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I wrote a script to upload an image to a folder with PHP which should link the filename to MySQL.

I think after the long day I've missed something which I can't see :(

upload.php

<form enctype="multipart/form-data" action="add.php" method="POST">
 Photo: <input type="file" name="images"><br> 
 <input type="submit" value="Add"> 
 </form>

add.php

 <?php 
 error_reporting(E_ALL);
 //This is the directory where images will be saved 
 $target = "images/"; 
 $target = $target . basename( $_FILES['images']); 

 //This gets all the other information from the form 
 $images=($_FILES['images']); 

 // Connects to your Database 
 mysql_connect("localhost", "root", "pass") or die(mysql_error()) ; 
 mysql_select_db("formular") or die(mysql_error()) ; 

 //Writes the information to the database 
 mysql_query("INSERT INTO `employees` VALUES ('$images')") ; 

 //Writes the pictures to the server 
 if(move_uploaded_file($_FILES['images']['tmp_name'], $target)) 
 { 

 //Tells you if its all ok 
 echo "The file ". basename( $_FILES['uploadedfile']). " has been uploaded, and your information has been added to the directory"; 
 } 
 else { 

 //Gives and error if its not 
 echo "Sorry, there was a problem uploading your file."; 
 } 
 ?> 

view.php

 <?php 
 // Connects to your Database 
 mysql_connect("localhost", "root", "pass") or die(mysql_error()) ; 
 mysql_select_db("formular") or die(mysql_error()) ; 

 //Retrieves data from MySQL 
 $data = mysql_query("SELECT * FROM employees") or die(mysql_error()); 
 //Puts it into an array 
 while($info = mysql_fetch_array( $data )) 
 { 

 //Outputs the image and other data
 Echo "<img src=images/".$info['images'] ."> <br>";
 }
 ?> 

thx at all

share|improve this question
2  
Please, don't use mysql_* functions to write new code. They are no longer maintained and the community has begun deprecation process. See the red box? Instead you should learn about prepared statements and use either PDO or MySQLi. If you can't decide which, this article will help you. If you pick PDO, here is good tutorial. –  tereško Jul 7 '12 at 19:40
    
Thanks for the information –  kara Jul 7 '12 at 19:48
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1 Answer

This line:

mysql_query("INSERT INTO `employees` VALUES ('$images')");

is probably not doing what you expect. I believe you will see the word Array inserted into the table for each row. You will need to insert each specific part of the array you want, like:

INSERT INTO `employees` VALUES('{$images['name']}');

How many columns does the employees table contain? If it has more than one, the query is likely failing with an invalid column count message. Assign the result of that query to a variable and check it for errors ($res = mysql_query(...); if (!$res) die(mysql_error());

Start there, hope that helps. Feel free to ask for further clarification or questions.

share|improve this answer
    
Thanks drew010 for your reply. It has only one column called images. –  kara Jul 7 '12 at 20:18
    
Ok in that case, browse the mysql table to see what it contains, I think you will just have a list of entries that all say Array due to trying to use an array as a string. In PHP when you try to use an array as a string it just returns the word Array instead. –  drew010 Jul 7 '12 at 20:19
    
Cant fix it.. Sh..t pastebin.com/7938yQya –  kara Jul 7 '12 at 21:03
    
Try replacing $images with $target in your INSERT INTO adressbuch query. This line: $images = sanitize($_POST['images']); does not do anything since the file is in the $_FILES array, not in $_POST. Hope that helps. –  drew010 Jul 7 '12 at 21:14
    
Also change: $target = $target . basename( $_FILES['images']['title']); to $target = $target . basename( $_FILES['images']['name']);. This line is also invalid: $pic=($_FILES['images']['title']); but $pic isn't used so that's fine. See this page for the array indexes you can use in $_FILES –  drew010 Jul 7 '12 at 21:16
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