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When I launch this piece of code, it says that every file is regular, even symlinks :

cout<<boost::filesystem::is_symlink(boost::filesystem::status("link-name"))<<endl;

Anyone knows why ? (there is no warning nor error during the compilation) The link was created with the command :

ln -s file-name link-name

and ls command says it is a link :

ls -l link-name
lrwxrwxrwx 1 myname mygroup 8 juil. 23 14:12 link-name -> file-name

Thanks !

EDIT : on the other hand, the function boost::filesystem::is_regular_file always returns true.

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Reading is an important skill for programming. –  The Paramagnetic Croissant Jul 23 '14 at 13:07

2 Answers 2

up vote 1 down vote accepted

You should use symlink_status(const path& p) as in the boost reference documentation.

file_status symlink_status(const path& p);

Returns: Same as status(), except that if the attributes indicate a symbolic link, as if by ISO/IEC 9945 S_ISLNK(), return file_status(symlink_file).

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Indeed, with symlink_status(), is_symlink() returns true. But there we have to know the file status before runnin ... how can I know wether a file is regular or symlink durin execution ? –  user52730 Jul 23 '14 at 13:19
    
always use symlink_status(), it returns same as status() except symbolic link. –  Alper Jul 23 '14 at 13:21
    
That's it ! symlink_status() works. Thanks ! But why status() does not returns the right file type ? –  user52730 Jul 23 '14 at 13:30
    
One may like to follow the symbolic link and determine the attributes of the target/real file. Boost provides 2 functions symlink_status() and status() to provide both. –  Alper Jul 23 '14 at 13:40
    
Hmmm yeah, I see. Thanks ! –  user52730 Jul 24 '14 at 15:24

In the code you have link_name, in the filesystem you have link-name.

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Sorry, it was just typo ... I edited. –  user52730 Jul 23 '14 at 13:12

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