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I need create a new txt file in a new directory. I do thi code

$path="dir1";
mkdir("$path",0777);

$path1="dir1/dir2";
mkdir("$path1",0777);

$path2="dir1/dir2/dir3";
mkdir("$path2",0777);


$percorso=$path.$path1.$path2;

$var=fopen($percorso."/nome_file.txt","a+");
fwrite($var, "stringa di prova");

It creates the 3 directory dir1/dir2/dir3 on my server but not the file. why?

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What error do you get? $percorso looks something like 'dir1dir1/dir2dir1/dir2/dir3'. –  putvande Mar 3 '14 at 9:43

3 Answers 3

up vote 2 down vote accepted
$path="dir1";
mkdir("$path",0777);

$path1="dir1/dir2";
mkdir("$path1",0777);

$path2="dir1/dir2/dir3";
mkdir("$path2",0777);


$percorso=$path2;

$var=fopen($percorso."/nome_file.txt","a+");
fwrite($var, "stringa di prova");
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thanks a lot!my stupid error:-( –  user3318546 Mar 3 '14 at 9:51
    
don't mind if accept this answer. :) –  Rohit Awasthi Mar 3 '14 at 9:52

$path2 witll be sufficient

$var=fopen($path2."/nome_file.txt","a+");
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Instead of '/' you should use DIRECTORY_SEPARATOR : php.net/manual/ro/dir.constants.php –  Alexandru Chelariu Mar 3 '14 at 9:44

Because if $path="dir1" and $path1="dir1/dir2" and $path2="dir1/dir2/dir3", the code $percorso=$path.$path1.$path2 will give you :

dir1dir1/dir2dir1/dir2/dir3

Just change
$var=fopen($percorso."/nome_file.txt","a+");
to
$var=fopen($path2."/nome_file.txt","a+");

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