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I'm guessing that a typical filesystem tends to keep some kind of checksum/CRC/hash of every file it manages, so it can detect file corruption.

Is that guess correct? And if yes, is there a way to access it?

I'm primarily interested in Windows and NTFS, but comments on other platforms would be welcome as well... Language is unimportant at this point, but I'd like to avoid assembler if possible.

Thanks.

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3  
No. CRC checking is the job of the disk drive. –  Hans Passant Oct 18 '11 at 19:03
    
@HansPassant At the block level, sure. But what about file level? –  Branko Dimitrijevic Oct 18 '11 at 19:06
    
depending on the OS and filesystem that can be true... for example for ZFS (available for Sun, Linux and OSX)... anyway IF that is calculated/stored by the filesystem it is usually not accessible via a documented API... to get to it you usually need to dig deep and use severaly undocumented stuff which in some cases need specific permissions (Administrator, root or even a kernel module/driver)... that is usually much more trouble than just calculating your own checksum... what exactly is your goal ? –  Yahia Oct 18 '11 at 19:06
    
@Yahia Yup that is what I was thinking but I needed a confirmation. The goal is performance through avoiding I/O for file content if the filesystem already "accessed" that content and calculated the checksum. –  Branko Dimitrijevic Oct 18 '11 at 19:14
    
@BrankoDimitrijevic, that performance hit is one good reason why file systems don't try to second-guess the hardware. –  Mark Ransom Oct 18 '11 at 19:27

2 Answers 2

up vote 1 down vote accepted

OK, it appears that what I'm asking is impossible.

BTW, this was also discussed here: There is in Windows file systems a pre computed hash for each file?

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In the majority of filesystems and the storage hardware they would keep checksums of allocation units, not full files.

The checksums in the hardware are probably not accessible at all in general, and the checksum of the filesystem clusters would not be very useful for the great majority of cases so would be difficult to get, if possible.

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