PHP - Resource #6
I keep getting a resource #6 at the top of my script and not sure why.
<?php if (isset($_REQUEST['option'])) { switch ($_REQUEST['option']) { case 0: ?> <h1 class="backstage">Biographies Management</h1><br /> <h2 class=backstage>Bio Types</h2><br /> <?php $query = "SELECT * FROM efed_list_styles AS styles"; $result = mysql_query ( $query ); $rows = mysql_num_rows($result); if ($rows > 0) { print'<table width="100%" class="table1"> <tr class="rowheading"> <td> </td> <td width="40" align="center">ID</td> <td>Name</td> </tr>'; $i = 0; while ( $row = mysql_fetch_array ( $result, MYSQL_ASSOC ) ) { $sClass = 'row2'; if ($i++ % 2) $sClass = 'row1'; printf ( "<tr class=\"%s\">", $sClass ); print "<td valign=\"top\" align=\"center\" width=\"30\"><a href=\"#\" onclick=\"ajaxpage('backstage_libs/biolayout.php?option=1&id=$row[id].', 'content'); return false;\">Edit</a></td>"; printf ( "<td align=\"center\" valign=\"top\" width=\"40\">%s</td>", $row ['id'] ); printf ( "<td valign=\"top\">%s</td>", $row ['name'] ); echo '</tr>'; } echo '</table><br>'; } else { echo '<span>There are no bio types.</span><br /><br />'; } returnmain(); footercode(); break; case 1: require_once('../backstageconfig.php'); require_once('../backstagefunctions.php'); $id = $_GET['id']; $query = mysql_query("SELECT * FROM `efed_list_styles` WHERE `id` = '" . $id . "'"); $row = mysql_fetch_array($query); echo $query; ?> <h1 class="backstage">Bio Layouts Management</h1><br /> <h2 class="backstage"><?php echo $row['name']; ?> Biography Layout</h2><br /> <?php } } ?> Similar TutorialsHello everyone, I am writing some code for a login script. I keep getting the error Resource ID #13. What does this mean and how can I fix it? Here is the code that I am having trouble with Code: [Select] function user_id_from_username($username) { $username = sanitize($username); $query = mysql_query("SELECT `user_id` FROM `users` WHERE `username` = '$username'"); return mysql_result($query, 0, 'user_id'); } function login($username, $password) { $user_id = user_id_from_username($username); $username = sanitize($username); $password = md5($password); $query = "SELECT COUNT(`user_id`) FROM `users` WHERE `username` = '$username' AND `password` = '$password'"; return (mysql_result(mysql_query($query), 0) == 1) ? $user_id : false; } I was expecting a return string, but got Resource id #2 instead. How do I have a string returned instead of that? heres my table user code Bob One Ted Two I dont get it Code: [Select] <html> <body> <?php $con = mysql_connect("localhost","user","PassWord"); if (!$con) { echo 'Could not connect to MySQL server. <br />Error # ', mysql_errno(), ' Error msg: ', mysql_error(); exit; } $db = mysql_select_db("userdb") or die("Unable to select database"); if (!$db) { echo 'Could not select db. <br />Error # ', mysql_errno(), ' Error msg: ', mysql_error(); exit; } $query = "SELECT code from usertbl WHERE user = 'Ted' LIMIT 0 , 30"; $result = mysql_query($query, $con); if (!$result) { echo 'Could not query server. <br />Error # ', mysql_errno(), ' Error msg: ', mysql_error(); exit; } echo $result; ?> </body> </html> When I use that query in phpmyadmin it works Any pointers much appreciated Hello everyone, I am writing some code for a login script. I keep getting the error Resource ID #13. What does this mean and how can I fix it? Here is the code that I am having trouble with Code: [Select] function user_id_from_username($username) { $username = sanitize($username); $query = mysql_query("SELECT `user_id` FROM `users` WHERE `username` = '$username'"); return mysql_result($query, 0, 'user_id'); } function login($username, $password) { $user_id = user_id_from_username($username); $username = sanitize($username); $password = md5($password); $query = "SELECT COUNT(`user_id`) FROM `users` WHERE `username` = '$username' AND `password` = '$password'"; return (mysql_result(mysql_query($query), 0) == 1) ? $user_id : false; } This works...
$result = mysql_query("SELECT * FROM login_attempts"); while($row = mysql_fetch_array($result)) { $diff = strtotime($row['login_date'])-time(); if ($diff > -300){ $count = $count + 1; } if ($count > 4) { $result = "locked"; } }This returns Resource ID 5... $result = mysql_query("SELECT * FROM login_attempts WHERE login_username='$username'"); while($row = mysql_fetch_array($result)) { $diff = strtotime($row['login_date'])-time(); if ($diff > -300){ $count = $count + 1; } if ($count > 4) { $result = "locked"; } }What's the problem? Many thanks, Hey PHPFreaks. I made a php code, thats only needed to be showed for admin accounts only. I tryed to echo the mysql_num_rows($result); and it gave me this: Resource id #51 Heres a piece of my code where the problem is: $result = mysql_query("SELECT adminlevel FROM accounts WHERE name = '".$_SESSION['auth_username']."'") or die(mysql_error()); echo $result; echo mysql_num_rows($result); if(mysql_num_rows($result) == 1) { echo '<br /><br /><a href="home.php?admin">Admin Area</a>'; } Hope you can help Hi, I have the following code which I have been able to put together with alot of the brilliant help on this forum. When I run this code it just came up with a blank screen and the CSS however I added another error print "echo "fetchdata: $fetchdata<br>Failed with error: " . mysql_error() . '<br>';" and the result now is "fetchdata: Resource id #2". However, when search for this on Google many of the responses data back from between 2002-2006. Does it just mean that there is an error with the second if query or does Resource id #2 refer to a specific error? Im really puzzled why I cant find anything more modern to this error on Google. <?php if( isset($_GET['id']) && ctype_digit($_GET['id']) ) { // validate that $_GET['id'] is set, and contains only numeric characters $id = (int) $_GET['id']; // cast value as an integer, and assign to $id $query = "SELECT * FROM productfeed WHERE id = $id"; if( !$fetchdata = mysql_query($query) ) { // numeric values shouldn't be quoted in query strings. echo "query: $query<br>Failed with error: " . mysql_error() . '<br>'; } else { while($row = mysql_fetch_array($fetchdata)) $id = $row['id']; $image = $row['awImage']; $link = $row['link']; $description = $row['description']; $fulldescription = $row['fulldescription']; $price = $row['price']; echo "<div class=\"productdisplayshell\"> <div class=\"productdisplayoutline\"> <div class=\"productborder\"><center> <a href=\"$link\" target=\"_blank\" ><img src=\"$image\" /></a> </center> </div></div> <div class=\"productdescriptionoutline\"><div class=\"productdescriptionbox\"> <a href=\"$link\" target=\"_blank\" >$description</a> </div><div class=\"productfulldescriptionbox\"> $fulldescription </div></div> <div class=\"productpriceoutline\"> <div class=\"productpricebox\"><center>&#163; $price</center></div> <div class=\"productbuybutton\"><center><a href=\"$link\" target=\"_blank\" ><img src=/images/buybutton.png /></a></center></div></div></div>"; echo "fetchdata: $fetchdata<br>Failed with error: " . mysql_error() . '<br>'; } } else { echo 'Product is not available. Please visit our <a href="http://www.ukhomefurniture.co.uk">Homepage</a>'; exit(); } ?> I'm trying to show my friend my website and it's not letting him or me view it. I am using my own IP-address. (dashed out for security, but it is correct) http://--.---.--.---/index-1.php When he and I type this into our browser, we can an error called "Resource Not Found". But, when I use localhost address, it works fine. http://localhost/index-1.php Does anyone know what is wrong? Do I need to open a specific port? USING XAMPP. Here is what is echoing the string "Resource id #1". However I do not know if it is the php or javascript that is outputting this. Can anyone tell me why this is showing and how to make it not show? PHP: Code: [Select] $directory = "Images/items/$product/"; //get all image files with a .jpg extension. $images = glob($directory . "*.jpg"); $imgone = $images[0]; $gallery = '<tr><td valign="top" align="center">'; foreach($images as $image) { $tn = explode("/", $image); $tnname = $tn[3]; $gallery .= '<a href="#" rel="'.$image.'" class="image" alt="Images/items/'.$product.'/large/'.$tnname.'"><img src="Images/items/'.$product.'/thumbs/'.$tnname.'" class="thumb" border="1" style="margin-bottom:7px;"/></a> '; } if(is_dir("Images/items/".$product)) $gallery .= "</td></tr><tr><td width='300'>".$link."<div id='image' class='bigimg' align='left'>"; if(is_dir('Images/items/'.$product)) $gallery .= '<img src="'.$imgone.'" border="0"/></div></a></td></tr>'; JS (jQuery) Code: [Select] $(function() { $(".image").click(function() { var image = $(this).attr("rel"); var large = $(this).attr("alt"); $('#image').hide(); $('#image').fadeIn('slow'); $('#image').html('<a href="' + large + '" ><img src="' + image + '"/></a>'); return false; }); }); I am currently trying create a sales system where it checks the user's username against the database to check whether they are in the list of buyers. The mysql query returns "Resource id #35", I need it to return the actual username (which I manually inserted into the database to test). PHP code that fetches from database: <?php $con = mysql_connect("x","x","x"); if (!$con) { die('Could not connect: ' . mysql_error()); } mysql_select_db("x", $con); $check_buyer = "SELECT * FROM Buyers WHERE Buyer='x'"; $buyer = mysql_query($check_buyer); ?> Product page: <?php include("/home/x/public_html/scripts/buyer.php"); if ($user->data['user_id'] == ANONYMOUS) { echo 'To use ' . $product . 'you must be logged in!'; echo '<br /><a href="http://x/forum/ucp.php?mode=register">Register</a>'; echo ' or '; echo '<a href="http://x/forum/ucp.php?mode=login">Sign In</a>'; } elseif ($user->data['username_clean'] == $buyer) { echo "<h3>Welcome to x</h3>"; } else { echo "You need to buy this product to use it!"; echo $user->data['username_clean']; //test whether username is outputted correctly - which it did echo $buyer; //Fetched from mysql - returned "Resource id #35", not the desired username } ?> Any help would be great! Thanks, otester Hi, I was in the process of making thumnails for avatars It used to work before but now the files are being saved as resource ID and not in an image format. I can not point out what the issue is and also may I add when I try to echo nothing is happening. Code: [Select] $filename = $_FILES['myfile']['tmp_name']; if ($_POST['cpic']) { // Set a maximum height and width $width = 100; $height = 100; // Get new dimensions list($width_orig, $height_orig) = getimagesize($filename); $ratio_orig = $width_orig/$height_orig; $ratio_orig; if ($width/$height > $ratio_orig) { $width = $height*$ratio_orig; } else { $height = $width/$ratio_orig; } // Resample $image_p = imagecreatetruecolor($width, $height); $image = imagecreatefromjpeg($filename); imagecopyresampled($image_p, $image, 0, 0, 0, 0, $width, $height, $width_orig, $height_orig); $location = "cid/$myid/$filename"; imagejpeg($image_p, $location, 100); $query =mysql_query ("UPDATE clp SET avatar ='$location' WHERE cid='1'"); header ("LOCATION: editprofile.php"); } If $result contains the result of mysql_query, a select count distinct query, how do I access the count? I've tried $result[0] to no avail and $result only returns the resource #. I keep getting the mysql resource id #4 on a query that I am running and I have tried everything that I have read to fix it and nothing is working. I tried using the mysql_fetch_array, mysql_fetch_accoc, and the mysql_fetch_row functions I would appreciate any help that can be given to me. Here is my code as it stands now Code: [Select] <?php include('includes/config.php'); $last = $_GET['l_name']; $first = $_GET['f_name']; $sql = 'SELECT * FROM `ttmautos` WHERE `l_name` LIKE \'$last\' AND `f_name` LIKE \'$first\''; $autographs = mysql_query($sql, $connection)or die(mysql_error()); $row = mysql_fetch_array($autographs); echo $sql; echo $autographs; $l_name = $row['l_name']; $f_name = $row['f_name']; $sent = $row['date_sent']; $return = $row['date_return']; $address = $row['address']; $isent = $row['item_sent']; $ireturn = $row['item_return']; $project = $row['project']; $team = $row['team']; $address = stripslashes($address); ?> How can I fix this error? Warning: mysql_fetch_assoc() expects parameter 1 to be resource, boolean given Code: [Select] function fetch_most_recent_fans($ctag) { $sql = "SELECT `company_fans`.`company_id`, `company_fans`.`user_id`, `company_fans`.`fan_date`, `companies`.`companytag`, `users`.`firstname`, `users`.`lastname`, `users`.`username` FROM `company_fans` LEFT JOIN `companies` ON `companies`.`companyid` = `company_fans`.`company_id` LEFT JOIN `users` ON `users`.`id` = `company_fans`.`user_id` WHERE `companies`.`companytag` = {ctag} ORDER BY `company_fans`.`fan_date` DESC LIMIT 10"; $query = mysql_query($sql); $return = array(); while (($row = mysql_fetch_assoc($query)) !== false) { $return[] = $row; } return $return; }
Hi Okay, I have a table with two columns..'annoyed' and 'ignored'. I poulated 'annoyed' with Bob and 'ignored' with Sally. I ran the following test due to problems I was having in my main script and I get the old MySQL "Warning: mysql_num_rows(): supplied argument is not a valid MySQL result resource in /home2/testing_ig.php on line 16 Here is the code: <?php $DBhost = "localhost"; $DBuser = "xxxxx"; $DBpass = "xxxxx"; $DBName = "xxxxx"; $table = "ignore"; mysql_connect($DBhost,$DBuser,$DBpass) or die(); @mysql_select_db("$DBName") or die(); $ignorequery = "SELECT * FROM $table WHERE annoyed='Bob' AND ignored='Sally'"; $checkignore = mysql_query($ignorequery); $ifignored = mysql_num_rows($checkignore); //<--- This is line 16 if ($ifignored >= 1) { echo "exists"; } else { echo "doesn't exist"; } ?> I must be really tired because I'm not seeing the problem...? I created this function to update my tour system. The query is working and is updating one row in the table, but I get a resource boolean error in the return section of the function. Any idea why? Code: [Select] function update_tour($uid, $step) { $step = (int)$step; $uid = (int)$uid; $sql = "UPDATE `users` SET `tour_step` = ${step} WHERE `id` = '${uid}'"; $q = mysql_query($sql) or die(mysql_error()); return (mysql_num_rows($q) === 1) ? mysql_result($q, 0): false; } I always use my queries like below mysql_query("SELECT id FROM someTable", $cn); but some times i see in my error_log says: mysql_fetch_array(): supplied argument is not a valid MySQL result resource. Why is this happening? I mean, there is no problem with my sites and all they are working as they should be but why php generates this error? Hi! I need help understanding how to access resource files using ResourceBundle Class and what should be ResourceBundle file format. I have an example of usage in the form of: $r = ResourceBundle::create( 'en', $fileName); but what is the correct format of Resource file? Can it be a format of property file in the form of key=value key=value? or can it be a .txt file of format?: root:table { myName:string { "Here goes my name" } } Can someone share a very simple example of ready to use Resource file with a plain text in it? Thank you! I am trying to make a thumbnail from an FLV using ffmpeg and ffmpeg-php. I got them all installed. This is my script: <?php $extension = "ffmpeg"; $extension_soname = $extension . "." . PHP_SHLIB_SUFFIX; $extension_fullname = PHP_EXTENSION_DIR . "/" . $extension_soname; // load extension if(!extension_loaded($extension)) { dl($extension_soname) or die("Can't load extension $extension_fullname\n"); } include("../connect.php"); header("Content-type: image/jpeg"); $id = $_GET['id']; $query = mysql_query("SELECT filename FROM video WHERE id = '$id'"); $result = mysql_fetch_array($query); $moviefile = "../../../../armsmedia/videos/".$result['filename']; $mov = new ffmpeg_movie($moviefile,false); $img = $mov->getFrame(1); $showImg = $img->toGDImage(); $mkNewImg = new ffmpeg_frame($showImg); $maxWid = 150; $oldWid = $mkNewImg->getWidth(); if($oldWid > $maxWid) { $newWid = $maxWid; } $newHgt = $newWid / $movRatio; $mkNewImg->resize($newWid,$newHgt); $newImg = $mkNewImg->toGDImage(); imagejpeg($newImg,$mkThumbFile,40); imagedestroy($newImg); ?> I get a 500 Internal server error so I checked my apache logs and it is saying: Unable to locate ffmpeg_frame resource in this object. in /var/www/html/inc/video/thumbnail.php on line 24 which is pointing to: Code: [Select] $oldWid = $mkNewImg->getWidth(); If I do a print_r($showImg) it returns: Resouce id #7 Any ideas? Hi I'm having a bit of bother with my login. I created a login using this tutorial http://www.phpeasystep.com/phptu/6.html and it works perfectly. So i have attempted to change it to meet my own database. So basically i've changed the database, table names etc to meet my own. I haven't changed any other lines. When i run it i get an error message: Warning: mysql_num_rows() expects parameter 1 to be resource, boolean given in C:\xampp\htdocs\checklogin.php on line 26 The code is below: Code: [Select] <?php $host="localhost"; // Host name $username="root"; // Mysql username $password=""; // Mysql password $db_name="final year project"; // Database name $tbl_name="tbl_user"; // Table name // Connect to server and select databse. mysql_connect("$host", "$username", "$password")or die("cannot connect"); mysql_select_db("$db_name")or die("cannot select DB"); // username and password sent from form $mem_username=$_POST['mem_username']; $mem_password=$_POST['mem_password']; // To protect MySQL injection (more detail about MySQL injection) $mem_username = stripslashes($mem_username); $mem_password = stripslashes($mem_password); $mem_username = mysql_real_escape_string($mem_username); $mem_password = mysql_real_escape_string($mem_password); $sql="SELECT * FROM $tbl_name WHERE username='$mem_username' and password='$mem_password'"; $result=mysql_query($sql); // Mysql_num_row is counting table row $count=mysql_num_rows($result); // If result matched $mem_username and $mem_password, table row must be 1 row if($count==1){ // Register $mem_username, $mem_password and redirect to file "login_success.php" session_register("mem_username"); session_register("mem_password"); header("location:login_success.php"); } else { echo "Wrong Username or Password"; } ?> Line 26 is $count=mysql_num_rows($result); I'm baffled as to why the test database worked. I tried another test database but got the same error. baffled.com Hope someone can help MOD EDIT: [code] . . . [/code] tags added. |