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1

OverwriteSilently can overwrite a file. It won't throw an Exception if the file is already present even if the the file is readonly. What it cannot do is: overwrite if the unzipping is done under the credentials that does not allow it. overwrite when the file is in use. The latter could very well be the case for the file "nomedoarquivo.exe". This ...


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You definitely did the compression and decompression correctly, I believe the md5 checksum changed due to restructuring of the test.ear after recompression. You have the exact same bytes inside your test.ear but they are now in a slightly different order.


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Got it working, just added a toString() after relativize() as suggested here: Java access files in jar causes java.nio.file.FileSystemNotFoundException Now the working code looks like this: public static void unzip(Path filePath, Path destination) throws IOException { Map<String, String> zipProperties = new HashMap<>(); /* We want to read an ...


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I figured it out and feel like quite the simpleton. I was getting the output from the first time I call unzip: unzip users.zip -d users and not from the loop: for file in `ls *.zip`; do unzip -j $file -d `echo $file | cut -d . -f 1` &> /dev/null done I added -qq to the first unzip: unzip -qq users.zip -d users and it works as ...


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In the script you posted there is no redirection for users.zip specifically. unzip users.zip -d users


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The /dev/null behavior is really odd. It’s probably better to just use unzip’s -q (quiet) option.


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As mentioned, zlib only handles compression, it doesn't archive. When you want to zip or unzip what you are doing is extracting files from an archive which happens to be in a zip format (there are other formats like rar, 7zip and so on) If you want to create zips or unzip files you have to handle the zip format and minizip is a nice library, robust and has ...


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The XZ format is not supported by the default Ant distribution, you'll need the Apache Compress Antlib. Download the full Antlib with all the dependencies from here (add the three jars ant-compress,common-compress,xz in the lib directory of your ant), and use this task: <target name="unxz"> <cmp:unxz src="foo.tar.xz" ...


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As you say, it is because unz returns a connection object for the file within the zip (but does not explicitly unzip that file), while readWorksheetFromFile expects a path to a file. Use unzip to explicitly unzip the file. tmp2 <- unzip(zipfile=tmp, files = waed.old.file, exdir=tempdir()) # readWorksheetFromFile(tmp2, ...)


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Use 7z or 7zip. Compress your files on Linux and decompress on Windows both by 7-zip.


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Seems like a problem with write/read rights. Change the rights for testing purposes on to 0777


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I would go with 3rd variant. Try using absolute path to zip file and dump $res in the error message. It will say exactly whats wrong, just compare it with specific error codes http://php.net/manual/en/ziparchive.open.php.


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If you can build on .NET Framework 4.5 or later, use the classes from System.IO.Compression (remember to add a reference to System.IO.Compression and System.IO.Compression.FileSystem at your project level): using System.IO.Compression; using System.IO; public static string GetTextfileFromZip(string zipFilepath, string txtFilename) { using (ZipArchive ...


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The code isn't the problem, when I run the exact code it takes 750ms to extract a 7.5MB ZIP file. I used this to time it: app.post('/', function(req, res) { console.time('unzip'); var ext = unzip.Extract({ path: ... }).on('close', function() { console.timeEnd('unzip'); res.sendStatus(200); }).on('error', function(err) { ...


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It took me a while to figure out the code and syntax. Basically, the syntax is: Open the zip file. While you read in the next file stream (nextStream). Find the name of the file stream you're reading. Create a new file to write to (using open or File::IO->new) While there is data in the file stream (read) Write to the new file's buffer. Close the ...


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You can try below use strict ; use warnings ; use IO::Uncompress::Unzip qw(unzip $UnzipError) ; for my $input ( glob "/tmp/*.zip" ) { my $output = $input; $output =~ s/.zip// ; unzip $input => $output or die "Error compressing '$input': $UnzipError\n"; }


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Especially in a Windows system where new programs are not automatically members of the system path, you should use the full path of the command. In your example, you should write : char unzip[512]="\"C:\\Program Files\\WinZip\\WZUNZIP.EXE\""; note the \\ to include a true \ in a C string, and the initial and ending " to force the system call to see the ...


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This is the code for Extract folder in your FTP, create a new Php file copy below code and run it: $path = getcwd(); $zip = new ZipArchive; $res = $zip->open('yourZippedFolder.zip'); if ($res === TRUE) { $zip->extractTo($path.'/maunil/'); $zip->close(); echo 'Successfully Extracted'; } else { echo 'failed to Extract'; }


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If the app freezes it's usually because you do too much computation on the main/UI thread (note that runOnUiThread() does exactly this). To avoid that you have to call your method in another thread or an AsyncTask. A quick and dirty fix would be using a plain thread: new Thread(new Runnable() { public void run() { unzip(zipFile, ...


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Below is the code that worked for me: import os, zipfile dir_name = 'C:\\SomeDirectory' extension = ".zip" os.chdir(dir_name) # change directory from working dir to dir with files for item in os.listdir(dir_name): # loop through items in dir if item.endswith(extension): # check for ".zip" extension file_name = os.path.abspath(item) # get full ...


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Instead of zfile = zipfile.ZipFile("comp" + rndstr +".zip") I used zfile = zipfile.ZipFile("comp" + rndstr +".zip","r") And it worked. I think it's something related to python 2.7.3 (Which is under 2.7.4 and have that zip bug which @kjp mencioned)


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You need to construct a ZipFile object with the filename, and then extract it: zipfile.ZipFile.extract(item) is wrong. zipfile.ZipFile(item).extractall() will extract all files from the zip file with the name contained in item. I think you should more closely read the documentation to zipfile :) but you're on the right track!


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Well in first part, you are creating a sequential file containing base 64 decoded values from prevdata. As it could (should ?) contain binary data, it would be much better to open the file as binary : open(...,"wb"). It is harmless on systems that make no difference between text and binary mode like Unix-like ones, and is necessary on Windows to avoid ...


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Before Python 2.7.4 - files might get extracted to outside the path specified. See note in the doc for ZipFile.extractall https://docs.python.org/2/library/zipfile.html#zipfile.ZipFile.extract It is possible that files are created outside of path, e.g. members that have absolute filenames starting with "/" or filenames with two dots ".." ...


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Draco, thx for you snippet. Some TARs encode directories as paths ending with '/' - see this Wiki. Examlple tar is Oracle Server JRE 7u80 for Windows. This will work for them: require 'fileutils' require 'rubygems/package' require 'zlib' TAR_LONGLINK = '././@LongLink' Gem::Package::TarReader.new( Zlib::GzipReader.open tar_gz_archive ) do |tar| ...


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To start, in iOS 7, Apple introduced the ability to natively zip / unzip files. You also have the option so send the zip files through Mail, Messages, Airdrop and "Open in". The key is: The zip file has to be supported by iOS Some are, and some are not. The first step: Find out if your file is supported. Do this by a simple check of your newly saved file. ...


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WshShell.SpecialFolders("MyDocuments") returns the path without a trailing backslash. You're then appending your filename to it. You'll need to add a backslash. strZipPath = strDesktop & "\" & strZipFile strUnzipPath = strDesktop & "\" & strUnzipped Edit to add a tip: Use the BuildPath() function (it's part of FileSystemObject) to ...


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Your ZipFile in Set FilesInZip=objShell.NameSpace(ZipFile).items is empty ('undefined'). Did you mean strZipFile? You should use Option Explicit to avoid such blunders.


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This is caused by a bug (issue 16183), which is now fixed in the latest versions of Python 2 and 3. But as a workaround for earlier versions, pass a in file-object rather than a path: with open(f, 'rb') as fileobj: z = zipfile.ZipFile(fileobj) z.extractall(outpath) z.close() os.remove(f)



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