Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Thanks in advance, here is what is going on:

if(isset($_POST['submit']))
{
$var = $_GET['var'];

foreach((array)$_POST['content'] as $area => $contents)
    {

        $result = 'UPDATE $table SET '.$area.' = "'.mysql_real_escape_string(stripslashes($contents)).'" WHERE var = "'.$_GET['var'].'";';
        mysql_query ($result);
    }


$query = 'UPDATE $table SET '.
            'title = "'.mysql_real_escape_string(stripslashes($_POST["title"])).'", '.
            'template = "'.mysql_real_escape_string($_POST["templateid"]).'", '.
            'description = "'.mysql_real_escape_string(stripslashes($_POST["description"])).'", '.
            'keywords = "'.mysql_real_escape_string(stripslashes($_POST["keywords"])).'" '.
            ' WHERE var = "'.$_GET['var'].'";';

mysql_query ($query);// or die(mysql_error());

}

I am unable to get the if statement to go beyond the for each loop. It will not update the database with the $query mysql statement. It simple updates the table for everything inside the for each loop and then exists. Do I need to do an If while or else if? And I tried looking up php conditional statements, is there such a thing as and statements? Such as: If post submit do this AND this? That is essentially what I am trying to do, If post submit, do for each loop AND do $query.

Let me know if you need more information.

share|improve this question

3 Answers 3

up vote 1 down vote accepted

Well, is $_POST['content'] defined at all? In cases like this you may want to start debugging with print_r($_POST) to see all values that you get.

What you probably intended to do is:

foreach ($_POST as $key => $val)

Edit:
And you should really escape that $_GET['var'] as well as the $area in the loop!!! Escape ALL user input, always!!!

share|improve this answer
    
I will add the escapes. content[] is the name of text areas. the for each loop runs perfectly and updates the table, however. it never gets to the second query –  K_G Feb 4 '12 at 15:52

try and add *ini_set('display_errors',1);* add the start of the script to ensure error ouput. And use *var_dump(mysql_error());* to display the mysql error of the second query.

And a small suggestion. do a switch on $area to ensure the valid fields are passed:

switch ($area) {
  case 'field1': $area='field1'; break;
  case 'field2': $area='field2'; break;
  default: echo 'No valid field'; continue; break;
}

good luck!

share|improve this answer

The table name wont be showing. Also add something to show the mysql error message to help debug:

$result = 'UPDATE '.$table.' SET '.$area.' = "'.mysql_real_escape_string(stripslashes($contents)).'" WHERE var = "'.$_GET['var'].'";';
mysql_query ($result) or die(mysql_error());
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.