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0

Using ../ like that will be relative to wherever you're running the program from. Try to change into the directory of the .py file and run it again.


1

At the IPython prompt, type pwd. That will show you the current working directory. Perhaps it is not the directory you think it is. You can change the current workding directory by typing cd /path/to/dir at the IPython prompt. Alternatively, you could simply supply an absolute path to the CSV file.


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I'm running Nginx with Wordpress. I deleted the upgrade folder in wp-content and then ran the upgrade from the wordpress GUI again. I noted the linux user for the upgrade folder created was www-data. I then did a {sudo chmod -R www-data:www-data .} Ran the upgrade again from the GUI and it worked. Probably need to change the permissions on most of the ...


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The common way to do this is for scripts to know where they are located, for example using dir=$(cd "$(dirname "${BASH_SOURCE[0]}")" && pwd). That way, each script which has to refer to another script in the same repository can do so by using "${dir}/foo/bar" style paths for files in the same part of the tree and "$(dirname -- "$(dirname -- ...


1

I'd say use scandir (add the relative path to your directory is instead of "img"): <?php $dir = 'img'; $file = scandir($dir, 1); ?> <img src="img/<?= $file[0]; ?>"> More on scandir here.


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@mmmshuddup Hi I'm following this because I have the same problem. I used the same method for adding multiple languages to my website. I created a folder called "it" into the folder "img". Now I have this for my image <img src="img/<?php echo $lang['Italiano']; ?>/image.jpg" />. But, inspecting the code, I see this: <img ...


0

public static bool IsSubpathOf(string rootPath, string subpath) { if (string.IsNullOrEmpty(rootPath)) throw new ArgumentNullException("rootPath"); if (string.IsNullOrEmpty(subpath)) throw new ArgumentNulLException("subpath"); Contract.EndContractBlock(); return subath.StartsWith(rootPath, StringComparison.OrdinalIgnoreCase); ...


0

I usually use the real path of the file like this: require_once(realpath(dirname(__FILE__)) . '/../../general_controler/database_manager.php'); This example is from my DataImporter abstract class using a DatabaseManager abstract class. In this example my tree structure looks like this: (main ...


1

First, it looks like what you want do to contradicts with the code you have. You wrote: So I want to say "search through the directory project", then it will search through all the files, and only the first level of directories and their files, so if there was another directory with a file inside of docs/, it would ignore it. Does it mean that you want ...


0

Walk walks the file tree rooted at root, calling walkFn for each file or directory in the tree, including root. All errors that arise visiting files and directories are filtered by walkFn. The files are walked in lexical order, which makes the output deterministic but means that for very large directories Walk can be inefficient. Walk does not ...


1

There's not enough information provided for me to know why you're getting inconsistent results. I can only guess. I do know that you're not going to get what you want using os.getcwd(). In Windows, when using the Run dialog, it uses the %USERPROFILE% environment variable to set the Current Working Directory. If you execute the script from a different ...


1

I believe one of the problems going on here is the fact that the "children" array is getting replaced every time the children property is accessed. I think this causes some weak references inside the NSOutlineView to break when it queries the DataSource for information. If you cache the "children" and access the cache to compute "numberOfChildren" and ...


0

You can actually do this with a single query, and then loop through the results. It will be faster than running one query per entry. Something like this: $query = "SELECT Item_num FROM table"; Then we'll assume you've dumped the result an indexed array where each element is the value of Item_num for each row into $result (the specifics of creating this ...


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If you want to run through the complete directory tree in a recursive way, you have to do it on your own, e.g. like this public class FileUtils { public static List<File> listFiles(File root) { List<File> filtered = new ArrayList<>(); for (File file : root.listFiles()) { if (file.isDirectory()) { ...


1

os.listdir(folder) gives you a list of string with filenames in the folder. Look at the console: >>> import os >>> os.listdir('.') ['file1.exe', 'file2.txt', ...] Each item is a string, so when you are iterating over them, you are iterating over their names as strings indeed: >>> for m in 'file1': ... print(m) ... f i l e ...


2

Looks like you have one too many for loops. for items in file: iterates through every letter in the file name. For example, if you have a file named "main.txt", it will attempt to open a file named "m", then a file named "a"... Try getting rid of the second loop. Also, don't forget to specify the directory name when opening. Also, consider changing your ...


0

Instead of loading all files into memory at once, process them individually in a loop: from PIL import Image import os PATH = "path/to/images" for image in os.listdir(PATH): if image.endswith(".png"): img = Image.open(image, 'r') ''' some editing stuff ''' What this is going to do is loop through all files in PATH. If the file has a ...


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Possibly relevant: Open images from a folder one by one using python? It probably makes sense to load one image, do the processing, save it, then load another. But this is how you do it generally, using os.listdir.


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There is this function scandir(). This will get all the files in a directory in an array. So you can loop through that or select the next file when you want too. Documentation:http://php.net/manual/en/function.scandir.php


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You need to switch the workspace. File -> Switch Workspace -> other and choose the new folder. Restarting should preserve the new default workspace. If not, you can also delete old workspace locations in Eclipse setting: Window -> Preferences => General -> Startup and Shutdown -> Workspaces contains a list of all known workspaces. You can delete it there.


-1

Easy solution: #!/usr/bin/perl use strict; use warnings; use File::Copy 'move'; my @files = <*.txt>; my $count; mkdir "Dir1"; mkdir "Dir2"; my @dir = <Dir*>; for my $files (@files) { ++$count; if ($count >= 1 && $count <= 9) { my $move_files = sprintf '%s/%04d_test.text', $dir[0], $count; move ($files, ...


2

Your question is very odd. Dir2 doesn't appear to have any bearing on the problem, and I don't see how you expect mkdir -p "Dir1" to do anything useful in a Perl program. However, this should solve your problem #!/usr/bin/perl use strict; use warnings; use File::Copy 'move'; use File::Path 'make_path'; my @dirs = ( 'Dir1', 'Dir2' ); make_path $_ for ...


0

Using bash cp inside R system(paste("cp -r", 'input/*', 'Output')) Using rsync inside R could be an option system("rsync -av 'input/'* Output") NOTE: this needs rsync to be installed beforehand if you are using debian or ubuntu linux, here is the command to install it sudo apt-get install rsync for more check here


1

Copying your current directory files to their new directories currentfiles is a list of files you want to copy newlocation is the directory you're copying to If you aren't listing your current files, you'll need to loop through you're working directory file.copy(from=currentfiles, to=newlocation, overwrite = recursive, recursive = FALSE, ...


0

AppEngine can now write to a local "ephemeral" disk storage when using Managed-VM which is not supported when using the sandbox method as specified on this documentation: https://cloud.google.com/appengine/docs/managed-vms/tutorial/step3


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The Hadoop File System (FS) shell includes various shell-like commands that directly interact with the Hadoop Distributed File System (HDFS) as well as other file systems that Hadoop supports, such as Local FS, HFTP FS, S3 FS(Amazon), AZURE BLOB(Micorsoft Azure Blob) and others. Refer hadoop commands guide which has more information, Im including details ...


1

First, make sure to follow the comment in the guide: Be sure to create at least one initial commit prior to doing the sub-tree merges. If that doesn't work you might try doing the following: for each repo, make a commit putting the code in a subdirectory like you eventually want then, follow the tutorial For example, in 201PracticalExcerise ...


0

If you are trying to copy config files from local filesystem to HDFS, try this: 1. Create directory in HDFS: hdfs dfs -mkdir /input 2. Copy files to HDFS: hdfs dfs -put /etc/hadoop/*.xml /input/ UPDATE 1: Export hadoop commands in /home/hadoopuser/.bashrc (exports hdfs command) export HADOOP_HOME=/path/to/hadoop/folder export ...


1

You should use realpath to resolve the path : find . -name "*.f" -exec realpath {} \;


1

first check your program user rights allow to remove this file second get full path like: remove("/home/test/foo.txt")


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Try searching from $cwd: find $cwd -name \*.f


0

File dir = new File(Environment.getExternalStorageDirectory()+"/CHO/D2"); by writing above line your dir will have all the files that are in D2 if you want to change it File dir = new File(Environment.getExternalStorageDirectory()+"/CHO"); Now your dir folder will have all the files that are in CHO If you want to change the directory play with the ...


2

did you try the following: File dir = new File(Environment.getExternalStorageDirectory()+"/CHO/D2"); if (dir.isDirectory()) { String[] children = dir.list(); for (int i = 0; i < children.length; i++) { String name = children[i]; if (name.startsWith(".") { new File(dir, children[i]).delete(); } } }


4

You can get the root directory of the external storage with just Environment.getExternalStorageDirectory(). You can check if the filename starts with . with startsWith: File dir = Environment.getExternalStorageDirectory(); if (dir.isDirectory()) { String[] children = dir.list(); for (int i = 0; i < children.length; i++) { if ...


1

You can do this - remove("drive\\folder\\foo.txt"): Remember you have to put \\ between path. \ won't work compiler will show error.


2

Use the absolute path: remove("/path/to/foo.txt");


0

All is well now; many thanks to my boss :) He sent me the link of the correct usage. For anyone who suffer from creating zip files from deploy packages: (http://www.msbuildextensionpack.com/help/3.5.14.0/index.html) <Project ToolsVersion="3.5" DefaultTargets="Default" xmlns="http://schemas.microsoft.com/developer/msbuild/2003"> <PropertyGroup> ...


0

There is no way to check if an arbitrary string is a directory or file if it does not exist. However for existing paths, you can use fs.stat() on the path, which will give you an object that has methods for checking the path type (e.g. isDirectory(), isFile(), etc).


0

Why not use fs.readdir() ? It throws an error if the given path is a file. try { fs.readdir(path); // It's a dir } catch(e) { if(e.type == "ENOTDIR") { // It's a file } else { // It's another error } }


1

I used a slightly different approach based on the fact that the text file is named the same as the image. Edited original code by encapsulating code within a function, so now you can call the function and process it's return value. function get_gallery_images(){ /* */ $imgdir=$_SERVER['DOCUMENT_ROOT'].'/img/gallery'; ...


1

Step-by-step solution: You need to get the images from the folder where you have the images: $temporaryImageArray = scandir($_SERVER['DOCUMENT_ROOT'].'/img/gallery/'); You need to get the text files from the folder where you have the text files: $temporaryTextArray = scandir($_SERVER['DOCUMENT_ROOT'].'/img/gallery/data/'); Both temporary arrays ...


0

For windows you can create batch file with following code. cd "c:\Documents and Settings\etc\etc" start . For Linux You can use the environment variable CDPATH Suppose you want to go to cd /usr/directory1/dir2/dir3/dir4/ export CDPATH=.:/usr/directory1/dir2/dir3 then typing cd dir4 would take you /usr/directory1/dir2/dir3/dir4/ assuming there's no ...


0

You can try and search for "how to create symbolic/hard/soft links in linux". Below are some examples that may help you. create symbolic link Difference between hard and soft links How to create hard links Create soft link


0

You can do symbolic link to the dir. I.e. in -s /path/to/dir/to/link link_name Then you can do cd link_name


0

I figured it out! A very clean and good way would be this one: fileField.listFiles().length Thanks to everyone for your fast replies!


0

Since you are using Java 8 you can replace: Paths.get(applicationFolder.getAbsolutePath()).getRoot().forEach(p -> { elements++; }); ...for: Stream.of(applicationFolder.listFiles()).forEach(p -> { elements++; });


0

Hi from Java doc we see this: getRoot() Returns the root component of this path as a Path object, or null if this path does not have a root component. Which means that your code will definitely not do what you are expecting. Also I think that this question was already asked here so you can check this thread


0

You need much more than java to run java. You need all the rt.jar and lib which come with Java. It sounds like you are missing some part of the JRE or it can't find your JRE. I suggest you re-install the version you need and run it using the full path name like c:\>"c:\Program Files\Java\jdk1.7.0_60\bin\java" -version java version "1.7.0_60" Java(TM) ...


-1

My answer is WAY simpler. Use a Command prompt (DOS). In this example, I have a directory full of files YYYYMMDD.TXT When my customer pulls the file, they rename it to YYYYMMDD.TXT.GOT I don't like the .GOT at the end. To ren, use a DOS commmand "ren *.GOT *." This essentially removes the ".got" from the end of the file, so the result is that all the ...


0

Create lists outside the loop. For each iteration the list is getting over written. And one more suggestion; When you ask question; please skip irrelevant code of what are you doing with the lines in the file do a minimal dummy code. It makes it much more easier to follow and answer. In your code still you are not "Reading" in 2 files simultaneously. You ...



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