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I am trying to do

memory = (char *)mmap((void *)0X0000100000000000,(size_t)0xffffffff/8,PROT_READ | PROT_WRITE , MAP_SHARED|MAP_ANONYMOUS,4,0);

but its not mapping anything and returning 0. I need to map memory at high address in 64-bit machine.

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Why do you need to "map memory at high address?" What's the end goal? –  John Zwinck Jul 2 at 0:10
    
I need to store values at that address for shadow mapping. –  in3o Jul 2 at 0:52

1 Answer 1

This is not meant as a complete answer - more of a possible explanation:

0X0000100000000000 is 281474976710656. Do you have that high a virtual memory address available? Or stated another way: is that address valid in your OS? I would guess the answer is no.

Is mmap actually returning MAP_FAILED ( (void *) -1 )? Usually when you give mmap an address it does not like, you get MAP_FAILED and errno == EINVAL. Did you check errno?

Note: 4 bytes is not the word length in a 64 bit OS, usually it is 8. A 4 byte word cannot address all of memory, for example.

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I have a 64-bit os, so 64-bit memory address is valid for it ,0X0000100000000000 is 64-bit memory address. mmap is returning 0 for sure. i didn't said anything about 4-byte. –  in3o Jul 2 at 3:38

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