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i try to insert multiple row in my database, that image not save to folder and
i get this error

Blockquote ArrayArrayYou have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'Chrysanthemum.jpg'), ('Hydrangeas.jpg')', '('Chrysanthemum.jpg'), ('Hydrangeas.j' at line 1

this is my code :

$hopid = $_POST[photo_hop_id];
$title = $_POST['photo_name_id'];

if(!is_array($title)) {
    $title = array();
}

$titleds = "('" . implode("'), ('", $title) . "')";

$tmp_file = $_FILES['ne_photo_image']['tmp_name'];
$file = $_FILES['ne_photo_image']['name'];  

if(!is_array($tmp_file)) {
    $tmp_file = array();
}
if(!is_array($file)) {
    $file = array();
}

$sementara = "('" . implode("'), ('", $tmp_file) . "')";
$filed = "('" . implode("'), ('", $file) . "')";    

$tmp_file1 = $_FILES['fe_photo_image']['tmp_name'];
$file1 = $_FILES['fe_photo_image']['name']; 

if(!is_array($tmp_file1)) {
    $tmp_file = array();
}
if(!is_array($file1)) {
    $file = array();
}

$sementara1 = "('" . implode("'), ('", $tmp_file) . "')";
$filed1 = "('" . implode("'), ('", $file) . "')";   

if(!move_uploaded_file($sementara, 'image/' . $filed)) {
    echo $_FILES["ne_photo_image"]["error"];
}

if(!move_uploaded_file($sementara1, 'image/' . $filed1)) {
    echo $_FILES["fe_photo_image"]["error"];
}

$y = "INSERT INTO photo VALUES (null, '".$filed."', '".$filed1."', '".$hopid."', '".$titleds."')";
$z = mysql_query($y) or die (mysql_error());
if($z) {
    $msg = "Data sudah ditambahkan";
}
else {
    $msg = "Data tidak bisa dimasukkan";
}

echo print_r($y);

and this is my form:

<form method="post" enctype="multipart/form-data">
    <table border="0"cellpadding="0" cellspacing="0" width= "100%">
        <tr>
            <td>Hop Name :<?echo "$data[hop_name]"?>
                <input type='hidden' name='photo_hop_id' value='<?echo"$data[hop_id]"?>'>
            </td>
        </tr>
        <table border="0"cellpadding="0" cellspacing="0" width= "100%">
            <tr>
                <td cellpadding="0" cellspacing="0" width= "50%"> 
                    Near End Site Name : <?echo "$data[ne_site_name]" ?>
                    </br>
                    Near End Site Id : <?echo "$data[ne_site_code]" ?>
                </td>
                <td cellpadding="0" cellspacing="0" width= "50%"> 
                    Far End Site Name : <?echo "$data[fe_site_name]" ?>
                    </br>
                    Far End Site Id : <?echo "$data[fe_site_code]"?>
                </td>
            </tr>   
            <tr>
                <td cellpadding="0" cellspacing="0" width= "50%"> 
                    <?  $pm1= mysql_query("SELECT photo_name FROM photo_name WHERE photo_name_id = 1");
                    $dpm1 = mysql_fetch_array ($pm1);echo"$dpm1[0]" ?> 
                    <input type='hidden' name='photo_name_id[]' value='<?echo"$dpm1[0]"?>'> :  
                    <input type="file" name="ne_photo_image[]">
                </td>
                <td cellpadding="0" cellspacing="0" width= "50%"> 
                    <?echo "$dpm1[0]"?> : <input type="file" name="fe_photo_image[]">
                </td>
            </tr>   
            <tr>
                <td cellpadding="0" cellspacing="0" width= "50%"> 
                    <? $pm1= mysql_query("SELECT photo_name FROM photo_name WHERE photo_name_id = 2");
                    $dpm1 = mysql_fetch_array ($pm1);echo"$dpm1[0]" ?> 
                    <input type='hidden' name='photo_name_id[]' value='<?echo"$dpm1[0]"?>'> :  
                    <input type="file" name="ne_photo_image[]">
                </td>
                <td cellpadding="0" cellspacing="0" width= "50%"> 
                    <?echo "$dpm1[0]"?> : <input type="file" name="fe_photo_image[]">
                </td>
            </tr>   
        </table>
    </table>

    <input type="submit" value="insert" />
</form>

many thanks for help

share|improve this question
    
Have you tried echoing $y to check the query populated from the code? – Akhilesh B Chandran Aug 1 '12 at 10:13
    
yes i echoing $y and i got this: INSERT INTO photo VALUES (null, '('')', '('')', '', '('')')1 – Meiju Nainggolan Aug 1 '12 at 10:14
    
How come 99% of all problematic code on SO is completely unreadable? – Hubro Aug 1 '12 at 10:14
    
@Codemonkey what do you mean? – Meiju Nainggolan Aug 1 '12 at 10:16
    
@MeijuNainggolan: I mean that your code is messy, poorly indented and absolutely void of any helpful comments. I don't mean any offence, but you really should clean up your code making issues much easier to spot. – Hubro Aug 1 '12 at 10:17
up vote 1 down vote accepted

Your error comes clearly from this line :

$y = "INSERT INTO photo VALUES (null, '".$filed."', '".$filed1."', '".$hopid."', '".$titleds."')";

For example, your var $filed is an imploded array, which looks like ('foo'), ('bar'). Finally, your request will looks like INSERT INTO photo VALUE (null, '('foo'), ('bar')', [...]);.

You must escape simple quotes in $filed, $filed1, $hopid, $titleds, but I'm pretty sure your request is totally wrong.

Can you give us the photo table schema structure please ?

EDIT :

structure given : (photo_id,ne_photo_image,fe_photo_image,hop_id,title)

To insert multiple rows in a table, you must use this kind of syntax :

INSERT INTO photo(`photo_id`, `ne_photo_image`, `fe_photo_image`, `hop_id`, `title`)
VALUES
    (null, 'foo', 'bar', 'baz', 'qux'),
    (null, 'foo', 'bar', 'baz', 'qux'),
    (null, 'foo', 'bar', 'baz', 'qux');

Aka, you must insert your datas row by row, not column by column (what you're trying to attempt right now).

Your code should looks like this (this is definitely not a full piece of code, I'm not sure to understand all your code, then I give you some track) :

<?php 
   $hopid = $_POST['photo_hop_id'];

   $titles = $_POST['photo_name_id'];
   $ne_photo_images = $_FILES['ne_photo_image']['tmp_name'];
   $fe_photo_images = $_FILES['fe_photo_image']['tmp_name'];

   /*
   I assume $titles, $ne_photo_images and $fe_photo_images 
   have the same number of elements, in the right order.
   */

   $sql = "INSERT INTO photo(`photo_id`, `ne_photo_image`, `fe_photo_image`, `hop_id`,    `title`) VALUES";
   for($i = 0, $l = sizeof($titles) ; $i < $l ; $i++)
   {
      //adding row datas
      $sql .= " (null, 
                 '".$ne_photo_images [$i]."', 
                 '".$fe_photo_images [$i]."', 
                 '".$hopid."', 
                 '".$titles[$i]."')";
      if($i < $l - 1)
         $sql .= ",";
   }

   if(mysql_query($sql))
      //get happy
   else
      //take a coffee
?>

Again, this code is far from perfect, I'm just trying to explain you how to approach the problem.

share|improve this answer
    
do you mean the table structure ? (photo_id,ne_photo_image,fe_photo_image,hop_id,title) – Meiju Nainggolan Aug 1 '12 at 10:27

Remove apostrophes around $filed, $filed1, $titleds

$y = "INSERT INTO photo VALUES (null, ".$filed.", ".$filed1.", '".$hopid."', ".$titleds.")";

Never use mysql_* functions since its deprecated.

share|improve this answer
    
i try that and i get this : ArrayArrayColumn count doesn't match value count at row 1 – Meiju Nainggolan Aug 1 '12 at 10:22
    
Dont post only error messages, post some useful debug info. Your resulting query for example – Alexander Larikov Aug 1 '12 at 10:24
    
i got this result in my database : 18 (') (') 0 Nothing – Meiju Nainggolan Aug 1 '12 at 10:31
    
@MeijuNainggolan post your full query. It should be like INSERT INTO photo VALUES (NULL, 'image.jpg', 'image2.jpg', 2, 'title') – Alexander Larikov Aug 1 '12 at 10:33

In your code, you are assigning submitted data to respective variables. And you are checking whether these variables are arrays. If not, you are assigning that variable with array(). So you are trying to convert it to an array variable with no elements, because when you do that assignment, you are overwriting any existing values.

So at the end, you might not have any elements in the arrays for the insertion, if your submitted data are not arrays!

For testing:

$abc = 'hi';
if(!is_array($abc))
{
    $abc = array();
}
print_r($abc); // $abc will be an empty array

Also, read what samsam and Alexander had pointed out about the single quotes.

Another thing is, $_POST is an associative array. And you have to pass in the key as string. In your first line : $hopid = $_POST[photo_hop_id];, it should be like this: $hopid = $_POST['photo_hop_id'];

When you want to echo a variable's value, you could simply do it like this: echo $variblename;. In your code: <?echo "$dpm1[0]"?>, it is better to use it like this: <?echo $dpm1[0]?> (ie, without the double quotes, as there is no other string inside it).

share|improve this answer
    
thanks for the feedback man... i am really sorry for the spot :) – Meiju Nainggolan Aug 1 '12 at 10:48
    
Glad to know that it helped you. :) Wish you good luck. – Akhilesh B Chandran Aug 1 '12 at 10:51

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