edid.h>
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# include <asm/mtrr.h>
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# include <asm/apic.h>
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# include <asm/e820.h>
# include <asm/mpspec.h>
# include <asm/setup.h>
# include <asm/arch_hooks.h>
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# include <asm/efi.h>
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# include <asm/sections.h>
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# include <asm/dmi.h>
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# include <asm/io_apic.h>
# include <asm/ist.h>
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# include <asm/vmi.h>
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# include <setup_arch.h>
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# include <asm/bios_ebda.h>
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# include <asm/cacheflush.h>
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# include <asm/processor.h>
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# include <asm/bugs.h>
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# include <asm/system.h>
# include <asm/vsyscall.h>
# include <asm/smp.h>
# include <asm/desc.h>
# include <asm/dma.h>
# include <asm/gart.h>
# include <asm/mmu_context.h>
# include <asm/proto.h>
# include <mach_apic.h>
# ifdef CONFIG_PARAVIRT
# include <asm/paravirt.h>
# else
# define ARCH_SETUP
# endif
# include <asm/percpu.h>
# include <asm/sections.h>
# include <asm/topology.h>
# include <asm/apicdef.h>
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# ifdef CONFIG_X86_64
# include <asm/numa_64.h>
# endif
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# ifdef CONFIG_X86_32
# include <asm/highmem.h>
# endif
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# ifndef CONFIG_DEBUG_BOOT_PARAMS
struct boot_params __initdata boot_params ;
# else
struct boot_params boot_params ;
# endif
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/* This value is set up by the early boot code to point to the value
immediately after the boot time page tables . It contains a * physical *
address , and must not be in the . bss segment ! */
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unsigned long init_pg_tables_start __initdata = ~ 0UL ;
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unsigned long init_pg_tables_end __initdata = ~ 0UL ;
/*
* Machine setup . .
*/
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static struct resource data_resource = {
. name = " Kernel data " ,
. start = 0 ,
. end = 0 ,
. flags = IORESOURCE_BUSY | IORESOURCE_MEM
} ;
static struct resource code_resource = {
. name = " Kernel code " ,
. start = 0 ,
. end = 0 ,
. flags = IORESOURCE_BUSY | IORESOURCE_MEM
} ;
static struct resource bss_resource = {
. name = " Kernel bss " ,
. start = 0 ,
. end = 0 ,
. flags = IORESOURCE_BUSY | IORESOURCE_MEM
} ;
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# ifdef CONFIG_X86_32
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static struct resource video_ram_resource = {
. name = " Video RAM area " ,
. start = 0xa0000 ,
. end = 0xbffff ,
. flags = IORESOURCE_BUSY | IORESOURCE_MEM
} ;
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/* cpu data as detected by the assembly code in head.S */
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struct cpuinfo_x86 new_cpu_data __cpuinitdata = { 0 , 0 , 0 , 0 , - 1 , 1 , 0 , 0 , - 1 } ;
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/* common cpu data for all cpus */
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struct cpuinfo_x86 boot_cpu_data __read_mostly = { 0 , 0 , 0 , 0 , - 1 , 1 , 0 , 0 , - 1 } ;
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EXPORT_SYMBOL ( boot_cpu_data ) ;
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static void set_mca_bus ( int x )
{
# ifdef CONFIG_MCA
MCA_bus = x ;
# endif
}
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unsigned int def_to_bigsmp ;
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/* for MCA, but anyone else can use it if they want */
unsigned int machine_id ;
unsigned int machine_submodel_id ;
unsigned int BIOS_revision ;
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struct apm_info apm_info ;
EXPORT_SYMBOL ( apm_info ) ;
# if defined(CONFIG_X86_SPEEDSTEP_SMI) || \
defined ( CONFIG_X86_SPEEDSTEP_SMI_MODULE )
struct ist_info ist_info ;
EXPORT_SYMBOL ( ist_info ) ;
# else
struct ist_info ist_info ;
# endif
# else
struct cpuinfo_x86 boot_cpu_data __read_mostly ;
EXPORT_SYMBOL ( boot_cpu_data ) ;
# endif
# if !defined(CONFIG_X86_PAE) || defined(CONFIG_X86_64)
unsigned long mmu_cr4_features ;
# else
unsigned long mmu_cr4_features = X86_CR4_PAE ;
# endif
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/* Boot loader ID as an integer, for the benefit of proc_dointvec */
int bootloader_type ;
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/*
* Early DMI memory
*/
int dmi_alloc_index ;
char dmi_alloc_data [ DMI_MAX_DATA ] ;
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/*
* Setup options
*/
struct screen_info screen_info ;
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EXPORT_SYMBOL ( screen_info ) ;
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struct edid_info edid_info ;
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EXPORT_SYMBOL_GPL ( edid_info ) ;
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extern int root_mountflags ;
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unsigned long saved_video_mode ;
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# define RAMDISK_IMAGE_START_MASK 0x07FF
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# define RAMDISK_PROMPT_FLAG 0x8000
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# define RAMDISK_LOAD_FLAG 0x4000
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static char __initdata command_line [ COMMAND_LINE_SIZE ] ;
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# if defined(CONFIG_EDD) || defined(CONFIG_EDD_MODULE)
struct edd edd ;
# ifdef CONFIG_EDD_MODULE
EXPORT_SYMBOL ( edd ) ;
# endif
/**
* copy_edd ( ) - Copy the BIOS EDD information
* from boot_params into a safe place .
*
*/
static inline void copy_edd ( void )
{
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memcpy ( edd . mbr_signature , boot_params . edd_mbr_sig_buffer ,
sizeof ( edd . mbr_signature ) ) ;
memcpy ( edd . edd_info , boot_params . eddbuf , sizeof ( edd . edd_info ) ) ;
edd . mbr_signature_nr = boot_params . edd_mbr_sig_buf_entries ;
edd . edd_info_nr = boot_params . eddbuf_entries ;
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}
# else
static inline void copy_edd ( void )
{
}
# endif
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# ifdef CONFIG_BLK_DEV_INITRD
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# ifdef CONFIG_X86_32
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# define MAX_MAP_CHUNK (NR_FIX_BTMAPS << PAGE_SHIFT)
static void __init relocate_initrd ( void )
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{
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u64 ramdisk_image = boot_params . hdr . ramdisk_image ;
u64 ramdisk_size = boot_params . hdr . ramdisk_size ;
u64 end_of_lowmem = max_low_pfn < < PAGE_SHIFT ;
u64 ramdisk_here ;
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unsigned long slop , clen , mapaddr ;
char * p , * q ;
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/* We need to move the initrd down into lowmem */
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ramdisk_here = find_e820_area ( 0 , end_of_lowmem , ramdisk_size ,
PAGE_SIZE ) ;
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if ( ramdisk_here = = - 1ULL )
panic ( " Cannot find place for new RAMDISK of size %lld \n " ,
ramdisk_size ) ;
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/* Note: this includes all the lowmem currently occupied by
the initrd , we rely on that fact to keep the data intact . */
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reserve_early ( ramdisk_here , ramdisk_here + ramdisk_size ,
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" NEW RAMDISK " ) ;
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initrd_start = ramdisk_here + PAGE_OFFSET ;
initrd_end = initrd_start + ramdisk_size ;
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printk ( KERN_INFO " Allocated new RAMDISK: %08llx - %08llx \n " ,
ramdisk_here , ramdisk_here + ramdisk_size ) ;
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q = ( char * ) initrd_start ;
/* Copy any lowmem portion of the initrd */
if ( ramdisk_image < end_of_lowmem ) {
clen = end_of_lowmem - ramdisk_image ;
p = ( char * ) __va ( ramdisk_image ) ;
memcpy ( q , p , clen ) ;
q + = clen ;
ramdisk_image + = clen ;
ramdisk_size - = clen ;
}
/* Copy the highmem portion of the initrd */
while ( ramdisk_size ) {
slop = ramdisk_image & ~ PAGE_MASK ;
clen = ramdisk_size ;
if ( clen > MAX_MAP_CHUNK - slop )
clen = MAX_MAP_CHUNK - slop ;
mapaddr = ramdisk_image & PAGE_MASK ;
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p = early_ioremap ( mapaddr , clen + slop ) ;
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memcpy ( q , p + slop , clen ) ;
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early_iounmap ( p , clen + slop ) ;
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q + = clen ;
ramdisk_image + = clen ;
ramdisk_size - = clen ;
}
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/* high pages is not converted by early_res_to_bootmem */
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ramdisk_image = boot_params . hdr . ramdisk_image ;
ramdisk_size = boot_params . hdr . ramdisk_size ;
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printk ( KERN_INFO " Move RAMDISK from %016llx - %016llx to "
" %08llx - %08llx \n " ,
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ramdisk_image , ramdisk_image + ramdisk_size - 1 ,
ramdisk_here , ramdisk_here + ramdisk_size - 1 ) ;
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}
# endif
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static void __init reserve_initrd ( void )
{
u64 ramdisk_image = boot_params . hdr . ramdisk_image ;
u64 ramdisk_size = boot_params . hdr . ramdisk_size ;
u64 ramdisk_end = ramdisk_image + ramdisk_size ;
u64 end_of_lowmem = max_low_pfn < < PAGE_SHIFT ;
if ( ! boot_params . hdr . type_of_loader | |
! ramdisk_image | | ! ramdisk_size )
return ; /* No initrd provided by bootloader */
initrd_start = 0 ;
if ( ramdisk_size > = ( end_of_lowmem > > 1 ) ) {
free_early ( ramdisk_image , ramdisk_end ) ;
printk ( KERN_ERR " initrd too large to handle, "
" disabling initrd \n " ) ;
return ;
}
printk ( KERN_INFO " RAMDISK: %08llx - %08llx \n " , ramdisk_image ,
ramdisk_end ) ;
if ( ramdisk_end < = end_of_lowmem ) {
/* All in lowmem, easy case */
/*
* don ' t need to reserve again , already reserved early
* in i386_start_kernel
*/
initrd_start = ramdisk_image + PAGE_OFFSET ;
initrd_end = initrd_start + ramdisk_size ;
return ;
}
# ifdef CONFIG_X86_32
relocate_initrd ( ) ;
# else
printk ( KERN_ERR " initrd extends beyond end of memory "
" (0x%08llx > 0x%08llx) \n disabling initrd \n " ,
ramdisk_end , end_of_lowmem ) ;
initrd_start = 0 ;
# endif
free_early ( ramdisk_image , ramdisk_end ) ;
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}
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# else
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static void __init reserve_initrd ( void )
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{
}
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# endif /* CONFIG_BLK_DEV_INITRD */
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void __init parse_setup_data ( void )
{
struct setup_data * data ;
u64 pa_data ;
if ( boot_params . hdr . version < 0x0209 )
return ;
pa_data = boot_params . hdr . setup_data ;
while ( pa_data ) {
data = early_ioremap ( pa_data , PAGE_SIZE ) ;
switch ( data - > type ) {
case SETUP_E820_EXT :
parse_e820_ext ( data , pa_data ) ;
break ;
default :
break ;
}
# ifndef CONFIG_DEBUG_BOOT_PARAMS
free_early ( pa_data , pa_data + sizeof ( * data ) + data - > len ) ;
# endif
pa_data = data - > next ;
early_iounmap ( data , PAGE_SIZE ) ;
}
}
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/*
* Determine if we were loaded by an EFI loader . If so , then we have also been
* passed the efi memmap , systab , etc . , so we should use these data structures
* for initialization . Note , the efi init code path is determined by the
* global efi_enabled . This allows the same kernel image to be used on existing
* systems ( with a traditional BIOS ) as well as on EFI systems .
*/
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/*
* setup_arch - architecture - specific boot - time initializations
*
* Note : On x86_64 , fixmaps are ready for use even before this is called .
*/
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void __init setup_arch ( char * * cmdline_p )
{
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# ifdef CONFIG_X86_32
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memcpy ( & boot_cpu_data , & new_cpu_data , sizeof ( new_cpu_data ) ) ;
pre_setup_arch_hook ( ) ;
early_cpu_init ( ) ;
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early_ioremap_init ( ) ;
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reserve_setup_data ( ) ;
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# else
printk ( KERN_INFO " Command line: %s \n " , boot_command_line ) ;
# endif
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ROOT_DEV = old_decode_dev ( boot_params . hdr . root_dev ) ;
screen_info = boot_params . screen_info ;
edid_info = boot_params . edid_info ;
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# ifdef CONFIG_X86_32
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apm_info . bios = boot_params . apm_bios_info ;
ist_info = boot_params . ist_info ;
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if ( boot_params . sys_desc_table . length ! = 0 ) {
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set_mca_bus ( boot_params . sys_desc_table . table [ 3 ] & 0x2 ) ;
machine_id = boot_params . sys_desc_table . table [ 0 ] ;
machine_submodel_id = boot_params . sys_desc_table . table [ 1 ] ;
BIOS_revision = boot_params . sys_desc_table . table [ 2 ] ;
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}
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# endif
saved_video_mode = boot_params . hdr . vid_mode ;
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bootloader_type = boot_params . hdr . type_of_loader ;
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# ifdef CONFIG_BLK_DEV_RAM
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rd_image_start = boot_params . hdr . ram_size & RAMDISK_IMAGE_START_MASK ;
rd_prompt = ( ( boot_params . hdr . ram_size & RAMDISK_PROMPT_FLAG ) ! = 0 ) ;
rd_doload = ( ( boot_params . hdr . ram_size & RAMDISK_LOAD_FLAG ) ! = 0 ) ;
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# endif
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# ifdef CONFIG_EFI
if ( ! strncmp ( ( char * ) & boot_params . efi_info . efi_loader_signature ,
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# ifdef CONFIG_X86_32
" EL32 " ,
# else
" EL64 " ,
# endif
4 ) ) {
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efi_enabled = 1 ;
efi_reserve_early ( ) ;
}
# endif
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ARCH_SETUP
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setup_memory_map ( ) ;
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copy_edd ( ) ;
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if ( ! boot_params . hdr . root_flags )
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root_mountflags & = ~ MS_RDONLY ;
init_mm . start_code = ( unsigned long ) _text ;
init_mm . end_code = ( unsigned long ) _etext ;
init_mm . end_data = ( unsigned long ) _edata ;
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# ifdef CONFIG_X86_32
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init_mm . brk = init_pg_tables_end + PAGE_OFFSET ;
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# else
init_mm . brk = ( unsigned long ) & _end ;
# endif
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code_resource . start = virt_to_phys ( _text ) ;
code_resource . end = virt_to_phys ( _etext ) - 1 ;
data_resource . start = virt_to_phys ( _etext ) ;
data_resource . end = virt_to_phys ( _edata ) - 1 ;
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bss_resource . start = virt_to_phys ( & __bss_start ) ;
bss_resource . end = virt_to_phys ( & __bss_stop ) - 1 ;
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# ifdef CONFIG_X86_64
early_cpu_init ( ) ;
# endif
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strlcpy ( command_line , boot_command_line , COMMAND_LINE_SIZE ) ;
* cmdline_p = command_line ;
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parse_setup_data ( ) ;
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parse_early_param ( ) ;
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2008-06-26 04:52:35 +04:00
if ( acpi_mps_check ( ) ) {
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# ifdef CONFIG_X86_LOCAL_APIC
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# ifdef CONFIG_X86_32
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enable_local_apic = - 1 ;
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# else
disable_apic = 1 ;
# endif
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# endif
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clear_cpu_cap ( & boot_cpu_data , X86_FEATURE_APIC ) ;
}
2008-04-23 17:09:05 +04:00
finish_e820_parsing ( ) ;
2006-09-26 12:52:32 +04:00
2008-06-26 04:52:35 +04:00
# ifdef CONFIG_X86_32
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probe_roms ( ) ;
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# else
# ifdef CONFIG_PROVIDE_OHCI1394_DMA_INIT
if ( init_ohci1394_dma_early )
init_ohci1394_dma_on_all_controllers ( ) ;
# endif
# endif
2008-06-17 00:03:31 +04:00
/* after parse_early_param, so could debug it */
insert_resource ( & iomem_resource , & code_resource ) ;
insert_resource ( & iomem_resource , & data_resource ) ;
insert_resource ( & iomem_resource , & bss_resource ) ;
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if ( efi_enabled )
efi_init ( ) ;
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# ifdef CONFIG_X86_32
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if ( ppro_with_ram_bug ( ) ) {
e820_update_range ( 0x70000000ULL , 0x40000ULL , E820_RAM ,
E820_RESERVED ) ;
sanitize_e820_map ( e820 . map , ARRAY_SIZE ( e820 . map ) , & e820 . nr_map ) ;
printk ( KERN_INFO " fixed physical RAM map: \n " ) ;
e820_print_map ( " bad_ppro " ) ;
}
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# else
early_gart_iommu_check ( ) ;
# endif
2008-06-17 03:11:08 +04:00
2008-06-04 06:35:04 +04:00
e820_register_active_regions ( 0 , 0 , - 1UL ) ;
/*
* partially used pages are not usable - thus
* we are rounding upwards :
*/
max_pfn = e820_end_of_ram ( ) ;
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/* preallocate 4k for mptable mpc */
early_reserve_e820_mpc_new ( ) ;
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/* update e820 for memory not covered by WB MTRRs */
mtrr_bp_init ( ) ;
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if ( mtrr_trim_uncached_memory ( max_pfn ) ) {
remove_all_active_ranges ( ) ;
e820_register_active_regions ( 0 , 0 , - 1UL ) ;
max_pfn = e820_end_of_ram ( ) ;
}
2008-03-23 10:16:49 +03:00
2008-06-26 04:52:35 +04:00
# ifdef CONFIG_X86_32
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/* max_low_pfn get updated here */
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find_low_pfn_range ( ) ;
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# else
num_physpages = max_pfn ;
check_efer ( ) ;
/* How many end-of-memory variables you have, grandma! */
/* need this before calling reserve_initrd */
max_low_pfn = max_pfn ;
high_memory = ( void * ) __va ( max_pfn * PAGE_SIZE - 1 ) + 1 ;
# endif
2008-06-23 14:05:30 +04:00
2008-06-24 23:18:14 +04:00
/* max_pfn_mapped is updated here */
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max_pfn_mapped = init_memory_mapping ( 0 , ( max_low_pfn < < PAGE_SHIFT ) ) ;
2008-06-24 23:18:14 +04:00
2008-06-23 14:05:30 +04:00
reserve_initrd ( ) ;
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# ifdef CONFIG_X86_64
vsmp_init ( ) ;
# endif
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dmi_scan_machine ( ) ;
io_delay_init ( ) ;
/*
* Parse the ACPI tables for possible boot - time SMP configuration .
*/
acpi_boot_table_init ( ) ;
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# ifdef CONFIG_X86_64
/* Remove active ranges so rediscovery with NUMA-awareness happens */
remove_all_active_ranges ( ) ;
# endif
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# ifdef CONFIG_ACPI_NUMA
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/*
* Parse SRAT to discover nodes .
*/
acpi_numa_init ( ) ;
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# endif
2008-06-23 14:05:30 +04:00
initmem_init ( 0 , max_pfn ) ;
2008-01-30 15:33:32 +03:00
2008-06-26 04:52:35 +04:00
# ifdef CONFIG_X86_64
dma32_reserve_bootmem ( ) ;
# endif
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# ifdef CONFIG_ACPI_SLEEP
/*
* Reserve low memory region for sleep support .
*/
acpi_reserve_bootmem ( ) ;
# endif
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# if defined(CONFIG_X86_FIND_SMP_CONFIG) && defined(CONFIG_X86_32) || \
defined ( CONFIG_X86_MPPARSE ) & & defined ( CONFIG_X86_64 )
2008-06-17 21:02:45 +04:00
/*
* Find and reserve possible boot - time SMP configuration :
*/
find_smp_config ( ) ;
# endif
reserve_crashkernel ( ) ;
reserve_ibft_region ( ) ;
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# ifdef CONFIG_KVM_CLOCK
kvmclock_init ( ) ;
# endif
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# if defined(CONFIG_VMI) && defined(CONFIG_X86_32)
2007-02-13 15:26:21 +03:00
/*
* Must be after max_low_pfn is determined , and before kernel
* pagetables are setup .
*/
vmi_init ( ) ;
# endif
2005-04-17 02:20:36 +04:00
paging_init ( ) ;
x86: early boot debugging via FireWire (ohci1394_dma=early)
This patch adds a new configuration option, which adds support for a new
early_param which gets checked in arch/x86/kernel/setup_{32,64}.c:setup_arch()
to decide wether OHCI-1394 FireWire controllers should be initialized and
enabled for physical DMA access to allow remote debugging of early problems
like issues ACPI or other subsystems which are executed very early.
If the config option is not enabled, no code is changed, and if the boot
paramenter is not given, no new code is executed, and independent of that,
all new code is freed after boot, so the config option can be even enabled
in standard, non-debug kernels.
With specialized tools, it is then possible to get debugging information
from machines which have no serial ports (notebooks) such as the printk
buffer contents, or any data which can be referenced from global pointers,
if it is stored below the 4GB limit and even memory dumps of of the physical
RAM region below the 4GB limit can be taken without any cooperation from the
CPU of the host, so the machine can be crashed early, it does not matter.
In the extreme, even kernel debuggers can be accessed in this way. I wrote
a small kgdb module and an accompanying gdb stub for FireWire which allows
to gdb to talk to kgdb using remote remory reads and writes over FireWire.
An version of the gdb stub fore FireWire is able to read all global data
from a system which is running a a normal kernel without any kernel debugger,
without any interruption or support of the system's CPU. That way, e.g. the
task struct and so on can be read and even manipulated when the physical DMA
access is granted.
A HOWTO is included in this patch, in Documentation/debugging-via-ohci1394.txt
and I've put a copy online at
ftp://ftp.suse.de/private/bk/firewire/docs/debugging-via-ohci1394.txt
It also has links to all the tools which are available to make use of it
another copy of it is online at:
ftp://ftp.suse.de/private/bk/firewire/kernel/ohci1394_dma_early-v2.diff
Signed-Off-By: Bernhard Kaindl <bk@suse.de>
Tested-By: Thomas Renninger <trenn@suse.de>
Signed-off-by: Ingo Molnar <mingo@elte.hu>
Signed-off-by: Thomas Gleixner <tglx@linutronix.de>
2008-01-30 15:34:11 +03:00
2008-06-26 04:52:35 +04:00
# ifdef CONFIG_X86_64
map_vsyscall ( ) ;
# endif
x86: early boot debugging via FireWire (ohci1394_dma=early)
This patch adds a new configuration option, which adds support for a new
early_param which gets checked in arch/x86/kernel/setup_{32,64}.c:setup_arch()
to decide wether OHCI-1394 FireWire controllers should be initialized and
enabled for physical DMA access to allow remote debugging of early problems
like issues ACPI or other subsystems which are executed very early.
If the config option is not enabled, no code is changed, and if the boot
paramenter is not given, no new code is executed, and independent of that,
all new code is freed after boot, so the config option can be even enabled
in standard, non-debug kernels.
With specialized tools, it is then possible to get debugging information
from machines which have no serial ports (notebooks) such as the printk
buffer contents, or any data which can be referenced from global pointers,
if it is stored below the 4GB limit and even memory dumps of of the physical
RAM region below the 4GB limit can be taken without any cooperation from the
CPU of the host, so the machine can be crashed early, it does not matter.
In the extreme, even kernel debuggers can be accessed in this way. I wrote
a small kgdb module and an accompanying gdb stub for FireWire which allows
to gdb to talk to kgdb using remote remory reads and writes over FireWire.
An version of the gdb stub fore FireWire is able to read all global data
from a system which is running a a normal kernel without any kernel debugger,
without any interruption or support of the system's CPU. That way, e.g. the
task struct and so on can be read and even manipulated when the physical DMA
access is granted.
A HOWTO is included in this patch, in Documentation/debugging-via-ohci1394.txt
and I've put a copy online at
ftp://ftp.suse.de/private/bk/firewire/docs/debugging-via-ohci1394.txt
It also has links to all the tools which are available to make use of it
another copy of it is online at:
ftp://ftp.suse.de/private/bk/firewire/kernel/ohci1394_dma_early-v2.diff
Signed-Off-By: Bernhard Kaindl <bk@suse.de>
Tested-By: Thomas Renninger <trenn@suse.de>
Signed-off-by: Ingo Molnar <mingo@elte.hu>
Signed-off-by: Thomas Gleixner <tglx@linutronix.de>
2008-01-30 15:34:11 +03:00
/*
* NOTE : On x86 - 32 , only from this point on , fixmaps are ready for use .
*/
2008-06-26 04:52:35 +04:00
# if defined(CONFIG_PROVIDE_OHCI1394_DMA_INIT) && defined(CONFIG_X86_32)
x86: early boot debugging via FireWire (ohci1394_dma=early)
This patch adds a new configuration option, which adds support for a new
early_param which gets checked in arch/x86/kernel/setup_{32,64}.c:setup_arch()
to decide wether OHCI-1394 FireWire controllers should be initialized and
enabled for physical DMA access to allow remote debugging of early problems
like issues ACPI or other subsystems which are executed very early.
If the config option is not enabled, no code is changed, and if the boot
paramenter is not given, no new code is executed, and independent of that,
all new code is freed after boot, so the config option can be even enabled
in standard, non-debug kernels.
With specialized tools, it is then possible to get debugging information
from machines which have no serial ports (notebooks) such as the printk
buffer contents, or any data which can be referenced from global pointers,
if it is stored below the 4GB limit and even memory dumps of of the physical
RAM region below the 4GB limit can be taken without any cooperation from the
CPU of the host, so the machine can be crashed early, it does not matter.
In the extreme, even kernel debuggers can be accessed in this way. I wrote
a small kgdb module and an accompanying gdb stub for FireWire which allows
to gdb to talk to kgdb using remote remory reads and writes over FireWire.
An version of the gdb stub fore FireWire is able to read all global data
from a system which is running a a normal kernel without any kernel debugger,
without any interruption or support of the system's CPU. That way, e.g. the
task struct and so on can be read and even manipulated when the physical DMA
access is granted.
A HOWTO is included in this patch, in Documentation/debugging-via-ohci1394.txt
and I've put a copy online at
ftp://ftp.suse.de/private/bk/firewire/docs/debugging-via-ohci1394.txt
It also has links to all the tools which are available to make use of it
another copy of it is online at:
ftp://ftp.suse.de/private/bk/firewire/kernel/ohci1394_dma_early-v2.diff
Signed-Off-By: Bernhard Kaindl <bk@suse.de>
Tested-By: Thomas Renninger <trenn@suse.de>
Signed-off-by: Ingo Molnar <mingo@elte.hu>
Signed-off-by: Thomas Gleixner <tglx@linutronix.de>
2008-01-30 15:34:11 +03:00
if ( init_ohci1394_dma_early )
init_ohci1394_dma_on_all_controllers ( ) ;
# endif
2005-04-17 02:20:36 +04:00
# ifdef CONFIG_X86_GENERICARCH
2006-09-26 12:52:32 +04:00
generic_apic_probe ( ) ;
2008-01-30 15:32:51 +03:00
# endif
2005-04-17 02:20:36 +04:00
2007-10-19 22:35:03 +04:00
early_quirks ( ) ;
2006-06-08 11:43:38 +04:00
2008-06-24 06:55:05 +04:00
/*
* Read APIC and some other early information from ACPI tables .
*/
2005-04-17 02:20:36 +04:00
acpi_boot_init ( ) ;
2008-06-21 12:38:41 +04:00
2008-06-26 04:52:35 +04:00
# ifdef CONFIG_X86_64
init_cpu_to_node ( ) ;
# endif
2008-06-09 05:29:22 +04:00
# if defined(CONFIG_X86_MPPARSE) || defined(CONFIG_X86_VISWS)
2008-06-24 06:55:05 +04:00
/*
* get boot - time SMP configuration :
*/
2008-06-09 05:29:22 +04:00
if ( smp_found_config )
get_smp_config ( ) ;
# endif
2008-06-26 04:52:35 +04:00
# ifdef CONFIG_X86_64
init_apic_mappings ( ) ;
ioapic_init_mappings ( ) ;
# else
# if defined(CONFIG_SMP) && defined(CONFIG_X86_PC)
2005-09-04 02:56:31 +04:00
if ( def_to_bigsmp )
printk ( KERN_WARNING " More than 8 CPUs detected and "
" CONFIG_X86_PC cannot handle it. \n Use "
" CONFIG_X86_GENERICARCH or CONFIG_X86_BIGSMP. \n " ) ;
2008-06-26 04:52:35 +04:00
# endif
2005-09-04 02:56:31 +04:00
# endif
2008-06-24 06:55:05 +04:00
kvm_guest_init ( ) ;
2005-04-17 02:20:36 +04:00
2008-06-17 00:03:31 +04:00
e820_reserve_resources ( ) ;
2008-05-21 07:10:58 +04:00
e820_mark_nosave_regions ( max_low_pfn ) ;
2005-04-17 02:20:36 +04:00
2008-06-26 04:52:35 +04:00
# ifdef CONFIG_X86_32
2008-06-17 00:03:31 +04:00
request_resource ( & iomem_resource , & video_ram_resource ) ;
2008-06-26 04:52:35 +04:00
# endif
2008-06-22 07:22:09 +04:00
reserve_standard_io_resources ( ) ;
2008-06-17 00:03:31 +04:00
e820_setup_gap ( ) ;
2005-04-17 02:20:36 +04:00
# ifdef CONFIG_VT
# if defined(CONFIG_VGA_CONSOLE)
if ( ! efi_enabled | | ( efi_mem_type ( 0xa0000 ) ! = EFI_CONVENTIONAL_MEMORY ) )
conswitchp = & vga_con ;
# elif defined(CONFIG_DUMMY_CONSOLE)
conswitchp = & dummy_con ;
# endif
# endif
}
2008-01-30 15:30:32 +03:00