Page table in Linux kernel space during boot
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I feel confuse in page table management in Linux kernel ?

In Linux kernel space, before page table is turned on. Kernel will run in virtual memory with 1-1 mapping mechanism. After page table is turned on, then kernel has consult page tables to translate a virtual address into a physical memory address. Questions are:

  1. At this time, after turning on page table, kernel space is still 1GB (from 0xC0000000 - 0xFFFFFFFF ) ?

  2. And in the page tables of kernel process, only page table entries (PTE) in range from 0xC0000000 - 0xFFFFFFFF are mapped ?. PTEs are out of this range will be not mapped because kernel code never jump there ?

  3. Mapping address before and after turning on page table is same ?

    Eg. before turning on page table, the virtual address 0xC00000FF is mapped to physical address 0x000000FF, then after turning on page table, above mapping does not change. virtual address 0xC00000FF is still mapped to physical address 0x000000FF. Different thing is only that after turning on page table, CPU has consult the page table to translate virtual address to physical address which no need to do before.

  4. The page table in kernel space is global and will be shared across all process in the system including user process ?

  5. This mechanism is same in x86 32bit and ARM ?

Exemplum answered 22/5, 2013 at 9:42 Comment(0)
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The following discussion is based on 32-bit ARM Linux, and version of kernel source code is 3.9
All your questions can be addressed if you go through the procedure of setting up the initial page table(which will be overwitten later by function paging_init ) and turning on MMU.

When kernel is first launched by bootloader, Assembly function stext(in arch\arm\kernel\head.s) is the first function to run. Note that MMU has not been turned on yet at this moment.

Among other things, the two import jobs done by this function stext is:

  • create the initial page tabel(which will be overwitten later by function paging_init )
  • turn on MMU
  • jump to C part of kernel initialization code and carry on

Before delving into the your questions, it is benificial to know:

  • Before MMU is turned on, every address issued by CPU is physical address
  • After MMU is turned on, every address issued by CPU is virtual address
  • A proper page table should be set up before turning on MMU, otherwise your code will simply "be blown away"
  • By convention, Linux kernel uses higher 1GB part of virtual address and user land uses the lower 3GB part

Now the tricky part:
First trick: using position-independent code. Assembly function stext is linked to address "PAGE_OFFSET + TEXT_OFFSET"(0xCxxxxxxx), which is a virtual address, however, since MMU has not been turned on yet, the actual address where assembly function stext is running is "PHYS_OFFSET + TEXT_OFFSET"(the actual value depends on your actual hardware), which is a physical address.

So, here is the thing: the program of function stext "thinks" that it is running in address like 0xCxxxxxxx but it is actually running in address (0x00000000 + some_offeset)(say your hardware configures 0x00000000 as the starting point of RAM). So before turning on MMU, the assembly code need to be very carefully written to make sure that nothing goes wrong during the execution procedure. In fact a techinque called position-independent code(PIC) is used.

To further explain the above, I extract several assembly code snippets:

ldr r13, =__mmap_switched    @ address to jump to after MMU has been enabled

b   __enable_mmu             @ jump to function "__enable_mmu" to turn on MMU

Note that the above "ldr" instruction is a pseudo instruction which means "get the (virtual) address of function __mmap_switched and put it into r13"

And function __enable_mmu in turn calls function __turn_mmu_on: (Note that I removed several instructions from function __turn_mmu_on which are essential instructions to the function but not of our interest)

ENTRY(__turn_mmu_on)
    mcr p15, 0, r0, c1, c0, 0       @ write control reg to enable MMU====> This is where MMU is turned on, after this instruction, every address issued by CPU is "virtual address" which will be translated by MMU
    mov r3, r13   @ r13 stores the (virtual) address to jump to after MMU has been enabled, which is (0xC0000000 + some_offset)
    mov pc, r3    @ a long jump
ENDPROC(__turn_mmu_on)

Second trick: identical mapping when setting up initial page table before turning on MMU. More specifically, the same address range where kernel code is running is mapped twice.

  • The first mapping, as expected, maps address range 0x00000000(again, this address depends on hardware config) through (0x00000000 + offset) to 0xCxxxxxxx through (0xCxxxxxxx + offset)
  • The second mapping, interestingly, maps address range 0x00000000 through (0x00000000 + offset) to itself(i.e.: 0x00000000 --> (0x00000000 + offset))

Why doing that? Remember that before MMU is turned on, every address issued by CPU is physical address(starting at 0x00000000) and after MMU is turned on, every address issued by CPU is virtual address(starting at 0xC0000000).
Because ARM is a pipeline structure, at the moment MMU is turned on, there are still instructions in ARM's pipeine that are using (physical) addresses that are generated by CPU before MMU is turned on! To avoid these instructions to get blown up, an identical mapping has to be set up to cater them.

Now returning to your questions:

  1. At this time, after turning on page table, kernel space is still 1GB (from 0xC0000000 - 0xFFFFFFFF ) ?

A: I guess you mean turning on MMU. The answer is yes, kernel space is 1GB(actually it also occupies several mega bytes below 0xC0000000, but that is not of our interest)

  1. And in the page tables of kernel process, only page table entries (PTE) in range from 0xC0000000 - 0xFFFFFFFF are mapped ?. PTEs are out of this range will be not mapped because kernel code never jump there ?

A: While the answer to this question is quite complicated because it involves lot of details regarding specific kernel configurations.
To fully answer this question, you need to read the part of kernel source code that set up the initial page table(assembly function __create_page_tables) and the function which sets up the final page table(C function paging_init).
To put it simple, there are two levels of page table in ARM, the first page table is PGD, which occupies 16KB. Kernel first zeros out this PGD during initialization process and does the initial mapping in assembly function __create_page_tables. In function __create_page_tables, only a very small portion of address space is mapped.
After that, the final page table is set up in function paging_init, and in this function, a quite large portion of address space is mapped. Say if you only have 512M RAM, for most common configurations, this 512M-RAM would be mapping by kernel code section by section(1 section is 1MB). If your RAM is quite large(say 2GB), only a portion of your RAM will be directly mapped. (I will stop here because there are too many details regarding Question 2)

  1. Mapping address before and after turning on page table is same ?

A: I think I've already answered this question in my explanation of "Second trick: identical mapping when setting up initial page table before turning on MMU."

4 . The page table in kernel space is global and will be shared across all process in the system including user process ?

A: Yes and no. Yes because all processes share the same copy(content) of kernel page table(higher 1GB part). No because each process uses its own 16KB memory to store the kernel page table(although the content of page table for higher 1GB part is identical for every process).

5 . This mechanism is same in x86 32bit and ARM ?

Different Architectures use different mechanism

Menell answered 3/12, 2014 at 7:50 Comment(0)
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When Linux enables the MMU, it is only required that the virtual address of the kernel space is mapped. This happens very early in booting. At this point, there is no user space. There is no restrictions that the MMU can map multiple virtual addresses to the same physical address. So, when enabling the MMU, it is simplest to have a virt==phys mapping for the kernel code space and the mapping link==phys or the 0xC0000000 mapping.

  1. Mapping address before and after turning on page table is same ?

If the physical code address is Oxff and the final link address is 0xc00000FF, then we have a duplicate mapping when turning on the MMU. Both 0xff and 0xc00000ff map to the same physical page. A simple jmp (jump) or b (branch) will move from one address space to the other. At this point, the virt==phys mapping can be removed as we are executing at the final destination address.

I think the above should answer points 1 through 3. Basically, the booting page tables are not the final page tables.

4 . The page table in kernel space is global and will be shared across all process in the system including user process?

Yes, this is a big win with a VIVT cache and for many other reasons.

5 . This mechanism is same in x86 32bit and ARM?

Of course the underlying mechanics are different. They are different even for different processors within these families; 486 vs P4 vs Amd-K6; ARM926 vs Cortex-A5 vs Cortex-A8, etc. However, the semantics are very similar.

See: [email protected] - An article on the early Linux memory phase.

Depending on the version, different memory pools and page table mappings are active during boot. The mappings we are all familiar with do not need to be in place until init runs.

Eolian answered 22/5, 2013 at 19:1 Comment(6)
2.6.36 commit message, where ARM bootmem, follows x86 as is typical.Eolian
Hi artless noise. you write "link==phys", this means that Link = logical address ? for example: phys address = virt address +/- OFFSET .Exemplum
Yes, the kernel addresses in System.map are the link addresses or the kernel virtual address. You can specify the physical address to load at for some platforms. By link, I mean your 0xc0000000. Also, the == means an MMU mapping; sorry, that is cryptic.Eolian
In ARM v5, Translation Table Base Register only use bits from 14 -> 31. bits [0:13] is unused, set to 0. I confuse how there is only these 16 bits, but it can point to base address of the first-level translation table ?. ThanksExemplum
The first level table must be 16k aligned; now you know why. Basically to access the first level table the hardware does unsigned int ttb[va >> 20]; See ARM graphic for a visual.Eolian
Thanks artless noise, understood. So, range of addresses of entries in the table would be 0x00000000 - 0xFFFFC000. I think the picture above does not show this convention, it only shows how to get a entry in first-level table :) .Exemplum

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