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Assume there is a server on the network and the local machine is trying to open a file. Is open("A/B/C/D/E/filename") implemented on the local system by something similar to this:

  1. Local system first retrieves the directory contents of A from the server, which could fail for security reasons.

  2. Local system scans the dir for the inode of B.

  3. Repeat 1 & 2 recursively until reaching inode of filename.

  4. Local system finally calls the server to open the inode of the filename.

Or is open() handled entirely on the remote host.

I am trying to decide if opendir(dir), readdir() for a certain filename pattern, closedir(), and finally doing open(filename) is going to take the same amount of time as just open(filename).

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NTFS is not a network filesystem. Did you mean NFS? –  larsmans Jun 15 '11 at 19:57
    
yeah, I meant NFS! –  johnnycrash Jun 15 '11 at 20:43
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1 Answer 1

up vote 2 down vote accepted

Authentication checks in NFS run on the remote server. Proof? User "root" on the local system typically is mapped to user "nobody" on the remote system and has no privs. However, I cannot guarantee offhand that security checks do not ALSO happen on the local system.

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Does it authenticate down the whole path/path/path in one shot? –  johnnycrash Jun 15 '11 at 21:28
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@johnnycrash: No, the system will request one directory component at a time, just like normal open(2) does on a local filesystem. See faqs.org/rfcs/rfc1094.html and "3.3. Permission Issues" for more information about permission lookups. If you want to see what is going on, make a NFS UDP mount to some server somewhere and use tcpdump (tcpdump -v -n port 2049 typically) to observe what is going on and how it works over the wire. –  Seth Robertson Jun 16 '11 at 18:58
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