55

Im likely doing something very simply wrong, but when I try to make a directory (using a variable of an insert just performed as the last folder name), I get the error:

Warning: mkdir() [function.mkdir]: No such file or directory in /home/blah/blah

with the code:

if (!is_dir("images/listing-images/rent/'.$insertID.")) {
        //make new directory with unique id
   mkdir("images/listing-images/rent/'.$insertID."); 
}

of course the directory doesn't exist.. I'm trying to make it now? confused!

4
  • Please explain what "images/listing-images/rent/'.$insertID." string means
    – zerkms
    Feb 21, 2013 at 21:05
  • 3
    Is the parent directory of the now-to-be-created-directory there?
    – complex857
    Feb 21, 2013 at 21:06
  • 3
    Dont be confused. I think directory in which you want to create a directory doesnt exist.
    – user823738
    Feb 21, 2013 at 21:07
  • .. so i forgot to make the /rent directory first. think I've been working too long! thanks everyone
    – rpsep2
    Feb 21, 2013 at 21:13

8 Answers 8

138

It happens because you don't have images/listing-images/rent path existing in your filesystem.

If you want to create the whole path - just pass the 3rd argument as a true:

mkdir('images/listing-images/rent/'.$insertID, 0777, true);

There is also a chance you're in a wrong directory currently. If this is the case - you need to change the current dir with chdir() or specify the full path.

2
  • same for the above one.. only 1 sec faster Dec 9, 2015 at 8:31
  • This should the correct answer since there is no syntax error in the code for which the "correct" answer has been marked as correct.
    – Arvind K.
    Jun 2, 2020 at 5:16
15

Assuming you're using PHP > 5.0.0, try mkdir("path", 0777, true); to enable creating directories recursively (see here: http://php.net/manual/en/function.mkdir.php).

1
  • The only one that explained with relation to rules of PHP 5.0 Dec 9, 2015 at 8:30
11

You have an error in your string:

mkdir("images/listing-images/rent/'.$insertID.");

should be:

mkdir("images/listing-images/rent/$insertID");
5
  • 3
    I'm sure his error caused not by that, but by lacking of the images/listing-images/rent
    – zerkms
    Feb 21, 2013 at 21:06
  • 3
    So what's your final answer? There is no syntax error in the code. The string is syntactically correct (though pointless). As you said - this should be a comment :-)
    – zerkms
    Feb 21, 2013 at 21:09
  • If you'd like I can change the word syntax if you think that would make the answer more accurate
    – John Conde
    Feb 21, 2013 at 21:11
  • your change proposed in "should be" cannot change the behaviour - the code would throw the same error
    – zerkms
    Feb 21, 2013 at 21:11
  • ill accept this as an answer, for helping me eliminate pointless code, although comments to my question solved my actual problem :)
    – rpsep2
    Feb 21, 2013 at 21:14
2
$path = 'd:\path\to\my\file';
mkdir($path, null, true);

This is copied from the php manual. The last argument "true" allows the creation of subfolders

0
  • recursive Allows the creation of nested directories specified in the path name.
  • but did not work for me!! for that here is what i came up with!!
  • and it work very perfect!!

$upPath = "../uploads/RS/2014/BOI/002"; // full path
$tags = explode('/' ,$upPath); // explode the full path
$mkDir = "";

foreach($tags as $folder) {          
    $mkDir = $mkDir . $folder ."/";   // make one directory join one other for the nest directory to make
    echo '"'.$mkDir.'"<br/>';         // this will show the directory created each time
    if(!is_dir($mkDir)) {             // check if directory exist or not
      mkdir($mkDir, 0777);            // if not exist then make the directory
    }
}
0

in my case $insertID was generated from some data as string by concatinating

$insertID=$year.$otherId;

I simple rewrote code like this and error disappeared:

$insertID=(int)($year.$otherId);
0

Probably the real error was that he forgot an extra apex.

This:

mkdir("images/listing-images/rent/'.$insertID.");

Inside:

/'.$insertID."

Correct Version:

/".$insertID

Extended Correct Version:

mkdir("images/listing-images/rent/".$insertID);
-2

You shouldn't use is_dir() to check if something exists, you want file_exists() as well. Try:

if (file_exists("images/listing-images/rent/$insertID") {
    mkdir("images/listing-images/rent/$insertID.");
}

Have taken the '. out since it looks like a syntax error, but you might have a legitimate reason to keep it in.

If the mkdir still fails, it could be that images/listing-images/rent doesn't exist, you'll have to create that separately if so.

3
  • "You shouldn't use is_dir()" --- any clarification for that?
    – zerkms
    Feb 21, 2013 at 21:12
  • 1
    Actually disregard the first part, just checked the is_dir docs and it checks for existance as well, so it'll just be that the parent dir doesn't exist. Feb 21, 2013 at 21:13
  • Should though be aware that is_dir caches results. See note in page at php.net.
    – ficuscr
    Aug 12, 2015 at 20:48

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