Tag Info

New answers tagged

1

First, this overload does not exist: GetDirectories(string, options) There is: GetDirectories(path as string) GetDirectories(path as string, pattern as string) GetDirectories(path as string, pattern as string, options As SearchOptions) None of those match the way you are using it. Second, you should not assume the name of system folders such as ...


0

Try this instead: ? = New System.IO.DirectoryInfo("C:\Program Files (x86)\Java").GetDirectories(SearchOption.AllDirectories)


1

you can make a class contains info and serialize it to a text file , it's more easy to access and can store multiple values, then to store new values first delete file and then create file again. another approach could be a register key containing information. hope it would be useful ;)


0

You can use the last access time from the filesystem (In GNU/linux you can use ls -lu to see last access time). This is not a portable solution because it depends on filesystem and filesystem settings (see JoachimPileborg edit below) Moreover look at this question to get last acces time in C (use atime instead of mtime).


0

The standard function to get the name of the current working directory is getcwd(), not get_current_dir_name(). get_current_dir_name() is a GNU extension and is only available if the macro _GNU_SOURCE is defined prior to including <unistd.h>, and its use is not recommended. In your case, _GNU_SOURCE is not defined, so consequently ...


0

This is likely done using a rewrite engine such as Apache's mod_rewrite. I would recommend that you should read up on that. Depending on your server configuration you would likely do this through a .htaccess file


0

to show folder lists without / ls -d */|sed 's|[/]||g'


2

Try this: function listFolderFiles($dir) { $ffs = scandir($dir); echo '<ol>'; foreach($ffs as $ff) { if($ff != '.' && $ff != '..') { echo '<li>'; if(is_dir($dir.'/'.$ff)) { echo $ff; ...


0

Try putting it into a variable so you can get a handle on it. Dim FilePath As String = "C:\Program Files (x86)\Java\" After this you can do things with the File path, for e.g. an if statement. If File.Exists(FilePath) Then


-1

Try this, if you won't add "/xml/database.xml" in your "src" folder: final String workingDirectory = System.getProperty("user.dir"); final InputStream in = new FileInputStream(workingDirectory + "/xml/database.xml"); document = builder.parse(in); .. .


0

Just remove the first part like this: document = builder.parse(ClassLoader.getSystemResourceAsStream("xml/database.xml")); Your xml folder is in the root of your project folder this is where getSystemResourceAsStream looks if I am not mistaken.


0

Thanks for your suggestion. I did a little more work and now it is possible for me to read the users of each group but there is still one little problem. I have this group L_P00142W, and this group has a Domain Local Groups, called L_ext_P00142W, and this group I cannot access. All the other groups are not a problem anymore to read for me, but this group ...


1

The output file being created at the python.exe location is the expected OS behavior. When you launch an application this way, its working directory will be set to the directory where the .exe file is located. Python itself will not change the working directory to the script location, so you would have to do that manually. One way is to change the directory ...


1

Actually, DIR works fine if you append an asterisk to the filename, thus: dir %filename%* | find "<SYMLINKD>" && ( do stuff )


0

We need to know exactly how it "didn't work." However... You need to look at the results from DirectoryInfo.GetDirectories(), something like this: Imports System.IO Module Module1 Sub Main() Dim sourceDir = Path.Combine(Environment.GetFolderPath(Environment.SpecialFolder.ProgramFilesX86), "Java") Dim dirInfo = New ...


1

In your example, 'path' is being set to your .exe, which will cause if (Directory.Exists(path)) to fail, therefore, the dialog will open to the last known good directory, because InitialDirectory will not be set to the value that you want. Try simply hard-coding a known good directory path first. Or you could do something like this to fix it: path = ...


1

I think I would approach this problem by breaking it into two parts. First, we need a way to parse apart the array of directory/file paths and put it into a hierarchical structure. Second, we need to take that structure and turn it into JSON. (I wasn't entirely sure from your question which serializer you wanted to use, so for this answer I will assume ...


0

It won't help you change the directory; it is what is advised to use instead of changing the current working directory. The position of the designers of Java is that, if some part of your application needs a specific context directory other than the current working directory inherited from the underlying OS, this should be done by relying on the explicit ...


1

In the particular case you are looking for a 1) directory which you know the 2) name, why not trying with this: find . -name "octave" -type d


0

Here is one without parenthesis [io.fileinfo] 'c:\temp\myfile.txt' | % basename


0

Better not going back to java.io.File and using NIO instead: Path sourceDir = Paths.get("c:\\source"); Path destinationDir = Paths.get("c:\\dest"); try (DirectoryStream<Path> directoryStream = Files.newDirectoryStream(sourceDir)) { for (Path path : directoryStream) { System.out.println("copying " + path.toString()); ...


0

Seems that this issue is related to this topic here: Received error "Not Authorized to access this resource/api" when trying to use Google Directory API and Service Account Authentication You need to pass account email with admin permissions into credentials like this: credentials = SignedJwtAssertionCredentials('CLIENT_EMAIL', key, ...


1

Etan Reisner (above) answered this question. The - in the rm -Rf commands was not an ascii character, It is U+0096.


1

Start with the outermost directory. (md and makedir are the same thing, and both works on Windows.) md \Programs Now create the next level (repeating for each one): md \Programs\Adobe Now the next level: md \Programs\Adobe\Guest Continue as needed.


0

Keep it short. @files = readdir(DIR) - 2; The -2 is because readdir counts "." and ".." as directory entries. print @files . " files found\n"; exit; 1 files found


0

You can do like this: <Directory /foo/bar> Order Deny,Allow Deny from all Allow from 1.2.3.4 1.2.3.5 </Directory> <DirectoryMatch /(?!foo/bar)> AuthName "FOO" <IfDefine AUTH_SPNEGO> Krb5ServiceName HTTP AuthType SPNEGO </IfDefine> require valid-user allow from all </DirectoryMatch> /foo/bar is ...


0

Something like end(explode(".", $file)); Would return the extension a lot easier


0

echo "Last modified: " . date ("F d Y H:i:s.", filemtime($filename)); H -- is 24 hours h -- is for 12 hours before echo Last modified line, print this line: date_default_timezone_set("Asia/Kolkata"); Replace your time zone (http://php.net/manual/en/timezones.asia.php )


0

Welcome to stackoverflow! For the convenience of current and future readers, here's a small, self contained example showing the problem: filename="my file.txt" if [ ! -f $filename ] then echo "file does not exist" fi Here's the output we get: $ bash file file: line 2: [: my: binary operator expected And here's the output we expected to get: file ...


1

The proper way to handle this is to surround your variables with double quotes. var=/foo/bar baz CMD $var # CMD /foo/bar baz The above code will execute CMD on /foo/bar and baz CMD "$var" This will execute CMD on "/foo/bar baz". It is a best practice to always surround your variables with double quotes in most places.


0

The first step would be to create a plain-text (.txt) file that has one saying per line: As I see it, yes. It is certain. Most likely. Outlook good ... Place this file in the same directory as your Python script.1 After that, you can open the file with open, call its read method to read in the data, and then call str.splitlines to remove the trailing ...


0

You should define what you mean by executable files. That could be any file with its execute bit (it is the owner, group, or other) set. Then test with access(2) & X_OK and/or use stat(2). That could also be only ELF executables. See elf(5); then the issue might be to check that a file could indeed be executed, which might be difficult (what about ...


0

The Windows CE and Windows Mobile (CE4.2 or CE5 based) standard file dialogs are restricted to \My Documents" plus one subdir below that and 'external' volumes, like SD Card or persistent storage. OEMs declare part of the flash store as persistent storage and use special names for thes like "\Flash File Store", "CK_FFS" and others. You can recognize these ...


1

The CREATE DIRECTORY command does not create a directory on your server's disc. It creates a directory object in your Oracle database which serves as a "pointer" (if you will) to a directory on your disc, and until some code running in your database (for example, some PL/SQL code) tries to use the directory object the database will not know or care if the ...


2

You have things the wrong way around. You need to create a directory in the operating system, and then create an Oracle directory object using the full path to the operating system directory. The Oracle create directory command only creates a data dictionary object, it does not itself do anything on your server's file system. And you can't use a relative ...


0

What you're doing wrong is that even in subdirectories you call stat() with just a filename, which is searched in the current directory and not in the subdirectory, so stat() fails. It may work if you call chdir(cwd) before and chdir("..") after the for loop.


0

Putting the following into your .bash_profile (or equivalent) will give you a mkcd command that'll do what you need: # mkdir, cd into it mkcd () { mkdir -p "$*" cd "$*" } This article explains it in more detail


2

As stated in the specification of dir it returns an Nx1 struct where the number of items N corresponds to the number of files and folders it retrieved from the path you pass to dir.


1

An option that you didn't specify is to mock out the file access behind an interface and then have the mock simulate lack of access. This has the benefit of not needing to change anything for the test, but means that its not longer an integration tests. If you don't mock and instead change the config/folder access then this test will need to ensure it isn't ...


0

This answer is taken from http://old.thoughtsincomputation.com/posts/tar-and-a-few-feathers-in-ruby who took it from the RubyGems library. require 'rubygems' require 'rubygems/package' require 'zlib' require 'fileutils' module Util module Tar # Creates a tar file in memory recursively # from the given path. # # Returns a StringIO whose ...


1

Filename with path to the file is limited to 260 characters.


0

First, note that you don't need to look at each 'part' of src to see if it is contained in sources. Rather, you can do something like: ArrayList<File> sources = new ArrayList<>(); boolean addNewSourceToList(File src) throws IOException { Path newPath = src.toPath(); for(File f : sources) { ...


0

suppose you have pgm1.php in www.domain.com/dir1/dir2/dir3/pgm1.php, which include or require 'dirA/inc/Xpto.php'. and another pgm2.php in www.domain.com/dirZ1/dirZ2/pgm2.php, which include or require same 'dirA/inc/Xpto.php'. and your Host configuration not authorize require/include 'http://www.domain.com/......' So...you can use this, in both pgm1.php ...


0

Try this , prevent or allow the server to display the index of the files in the folders of your web server. You can put a .htaccess file in each of your directory with this code Options All -Indexes


1

Disclaimer: I haven't tested symlinks on a network drive - don't have permission to create one. I'll try at home later and update my answer. But I can tell you that on a local disk: For a "normal" directory, the Attributes property will have the Directory bit set. For a symlink -- I'm guessing for a junction as well -- the Directory and ReparsePoint bits ...


0

just remove the slash from your root link $root = "localhost:1234/project/"; to $root = "localhost:1234/project"; and include your file like this include $root . "/functions.php"; or keep your root and require the files without slash


0

The path of the second opendir is relative to the location of the script: if($handle = opendir('subscribers/'.$entry)){ This fixed it for me.


0

Solution The solution is really simple: $destinationPath = 'userdata/user/' . Auth::user()->id; You don't need the File::makeDirectory()


0

How can I check if a folder (directory) exists on an http server ? You can't, in all cases: Firstly, it isn't a folder or directory. It is a name in a namespace that is understood / presented by the HTTP server. Secondly, the HTTP server is under no obligation to tell you if the name exists. In practice, you will usually be able to tell if the name ...


0

inoteefy gives you a nice listener based api on top of the Linux inotify api. Example for listening to updates to /tmp/: 1> inoteefy:watch("/tmp/", fun(X) -> io:format("File event: ~p~n", [X]) end). ok File event: {"/tmp/",[create],0,"foo.txt"} File event: {"/tmp/",[open],0,"foo.txt"} File event: {"/tmp/",[attrib],0,"foo.txt"} File event: ...



Top 50 recent answers are included