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0

The result is expected and case sensitive. If you do not care the case of those file names, just do the following: Dir.foreach(Dir.pwd){|f| array.push(f.upcase)} # or downcase


0

Try this: def get_script_path(for_file = None): path = os.path.dirname(os.path.realpath(sys.argv[0] or 'something')) return path if not for_file else os.path.join(path, for_file)


0

There is a lot of ways to do this... Just one: Public Class Form1 Private Shadows Sub Load() Handles MyBase.Load Dim Files As String() = {"C:\File1.txt", "C:\File2.txt"} For Each File As String In Me.CheckFileExists(Files) MessageBox.Show(String.Format("File doesn't exist: {0}", File), "File Not Found", ...


-2

You can check all files in a directory and find whether the required file is present or not with the following query: Dim dir As DirectoryInfo = New DirectoryInfo("d:\") dim flag As Integer=0 For Each File As FileInfo In dir.GetFiles If File.Name = "FINAL.txt" Then MsgBox("File Exist in System Folder", MsgBoxStyle.Information, "File is ...


0

For File dest, instead of adding the two, try separating them by a comma. Do a sysout for dest as the addition version and the comma version to see why there is an issue with doing it that way.


0

Use the following when creating destination File File dest =new File(System.getProperty("user.dir"), selectedFile.getName()); instead of this File dest =new File(System.getProperty("user.dir") + selectedFile.getName()); Explaination Assume that System.getProperty("user.dir") returns C:\Users\Me\Workspace and selectedFile.getName() returns myfile.cpp. ...


1

Well. A lil' bit late maybe, but I just had the same problem and solved it like this: Dim Path As String() = Directory.GetCurrentDirectory.ToString.Split(New Char() {"\"c}) For i = 0 To Path.Count - 3 PathLb.Text = PathLb.Text & "\" & Path(i) Next i PathLb.Text = PathLb.Text.Remove(0, 1) With this the path is contained on ...


0

Add the full path where the image exist with double slash. mTextures.Load(Textures::Background, "C:\\Program Files\\..\\..\\GFX\\Background.png");


0

Your debugger's current directory (i.e. the current directory used when you execute the application from within codeblock) is probably incorrect. Check your project settings, and fix the current directory to your target directory (the one which contains the executable itself). Specific instructions are here.


0

It's because you're using a relative path in your file name: "../GFX/Background.png" the .. is saying "go up one directory form the current directory". If you want to be able to run your program anywhere, use an absolute path, something like: "/home/me/GFX/Background.png"


0

This will do want you want, and avoid collisions static string SanitiseFilename(string key) { var invalidChars = Path.GetInvalidFileNameChars(); var sb = new StringBuilder(); foreach (var c in key) { var invalidCharIndex = -1; for (var i = 0; i < invalidChars.Length; i++) { ...


0

:Start @Echo Off :Get_Folder Set "_Folder=" Echo. Set /p _Folder=Guess folder name: If Not Exist %_Folder% Echo Nope, folder does not exist. Try again.&Goto Get_Folder :Found Echo. Echo Yep, folder %_Folder% was found. :End Set "_Folder="


0

You probably have messed up with your Java installation by accident. If you want to troubleshoot Cordova build process you could run command below: cd <path/to/project> ant -v -f ./platforms/android/build.xml debug assuming that you are using cordova tool for the running build.


0

Try this code if(is_dir($some_dir)){ // HERE, DELETED, GONE $d = @opendir($some_dir); // warning } If you don't want to use '@' then you have to check/confirm your directory path on $some_dir is correct


0

Try the following by checking if that variable is set in the first place. if(isset($some_dir)): if(is_dir($some_dir)): // HERE, DELETED, GONE :( $d = opendir($some_dir); // warning !!0 endif; endif;


1

$d = @opendir($some_dir); @ before a function silence errors the function could raise. Then you can test $d to see if it worked or not (False if not working). Oh right, thanks comments, OP mentionned not to tell about @ my bad. Then another possibility is to change your php configuration so php doesn't raise warnings.


0

You can use folioGallery It's a php photo gallery which uses your file system to generate gallery. downlaod link for same : http://www.foliopages.com/php-jquery-ajax-photo-gallery-no-database


1

@SimonBuchan is correct. Since git 1.8.2, Resources/** !Resources/**/*.foo works.


0

Use https://docs.python.org/3.4/library/pathlib.html#module-pathlib: >>> from pathlib import PurePath >>> import os >>> path = PurePath("/path/to/a/directory/or/file.txt") >>> path.parts ('/', 'path', 'to', 'a', 'directory', 'or', 'file.txt') >>> a_idx = -1 >>> for idx,part in enumerate(path.parts): ... ...


0

You will need to use MediaScanner to notify the system of the new file/directory. You can try something like this after creating and saving the new file: /** * Adds the new photo/video to the device gallery, else it will remain only visible via sd card * * @param path */ public static void addToGallery(Context context, String path) { MediaScanner ...


-1

give this permission in your android manifest file this will work <uses-permission android:name="android.permission.WRITE_EXTERNAL_STORAGE" />


0

You van use this: Environment.getDataDirectory()+"yourdirectoryname"


1

This is handled by your web server, not PHP. Check your Apache / IIS / etc settings for DocumentRoot of given VirtualHost definition. As SGT noted you can also use URL Rewriting, but again, that too is handled by the web server and has nothing to do with PHP.


0

public File createDir() { FIle DIR=null; if (android.os.Environment.getExternalStorageState().equals(android.os.Environment.MEDIA_MOUNTED)) DIR=new File(android.os.Environment.getExternalStorageDirectory()+DIRNAME); else DIR=context.getCacheDir(); if(!DIR.exists()) ...


1

Use getFilesDir() for that. From the docs: Returns the absolute path to the directory on the filesystem where files created with openFileOutput(String, int) are stored. No permissions are required to read or write to the returned path, since this path is internal storage. To answer your comment, I'll quote the docs docs: By default, files ...


0

Enable .htaccess on apache servers in localhost 1) Find your apache directly which uses the php installation . 2) Open your httpd.conf with notepad, Which is located in the path \apache\conf directory 3) Find the code like below #LoadModule rewrite_module modules/mod_rewrite.so 4) Remove # from above code # AllowOverride controls what ...


0

Well double check and make sure you quit python.


1

Simply put a check using strcmp. For example: if(strcmp(file->name,"..")==0) then don't print the file name.


2

The simple way: just make sure the file name isn't "." or ".." before you display it. :P if (strcmp(file->d_name, ".") && strcmp(file->d_name, "..")) { printf("%s\n", file->d_name); }


0

Not quite sure what your goal is but this basic example might help. File[] fileArray=new File("textanalyzer/Shakespeare").listFiles(); for(File f: fileArray) // loop thru all files { if(f.getName().endsWith(".txt")) // to deal with the .txt files. { Scanner s=new ...


0

I would try to seperate the directories returned by EnumerateDirectories in two list depending on how the string starts with List<String> foldersA = new List<string>(); List<String> foldersB = new List<string>(); List<String> otherFolders = new List<string>(); // Eventually string rootPath = @"D:\temp"; foreach(string ...


0

You could use the Search options to give you the top level directories then process each one in turn to get its subdirectories Directory.GetDirectories(thePath, aSearchPattern ,SearchOption.TopDirectoryOnly);


2

What encoding is used for the files? It looks like ISO-8859-1. In Python 2, for example, you can use .decode('iso-8859-1'), i.e. import os DIR = r"/Users/user/Desktop/OpinionsTXT" opiniones = [open(os.path.join(DIR, f)).read().decode('iso-8859-1') for f in os.listdir(DIR)] >>> print opiniones[0] # note that opiniones is a list. f qué suplicio, ...


3

Try using this instead. The call to Server.MapPath returns the physical path corresponding the virtual path you provide, assuming "files\randomlist.txt" is the correct virtual path. StreamReader reader = new StreamReader(HttpContext.Current.Server.MapPath(@"files\randomlist.txt"));


1

Using Server.MapPath("~") would give the root directory of your website. It's not recommended to concatenate pants with +, use Path.Combine(a, b) instead.


0

There are many way to accomplish this; an easy method would be to use a foreach loop to output only the filenames. fileupload.php $user_path = sprintf("/home/ajhausdorf/uploading/%s", $userName); $files=scandir($user_path); foreach($files as $file) { if($file == "." || $file == "..") { continue; } echo $file; }


0

My solution using the tempfile module: import tempfile import errno def isWritable(path): try: testfile = tempfile.TemporaryFile(dir = path) testfile.close() except OSError as e: if e.errno == errno.EACCES: # 13 return False e.filename = path raise return True


1

Unless you're using a Java prior to Java 7 I would strongly suggest to use Path. You can walk a directory recursively using Files.walkFileTree(). Once you encounter a file (!Files.isDirectory()), you can get its parent with Path.getParent(). And you can print the relative path to this parent of all further file using Path.relativize(). Short, Simple ...


0

I think that you need this to solve only a specific problem. You can do it using Notepad++: Search > Find in Files ... (Ctrl + Shift + F) There you can find "Find what" and "Replace with".


0

I don't believe there is a built-in widget that does exactly what you want. However, I do think you could write a fairly simple script to walk a folder using Python's os.walk: https://docs.python.org/3/library/os.html#os.walk http://www.pythonforbeginners.com/code-snippets-source-code/python-os-walk/ Then use the results from that to popular a ...


1

Just a little error with needing to use the module first: use 5.16.3; use strict; use warnings; # import the sub dircopy into your script use File::Copy::Recursive qw(dircopy); my $datestring = localtime(); my $orig = "C:/Users/Simon/My Documents"; my $new = "E:/Back Up/2014/$datestring"; dircopy($orig, $new) or die "Copy failed: $!";


0

Ensure that the user account under which the website is running (eg "iis apppool\DefaultAppPool" -- or whatever app pool -- in IIS7) has appropriate permission.


1

You can provide a relative path to I/O operations, and the default path is the Environment.CurrentDirectoy value, and mostly this will be the directory where your Windows Forms executable is working from. Note that you don't need the ./ starting point in your path, File.Copy("FileA.txt", "FileA_1.txt") will look for these locations in ...


1

To be sure that you're referring to the application's path you can use this: string exePath = System.IO.Path.GetDirectoryName( System.Reflection.Assembly.GetEntryAssembly().Location); Or AppDomain.CurrentDomain.BaseDirectory Remeber to verify that the directory you're reffering to exists or otherwise you might get a DirectoryNotFoundException


0

My answer to the question Better way to rename files based on multiple patterns describes a general pattern you can us here: job_select /path/to/directory| job_strategy | job_process where job_select is responsible for selecting the objects of your job, job_strategy prepares a processing plan for these objects and job_process eventually executes the ...


0

This implementation realizes your purpose, dynamically filling an array of strings with the content of the specified directory. int exploreDirectory(const char *dirpath, char ***list, int *numItems) { struct dirent **direntList; int i; errno = 0; if ((*numItems = scandir(dirpath, &direntList, NULL, alphasort)) == -1) return ...


0

This is the implementation based on scandir! int exploreDirectory(const char *dirpath, char ***list, int *numItems) { struct dirent **direntList; int i; errno = 0; if ((*numItems = scandir(dirpath, &direntList, NULL, alphasort)) == -1) return errno; if (!((*list) = malloc(sizeof(char *) * (*numItems)))) { ...


0

supped that I want to access directory which other application use it. An application can create zero, one, or many directories, on internal storage or external storage. I want to know is there any way to know exact path of this directory? Get a job with Viber and look at their code. but its possible in other phone this directory created in ...


1

you need to exchange mkdir for mkdirs. This question coul've been easily answered if you had looked at the documentation


2

You need to use mkdirs() instead, it will create all parent directories. Creates the directory named by this abstract pathname, including any necessary but nonexistent parent directories.



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