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I'm not able to understand this piece of code:

static int read_mem(int pm, u64 *map)
{

    u64 aux = PAGE_SIZE * sizeof(*map);

    if (read(pm, map, aux) != aux) {
        pr_perror("Can't read pagemap file");
        return -1;
    }

It's actually reading a memory page from the descriptor pm, but I cannot understand why it is using a u64 as an address to a buffer.

How can I get the content which has been read? How can I print it out or process it?

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3  
It's not using a u64 as an address. It's using a u64 *. –  Kerrek SB Dec 14 '13 at 12:13
    
learn pointers. map is pointing to your content. –  qwr Dec 14 '13 at 12:35
    
You may follow linux/include/linux/mm_types.h to discover content of memory page. –  Alexander Borodulya Dec 14 '13 at 12:37

1 Answer 1

up vote 1 down vote accepted

u64 is a type used in Linux whose size is 8 bytes.

why it is using a u64 as an address to a buffer.

Your code is reading a memory page from the file descriptor pm which, I guess, is associated to a process memory (e.g. /proc/pid/mem/). I guess, this code is executed in x86_64 architecture where a memory location is of size 8 bytes. Therefore, a buffer pointer of type u64 is used because this type matches the size of a memory location allowing us to handle the memory page read as big array of type u64 and size PAGE_SIZE( i.e. u64 memory_page[PAGE_SIZE]).

Possible problem, this code is not portable to an x86_32 architecture because u64 is 8 bytes also in 32 bit architectures while memory locations are of size 4 bytes. However, you should not relay on the size of the pointer to determine the size of the memory location, because, even though this method works, the standard C does not guarantee it.

How can I get the content which has been read? How can I print it out or process it?

Assuming that map points to a buffer sufficient larger to contain all the data read, you can access the value read from the memory as follows :

int i=0; 
puts("Memory dump"): 
for( i=0; i < PAGE_SIZE; i++) 
   printf("[%d] : %lu\n", i,  *(map+i)); 

Since the memory locations have size 8 bytes, you can see the page read as big array of type u64 and size PAGE_SIZE.

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Hi, sounds interesting, but there appears an error: error: format â%lluâ expects argument of type âlong long unsigned intâ, but argument 3 has type âu64â [-Werror=format=] printf("[%d] : %llu\n", i, *(map+i)); –  user2212190 Dec 14 '13 at 12:47
    
@user2212190 which error? I haven't compiled the code –  Giuseppe Pes Dec 14 '13 at 12:47
    
@user2212190 It's a problem with %llu. The u64 is long unsigned. btw, that should be a waring not an error. You get an error because you are using Werror=format –  Giuseppe Pes Dec 14 '13 at 12:55
    
Works, Thank you ! –  user2212190 Dec 14 '13 at 12:59

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