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I have a small (42 hours) problem with my code trying to edit article - just the basic editNews.php

When I choose article to edit the data appears in the forms from the DB and when I hit "update" it returns no error but the data wasn´t updated

<?PHP 
connection to database blah blah 
?> 

<?php 


if(isset($_POST['update'])) 
{   
$newsid = $_POST['newsid']; 
$date=$_POST['date']; 
$time=$_POST['time']; 
$location=$_POST['location']; 

$result=mysql_query("UPDATE news SET date='$date',time='$time',location='$location', WHERE newsid=$newsid"); 

header("Location: listNews.php"); 
} 
} 
?> 


<?php 

$newsid = $_GET['newsid']; 

$result=mysql_query("select * from news where newsid=$newsid"); 

while($res=mysql_fetch_array($result)) 
{ 
$date = $res['date']; 
$time = $res['time']; 
$location = $res['location']; 


} 
?> 

This is the form - just the normal one....

<form method="post" action="editNews.php" name="form1">  

each item is like

<input type="text" name="headline" value="<?php echo $location;?>" id="UserName"> 

and

<input type="hidden" name="newsid" value=<?php echo $_GET['newsid'];?> 

<input name="update" type="submit" value="update" /> 

Most likely there is something that I don´t see but "seeing" has taken almost 2 days now ... Is there a possibility I don´t have "edit" privileges in the mySql?

share|improve this question
    
I don't think the last comma in your update query should be there. –  Doug Owings Nov 14 '11 at 0:14
1  
Please note that you have written a script that is vulnerable to SQL Injection vulnerabilities because you have not sanitized any of the user-supplied variables in your SQL queries. Please use PHP Prepared Statements to prevent these vulnerabilities. Thanks. –  sarnold Nov 14 '11 at 0:19

2 Answers 2

How do you know there was no error? Your code lacks:

 print mysql_error();

Add it right after the UPDATE query.

Also your code is most likely to fail whenever the submitted content itself contains single quotes. To send correct SQL to the database it's advisable to apply mysql_real_escape_string() on all input variables.

share|improve this answer

Try

$result= mysql_query('UPDATE news SET 
date = "'. $date .'", 
time = "'. $time. '", 
location = "' .$location. '" 
WHERE newsid = '.$newsid.';') OR die(mysql_error()); 
share|improve this answer
    
Please note that you have written a script that is vulnerable to SQL Injection vulnerabilities because you have not sanitized any of the user-supplied variables in your SQL queries. Please use PHP Prepared Statements to prevent these vulnerabilities. Thanks. –  sarnold Nov 14 '11 at 0:20
    
it throws a syntax error thou php-verifyer says the code is right... trying to debug it but your code seems to be close –  Ingþór Ingólfsson Nov 14 '11 at 0:40
    
Are the fields date and time VARCHAR's or what type do you have specified? –  nahri Nov 15 '11 at 13:28
    
And I supposed 'newsid' is an Integer. If not, change the last line to "WHERE newsid = "' .$newsid. '";') ...... –  nahri Nov 15 '11 at 13:30

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