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I have a database table that contains fields including category (cat) and posting price (postprice). I need to bind an input field on my web page to the postprice value corresponding to the category selected in the dropdown box on the same page. I'm seeing syntax error but am not sure what it is. Here's the code for the dropdown box:

<select name="postcat" class="req" style="width:220px" onchange="getCats(this.value);">
<?php
if ($_POST['postsubcats'] == "none") {
echo "<option value=\"none\" selected=\"selected\">Select a category</option>";
} else {
echo "<option value=\"none\">Select a category</option>";
}

?>
<?php

$querycat = "SELECT * FROM `index` LIMIT 0, 30 ";
$resultcat = mysql_query($querycat);

while($rowcat = mysql_fetch_array($resultcat)){
echo "<option value=\"" . $rowcat['cat'] . "\">" . $rowcat['title'] .  "</option>\n";
}

?>
</select>

Here's the snippet for the input box:

<input type="text" id="adFee" name="adfee" contenteditable="false" 
value="<?php SELECT 'postprice' FROM 'index' WHERE 'cat' = $_POST(['postcat']); ?>">

Thanks much for your help.

Edit Thanks to Mash, I've modified my code as follows:

<label>Posting Fee:</label><br/>
<?php
$queryprice =  "SELECT 'postprice' FROM 'index' WHERE 'cat' = " . $_POST('postcat'); 
$resultprice = mysql_query($queryprice);  
while($row= mysql_fetch_array($resultprice)){   
echo '<input type="text" id="adFee" name="adfee" contenteditable="false" value="';   
echo $row['postprice'] . '" />';
} ?>

I now receive Fatal Error: Function name must be a string. Am I missing a ' " or ; somewhere??

Fatal Error is resolved. New Error:

mysql_fetch_array(): supplied argument is not a valid MySQL result resource 

Revised Code:

<?php

$queryprice =  "SELECT postprice FROM 'index' WHERE cat = '" . mysql_real_escape_string($_POST['postcat'])."'"; 

$resultprice = mysql_query($queryprice);  

while($row= mysql_fetch_array($resultprice)){   

?><input type="text" id="adFee" name="adfee" contenteditable="false" value="<?php echo $row['postprice'];?>">
<?php } ?>

Does this mean that my code block is not "seeing" the option field postcat?

share|improve this question
1  
SQL can't be executed just in php tags as you have in your snippet for the input box. –  Jacob Feb 16 '11 at 5:43
    
AHHHHH! SQL INJECTION! Always clean data you put in a databasequery! Please use (int)$_POST['postcat'] or "'".mysql_real_escape_string($_POST['postcat'])."'" –  Jakob Egger Feb 16 '11 at 10:50

1 Answer 1

up vote 1 down vote accepted

try this..

<label>Posting Fee:</label><br/>
<?php
$queryprice =  "SELECT postprice FROM `index` WHERE cat = '" . mysql_real_escape_string($_POST['postcat'])."'"; 
$resultprice = mysql_query($queryprice);  
while($row = mysql_fetch_array($resultprice)){   
?>
<input type="text" id="adFee" name="adfee" contenteditable="false" value="<?php echo $row['postprice'];?>" />
<?php } ?>

remember:

  1. use php tag only when it is necessary
  2. $_POST have [ not (

or if u want to go with your way then use below

echo '<input type="text" id="adFee" name="adfee" contenteditable="false" value="'.$row[postprice].'" />';
share|improve this answer
    
Please remove the obvious SQL injection problem ($_POST not cleaned) –  Jakob Egger Feb 16 '11 at 10:45
    
Also the table named index must be quoted, otherwise you get a syntax error. –  Jakob Egger Feb 16 '11 at 10:49
    
@Jakob thanks for the tip.. –  diEcho Feb 16 '11 at 10:50

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