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I am given this information, but am not sure how to approach this problem:

Double-Indirect Addressing

Disk block size = 1k
File Point is 64 bits (8 bytes)
Block can hold 128 file pointers
Inode holds 8 double-indirect entries 

Any sort of explanation or starting point would be much appreciated...I am very confused.

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Draw an inode map assuming each inode can hold 4 pointers instead of 128, that keeps things clearer. Now look how many blocks you can point to, if you limit yourself to two levels of indirection (so top inode, level 1 inodes, and level 2 inodes) –  MSalters Apr 28 '13 at 23:18

1 Answer 1

File pointer 64 means you can have a file that is has a maximum offset of the the largest number that a 64 bit unsigned number can have. In theory. In practice you don't have disk space for

2^64 -1 bytes of file data  + 1 byte for a null terminator

The df -h command will show you the max available free space you have on your filesystems. Select one for the big file.

PS: 2^64 -1: 18446744073709551615

The reason for this is that up until recently filesystems were limited to files of size 2^32 -1 bytes. As hardware changed, "largefile" extensions for accessing files larger than that were cobbled together on 32 bit systems. With 64 bit processors filesize using 64 bit pointers became commonly available.

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