output of evalc

3 views (last 30 days)
Jaap
Jaap on 9 Jan 2012
Hi, I am trying to load the filenames of 10000+ files (on a network path).
dir & ls seem the obvious commands, but they are both slow (33s for 18k files).
evalc on the other hand takes less than a second. (evalc('dir(...)')) however, the output is in a 1-d char array consisting of all filenames. There are spaces in the filenames as well, so that makes seperating a bit troublesome.
is it possible to get a different output format, or does anyone know a different "solution"?
Thanks! Jaap
PS. It's on a 32bit winXP
  3 Comments
Show 1 older comment
Jaap
Jaap on 10 Jan 2012
that would certainly be a good approach. however, it's a company network drive, in which I would like to keep the traffic one-way.
Jaap
Jaap on 10 Jan 2012
other people are going to use this as well, who possibly do not have write access.

Sign in to comment.

Sign in to answer this question.

Accepted Answer

Daniel Shub
Daniel Shub on 10 Jan 2012
It seems that
evalc(['dir(', FilePath. ')'])
should go faster than
D = dir(FilePath);
since the evalc method only gets the file names while the direct call gets additional information. On a local filesystem, it probably doesn't matter much, but over a network it could make a big difference.
What about using the system call. On Windows that would be
[~, filenameArray] = system('dir /b');
and on Linux it would be
[~, filenameArray] = system('ls -1');
(note it is a one and not an el). . If you have oddly named or hidden files you may need more parameters.
  3 Comments
Show 1 older comment
Daniel Shub
Daniel Shub on 10 Jan 2012
I wouldn't extrapolate between what MATLAB does to get the directory information over a network share and how system level calls do it. My guess is it is both OS and mount type dependent. Is this a samba/windows share mount?
Jaap
Jaap on 10 Jan 2012
I'm not quite sure, but it seems to be a regular network drive (visible under my computer etc).

Sign in to comment.

More Answers (2)

Jan
Jan on 9 Jan 2012
Are you sure that Str = evalc(['dir(', FilePath. ')']) and D = dir(FilePath); have such a large speed difference?! Or did you just call dir at first, such that evalc('dir') can access the cached data?
Please post a copy of the used code.
  4 Comments
Show 2 older comments
Titus Edelhofer
Titus Edelhofer on 10 Jan 2012
Hmm, when scanning the output of evalc you already pointed out the main obstacle: filenames with spaces will give you a hard time (probably making this approach unusable).
Jaap
Jaap on 10 Jan 2012
Thank you titus, indeed the same experience I had. there is something possible with strfind and filename extentions to search for filenames in a large string, but then I think I would prefer the slower approach.

Sign in to comment.

Titus Edelhofer
Titus Edelhofer on 10 Jan 2012
But you could try something similar:
p = s{2};
[a,b]=system(['dir /B "' p '"']);
It took about half the time of the dir() call ...
Titus

Categories

Find more on File Operations in Help Center and File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!