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I have a very simple php script :

<?
  $received:file = $_POST['file'];
  // do something with it
?>

I'm trying to post the content of a local file (unix) using wget.

wget --post-data='operation=upload' --post-file myfile 

seems to post but don't attach to any 'field'.

How can I do that ?

share|improve this question
1  
If you read the manual, you can see it says that wget doesn't support file upload. Use something else like curl instead. Also --post-data and --post-file can't co-exist. Only one of them should be specified. –  Kemal Fadillah Sep 30 '12 at 13:57
    
possible duplicate of Post request with Wget? –  user Mar 5 '14 at 17:26

1 Answer 1

up vote 7 down vote accepted

Do you really need wget? Actually upon reading the wget man page ... wget can't do what you want it to do.

You can use curl

curl -F"operation=upload" -F"file=@myfile" http://localhost:9000/index.php

Get the file with:

<?php
$uploadfile = '/tmp/' . basename($_FILES['file']['name']);
move_uploaded_file($_FILES['file']['tmp_name'], $uploadfile);
$content = file_get_contents($uploadfile);
?>
share|improve this answer
    
right; i didn't think of curl ... i've tried; but it doesn't seem to post the file. –  Disco Sep 30 '12 at 13:59
    
where does the content of the file get posted ? in a post variable ? –  Disco Sep 30 '12 at 14:02
    
Well myfile must exist in your current directory ... if you still think it doesn't work, you could use ngrep to listen to the network request ... ex. ngrep -d lo -c 120 port 9000 –  Igor Serko Sep 30 '12 at 14:03
1  
Actually ... Tony said it right ... it gets posted into $_FILES ... see php.net/manual/en/features.file-upload.php ... so $_FILES['file'] is what you're looking for. –  Igor Serko Sep 30 '12 at 14:04
    
For multiple files, use: -F"file1=@myfile1" -F"file2=@myfile2" and so on. (file1, file2 can be anything. You will read it as: $_FILES["file1"] and $_FILES["file2"] or just do a foreach($_FILES ...) –  lepe Oct 28 '13 at 1:45

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