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The performance benefit of DirectoryStream come in the form of memory usage and the ability handle the returned path objects as the directory is being listed rather than building the full list and storing it in memory, then iterating over it. This is beneficial when listing directories containing large numbers of files, or when recursively walking a ...


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This should do what you are looking for. Give this script a try in your Send To menu: @ECHO OFF SETLOCAL :ProcessFile REM Check if there are any files to process. IF "%~1"=="" GOTO :EOF REM Process the current file. SET NewDir="%~dpn1\" REM Create the directory if it doesn't already exist. IF NOT EXIST %NewDir% MKDIR %NewDir% REM Move to the next ...


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This works for me and lists the contents of my current directory: os.listdir(os.getcwd())


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<?php include("/header.php"); $tpTitle= "whatever title you want"; echo "<h1>$tpTitle</h1> " ; ?> or directly delete the $tpTitle in header.php and modify in h1 /taylor-swift.php echo "<h1>whatever you want title</h1> " ;


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Your question is really unclear (on what you're trying to accomplish and some info why you want to have it works that way), but given that you specifically mention you just learn the language, i'll try to give some answers.. If i understand correctly, you can just hardcode the "The 1989" string into the "taylor-swift.php" file (or "On The Road Again" in ...


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Look into $_SERVER['REQUEST_URI'] to find out which page (/taylor-swift.php, one-direction.php) the user is on. Then, define an array like this: <?php $tour_names = [ 'taylor-swift' => 'The 1989', 'one-direction' => 'On The Road Again' ]; ?> <h1>Taylor Swift <?= $tour_names[$_SERVER['REQUEST_URI']] ?> Tour 2014</h1> ...


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I like this approach: this.file <- sys.frame(tail(grep('source',sys.calls()),n=1))$ofile this.dir <- dirname(this.file)


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I came on this page while searching for a way to monitor filesystem activity. I took Refracted Paladin's post and the FileSystemWatcher that he shared and wrote a quick-and-dirty working C# implementation: using System; using System.IO; namespace Folderwatch { class Program { static void Main(string[] args) { //Based on ...


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This SO answer may helps you(I have tested). In short, change your folder localization strings(In my case, inside ko.lproj) using TextWrangler or other application(Xcode, TextEdit does not work in my case) I add <key>Dropbox</key> <string>드랍박스</string> to this file. ...


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You need a description.txt in your theme folder. In the description.txt should be something like: My theme This is a description of my theme Where 'My theme' is the title of your theme and the line below the description of the theme. Theming has not changed much between version 5.6 and 5.7 . Source: ...


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Use Use this code: HttpContext.Current.Server.MapPath("~") Detailed Reference : Server.MapPath specifies the relative or virtual path to map to a physical directory. Server.MapPath(".") returns the current physical directory of the file (e.g. aspx) being executed Server.MapPath("..") returns the parent directory Server.MapPath("~") returns the ...


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as Joachim & Mats explained, do something like this. Below code is for your reference only! #include <stdio.h> const int MAX_BUFFER = 2048; char path[60]; char cmd[180]; sprintf(path,"%s","/home/Directory"); sprintf(cmd,"du /home/Directory",path); char buffer[MAX_BUFFER]; FILE *stream = popen(cmd, "r"); if (stream) { while (!feof(stream)) ...


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You should index your list on modify time and slice your array when you want to show them. Update: you should use krsort // the paths $dir = '/var/www/uploads/'; $urlPath = 'http://localhost/uploads/'; $allow = array('jpg','jpeg','gif','png', 'JPEG', 'JPG','GIF','PNG'); $open = opendir($dir); while( $file = readdir( $open ) ){ $ext = ...


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You can get the month's name with date -d yourdate +%B (or the abbreviated name with +%b). You need to format your date, date needs something like YYYYMMDD or YYYY-MM-DD. Since you only need the month, you can cheat a little. #!/bin/bash currentYear=2010 DIR="/path/to/year/folder/$currentYear" target=$DIR cd "$DIR" for folder in *; do if [[ -d $folder ...


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I have figured this out with a friend of mine. You can use this [Environment]::GetEnvironmentVariable("Path") to see your whole pathname. With [Environment]::SetEnvironment("Path", "$env:Path;C:\Python27" ( you are making a pathname with the name "Python27") if you want to replace it you can use this: Replace: $env:Path.Replace("C:\Python27", ...


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You are browsing the prod environment, in this contest the acmedemobundle is disabled by default: take a look at the file: app/AppKernel.php if (in_array($this->getEnvironment(), array('dev', 'test'))) { $bundles[] = new Acme\DemoBundle\AcmeDemoBundle(); $bundles[] = new Symfony\Bundle\WebProfilerBundle\WebProfilerBundle(); ...


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Size On Disk is the actual size that your files occupy on the drive depending on the cluster size (or allocation unit), which most of the time is 4KB, but not all of the time. It depends on the file format and how it was formatted. As long as the files are not compressed, it's a matter of finding out how many chunks of clusters are needed to fit each file. ...


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Here's how I approached the problem when I was working on the course: pollutantmean <- function(directory=getwd(), pollutant, id = 1:332) { filetotals <- 0 observationnumber <- 0 for(i in id) { csvfile <- sprintf("%03d.csv", i) filepath <- file.path(directory, csvfile) readcsvfile <- read.csv(filepath) justpollutant ...


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Suppose the files are in the working directory pollutantmean <- function(pathtodirectory, pollutant, id=1:332){ files <- sprintf('%s/%03d.csv', pathtodirectory,id) lst <- vector('list', length(id)) m1 <- vector('numeric', length(id)) for(i in seq_along(lst)){ lst[[i]] <- read.csv(files[i]) ...


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$root = dirname(__FILE__); echo $root;


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I worked on a little script and tested it.Hope this helps. #!/bin/bash pwd=`pwd` #list all files,cut date, remove duplicate, already sorted by ls. dates=`ls -l --time-style=long-iso|grep -e '^-.*'|awk '{print $6}'|uniq` #for loop to find all files modified on each unique date and copy them to your pwd for date in $dates; do if [ ! -d "$date" ]; then ...


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If you need to work with order dictionaries, then orderdict would be perfect for you: prices = {"banana": 4,"apple": 2,"orange": 1.5,"pear": 3} stock = {"banana": 6, "apple": 0, "orange": 32,"pear": 15} from collections import OrderedDict from operator import itemgetter prices1 = OrderedDict(sorted(prices.items(), key = itemgetter(0))) stock1 = ...


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dicts in Python are not ordered. You could sort they keys first and then use them: for i in sorted(prices): # sorts the keys print i print "price : %s" % prices[i] print "stock : %s" % stock[i] To print alphabetically. You could also use your own custom sort key like: for i in sorted(prices, key=str.lower): # sorts the keys disregarding ...


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Python dicts are unordered, that is their keys are not in lexicographical sorting. If you want the keys to be always ordered, use an OrderedDict instead. Otherwise, you can also sort the list and instead use for i in sorted(prices):.


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I seemed to have found an answer that suited me, this worked on OSX just fine on three files, before I run it on the massive folder, can you guys just check that this isn't going to fail somewhere? #!/bin/bash DIR=/Users/limeworks/Downloads/target target=$DIR cd "$DIR" for file in *; do # Top tear folder name year=$(stat -f "%Sm" -t "%Y" $file) ...


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PHP copy function is used to copy Files not Directories. Your destination is a Directory, because it ends with '/' . To solve your problem, you must also add the file name to be created: $dest = "/home/********/public_html/$userUName/SharedFiles/SomeNewFile.txt"; This is also true for the source. Good luck,


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SPL provides utilities to make this a lot easier. Namely RecursiveDirectoryIterator, RegexIterator, and SplFileInfo. Example: $dir = __DIR__ . DIRECTORY_SEPARATOR . 'download'; $regex = '/\.(?:rpm|deb|tar\.gz|tazpkg)$/i'; $iter = new RegexIterator( new RecursiveIteratorIterator( new RecursiveDirectoryIterator($dir) ), $regex, ...


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readdir doesn't return a full pathname, it just returns the name within the directory. You need to prepend the base directory to it. And there's no need to split the name, since it won't contain any directory separators. You should also check for . and .. and skip them to prevent infinite recursion. Finally, you shouldn't call closedir() in the middle of the ...


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If you're expecting output including the qualified directory name, then you can simply use ls -t /share/ex_data/ex4/header* If you don't want the directory names to be included, use a subshell that changes directory before invoking ls (as a performance enhancement, this uses exec to generate only one new process table entry rather than potentially ...


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ls on another directory: ls -t /share/ex_header*


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I think that your problem is that you did not consider that "includes/requires" are relative to the file doing the including. Let's make an example FOLDER STRUCTURE root/index.php root/folder1/file1.php root/folder1/file2.php THE PROBLEM index.php include "folder1/file1.php"; file1.php include "file2.php"; The "include "file2.php";" will be ...


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try this: require("config/db.php"); require("classes/website_language.php"); require("views/registration.php");


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Here is a modified version of Paolo's script in order to also include dot files like .htaccess, and it should also be a bit faster since I replaced glob by opendir as adviced here. <?php $password = 'set_a_password'; // password to avoid listing your files to anybody if (strcmp(md5($_GET['password']), md5($password))) die(); // Make sure the script ...


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Hi i resolve my problem with a slice to the array dirint, thanks for the help here my solution: <?php $img_dir = "THEPATHTOYOURDIRECTORY"; $images = scandir($img_dir); $imageslast = array_slice($images,-4,6); rsort($imageslast); with imagelast i make a slice to the array counting the "." and ".." i sorted in reverse to take the last image.


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I had to build a java program to do the job. It is important the Threa.sleep(100) that you will see in the next lines because that lets the Windows OS have time to delete the very deeeeeeep directory. This worked for me. I had more than 700 child dirs with the same name and in some cases with files inside. Check it out: import java.util.Stack; public ...


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You can't rewrite a url to a different domain. You'd either have to do a redirect, or you can use an iframe to contain subdomain.domain.com inside of the page you have at www.mydomain.com/mydirectory. If you want to rewrite subdomain.domain.com to something like domain.com/subdomain, this would be possible since it is the same domain name, here's the rule ...


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An awk solution. awk ' # Clear the "a" array for each new file. FNR==1 {split("", a)} { # Remove all punctuation. gsub(/[[:punct:]]*/, "") # Walk over each field. for (i=1;i<=NF;i++) { # Lowercase each word. word=tolower($i) # If we have not yet seen this word in this file then add it to our count. if ...


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if these are our files $ cat file1 hello world $ cat file2 the quick brown fox etc $ cat file3 HELLO BROWN FOX Then grep -o '[[:alpha:]]\+' * | sed 's/:.*/\L&/' | sort -u | cut -d: -f2 | sort | uniq -c 2 brown 1 etc 2 fox 2 hello 1 quick 1 the 1 world grep - extracts sequences of alphabetic characters ...


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Perform the following steps on each file: Remove punctuation: `tr -d '[:punct:]' Convert to lowercase and put one word per line: tr 'A-Z ' 'a-z\n' Remove duplicate words: sort -u Then concatenate all these results, and count the occurrences of each word: sort | uniq -c So the full script will look like: for file in *; do tr -d '[:punct:]' < ...


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Nginx has sub module for replace part of answer. http://nginx.org/en/docs/http/ngx_http_sub_module.html It's work well with all answers including autoindex. Just check if your nginx has this module (type nginx -V), may be you need nginx-full package. location / { autoindex on; sub_filter_once on; sub_filter <head><title> ...


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import java.io.File; import java.io.FileInputStream; import java.io.FileOutputStream; import java.io.IOException; import java.io.InputStream; import java.io.OutputStream; public class CopyFiles { private File targetFolder; private int noOfFiles; public void copyDirectory(File sourceLocation, String destLocation) throws IOException { ...


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http://msdn.microsoft.com/en-us/library/kda16keh.aspx Information about the found object is in the second argument, struct _finddata_t. _finddata_t_ info; intptr_t handle = _findfirst64("myfile", &info); if (handle > 0) { if (info->attrib & _A_SUBDIR) { // it's a directory


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It seems that the OS authentication was not important in the context of this problem. The issue was that utl_file won't allow file access if the oracle user does not have access. The group associated with the file contains the oracle user. Therefore, I can only read the file with utl_file when the group read bit is enabled.


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File fileOrDirectory = new File(Your File Path); if (fileOrDirectory.isDirectory()) for (File child : fileOrDirectory.listFiles()) { child.delete(); } fileOrDirectory.delete();


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You check if the setup mentioned in "git completion with zsh: filenames with spaces aren't being escaped properly" works: The shell backslash escapes the filenames as expected when I use tab completion to insert the file name. % echo "testing" >> test<tab> autocompletes to this after hitting tab three times. % echo "testing" >> ...


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String sourcePath = Environment.getExternalStorageDirectory().getAbsolutePath() + "/yourFolder1/yourFile.png"; File source = new File(sourcePath); String destinationPath = Environment.getExternalStorageDirectory().getAbsolutePath() + "/yourFolder2/yourFile.png"; File destination = new File(destinationPath); ...


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Search only current directory: Dir.glob(File.join("target_directory", "*#{File::Separator}")) Recursive search current directory: Dir.glob(File.join("target_directory", "**", "*#{File::Separator}")) Basically this looks for files which end in a directory separator.


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Couldn't reproduce your directory problem, but what I would do: In Project Toolbar (Alt+1) place cursor on your module and press Alt+Insert -> Directory -> create a folder for your libraries (doesn't matter how you name it in general) Press Ctrl+Shift+Alt+S for Project Structure -> choose your module -> "Dependencies" tab -> Alt+Insert -> File Dependency ...


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OS users and Oracle users are two different things. OS authentication will not imply that your oracle instance will run under the identity of the given user. Foe example, on my Linux system, Oracle XE is running as OS user oracle. This is the only identity that matters for granting or rejecting file access as OS level. You could check that with a simple ps ...


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...but what is "seen here" is broken. Here's the fix. > pwd /home/me > x='Om Namah Sivaya' > mkdir "$x" && cd "$x" /home/me/Om Namah Sivaya > parentdir="$(dirname "$(pwd)")" > echo $parentdir /home/me



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