9

I have written a program which tries to read from and write to the control registers.

The program compiles fine, but when the inline assembly is about to be executed, it produces a segmentation fault.

Code:

void instructions(int val)
{
    int i;
    int value;
    for(i = 0; i < val; i++)
         __asm__("mov %cr0, %eax");
}

I used GDB and stepped through each assembly line and it is on the mov %cr0,%eax that the segmentation fault is occurring.

Anyone who knows what is wrong?

16

Quoting from Intel® 64 and IA-32 Architectures Software Developer Manuals 3-650 Vol. 2A on moving to and from control registers:

This instruction can be executed only when the current privilege level is 0.

Which means the instruction can only be executed in kernel mode.

A minimal kernel module, that logs the contents of cr0, cr2 and cr3 could look something like this (32-bit code path untested):

/* hello.c */
#include <linux/module.h>
#include <linux/kernel.h>

int init_module(void)
{
#ifdef __x86_64__
    u64 cr0, cr2, cr3;
    __asm__ __volatile__ (
        "mov %%cr0, %%rax\n\t"
        "mov %%eax, %0\n\t"
        "mov %%cr2, %%rax\n\t"
        "mov %%eax, %1\n\t"
        "mov %%cr3, %%rax\n\t"
        "mov %%eax, %2\n\t"
    : "=m" (cr0), "=m" (cr2), "=m" (cr3)
    : /* no input */
    : "%rax"
    );
#elif defined(__i386__)
    u32 cr0, cr2, cr3;
    __asm__ __volatile__ (
        "mov %%cr0, %%eax\n\t"
        "mov %%eax, %0\n\t"
        "mov %%cr2, %%eax\n\t"
        "mov %%eax, %1\n\t"
        "mov %%cr3, %%eax\n\t"
        "mov %%eax, %2\n\t"
    : "=m" (cr0), "=m" (cr2), "=m" (cr3)
    : /* no input */
    : "%eax"
    );
#endif
    printk(KERN_INFO "cr0 = 0x%8.8X\n", cr0);
    printk(KERN_INFO "cr2 = 0x%8.8X\n", cr2);
    printk(KERN_INFO "cr3 = 0x%8.8X\n", cr3);
    return 0;
}

void cleanup_module(void)
{
}

 

# Makefile

obj-m += hello.o

all:
    make -C /lib/modules/$(shell uname -r)/build M=$(PWD) modules

clean:
    make -C /lib/modules/$(shell uname -r)/build M=$(PWD) clean

test: all
    sudo insmod ./hello.ko
    sudo rmmod hello
    dmesg | tail
  • Did you mean u64? At least cr3 is documented in the intel manuals for intel 64 from bits 0 : 63. – corny Jun 8 '17 at 14:11
  • @corny: It was just a quick example to show how to access the control registers, so for simplicity I only print the lower 32-bits even in 64-bit mode. I think all the control registers are 64-bit in long mode and you definitely want all bits of CR2/CR3 if you're actually doing something useful with the contents. – user786653 Jun 8 '17 at 16:40
  • Correct, in 64 bit mode, all control registers are 64 bit. Section 2.5, “CONTROL REGISTERS” in the Intel® 64 and IA-32 Architectures Software Developer’s Manual, Volume 3A. I edited your answer, let's delete our comment and let's just preserve your improved answer. – corny Jun 12 '17 at 15:00
  • 1
    I don't currently have a way to easily check the code, but I think the format string should to be %016lx in 64-bit mode (or perhaps %p can be used if cr0/cr2/cr3 are cast to void*) – user786653 Jun 12 '17 at 17:48

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