PHP - Mysql Query Not Working It's The While.
Hiya peeps!
I have this code; $q3 = "SELECT `data` FROM `firm_text_strings` WHERE `id` = '100' AND `languages_id` = 'EN'"; $q4 = "SELECT `data_2` FROM `firm_text_strings` WHERE `id` = '100' AND `languages_id` = 'EN'"; $r3 = mysql_query($q3); $r4 = mysql_query($q4); if($r3 && $r4) { while($w3 = mysql_fetch_assoc($r3) && $w4 = mysql_fetch_assoc($r4)) { $resultStr = $w3['data'] . '<br />' . $w4['data_2']; } } else { $resultStr = 'error'; } everything is working up to the while function, it just wont do the loop for some reason. Anyone have any ideas. Many thanks, James. Similar TutorialsHello all, I am using the Lynda.com PHP course to further learn php. On one of the examples, they are using a SQL Query that works for them but is erroring out for me. It is the query below for the $page_set variable, particularly the use of the WHERE subject_id = {$subject["id"]}". Code: [Select] <?php require_once ('includes/conf.php'); ?> <?php include ('includes/header.php'); ?> <?php require_once ('includes/functions.php'); ?> <table id="stucture"> <tr> <td id="navigation"> <ul class="subjects"> <?php $subject_set = mysql_query("SELECT * FROM subjects", $connection); if (!$subject_set) { die ("Database query failed: " . mysql_error()); } while ($subject = mysql_fetch_array($subject_set)) { echo "<li>{$subject["menu_name"]}</li>"; } $page_set = mysql_query("SELECT * FROM pages WHERE subject_id = {$subject["id"]}"); // This appears to be the problem area, unless it is fooling me. It works with this exact statement in their code. if (!$page_set) { die ("Database query failed: " . mysql_error()); } echo "<ul class='pages'>"; while ($page = mysql_fetch_array($page_set)) { echo "<li>{$page['menu_name']}</li>"; } echo "</ul>"; ?> </ul> </td> <td id="page"><h2>Content Area</h2> </td> </tr> </table> <?php require ('includes/footer.php'); ?> The error listed is this: Database query failed: You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '' at line 1 Thanks, you all are the best! BtD Hi there, I have this query, which outputs the records properly in PhpMyAdmin. But when using this query inside my PHP code, the result is incomplete. Instead of retrieving the expected 15 results, I only get the first one twice. Also, I don't get any errors. Code: (php) [Select] <?php $get_files = "SELECT `id` FROM `files` WHERE `category` = 'W';"; include_once('connection.inc.php'); $con = mysql_connect(MYSQL_SERVER, MYSQL_USERNAME, MYSQL_PASSWORD) or die ("Connection failed: " . mysql_error()); $dbname = "myDB"; $select_db = mysql_select_db($dbname, $con) or die ("Can't open database: " . mysql_error()); $result_files = mysql_query($get_files) or die ("Query failed: " . mysql_error()); $files = mysql_fetch_array($result_files); $W_files = "'".implode("', '", $files)."'"; // echo $W_files; outputs the first number twice, instead of the expected 15 different ones $get_checklist = "SELECT * FROM `checklist` WHERE `id` IN ($W_files) ORDER BY `id` ASC;"; $result_checklist = mysql_query($get_checklist) or die ("Query failed: " . mysql_error()); // .... code for displaying ?> I am trying to run a mysql query to get the sum of a column. When I type out the column name it works. When the column name is stored in a variable it does not seem to work. Code: [Select] <?php $total = $_GET['total']; if ($order != "" && $total != ""){ $query2 = "SELECT SUM('.$type2.') FROM customers WHERE sched=1"; $result2 = mysql_query($query2) or die(mysql_error()); while($row = mysql_fetch_array($result2)){ echo "Total ". " = $". $row["SUM('.$type2.')"]; echo "<br />"; } } ?> Any Help would be appreciated. Hi guys need some help.I created a simple Update Customer Details page Where you Enter the Customer ID ,The Customer Details Get Displayed inside a Form and you make changes within the Form.But the update query I wrote is not working as it should be.It Executes the Query ,when I hardcode the Customer ID inside the Update query but fails when I need to Enter the Customer ID directly from the form using post.In This Code I tried to Update only the Customer's Firstname.Thanks Here Is The Code Code: [Select] <?php $db=mysql_connect("localhost","root","") or die('Unable to Connect To Database.Please check the Database Parameters'); mysql_select_db('ecommerce') or die(mysql_error()); if(isset($_POST['enterid'])) { $_POST['inputid']; } $query="SELECT * FROM customer WHERE Cid='$_POST[inputid]'"; $result=mysql_query($query) or die(mysql_error()); $row=mysql_fetch_array($result); $new_cid=$row['Cid']; $new_firstname=$row['Cfname']; $new_lastname=$row['Clname']; $new_email=$row['Email_id']; $new_address=$row['Address']; $new_pincode=$row['Pincode']; $new_payment=$row['Mode_of_payment']; $new_city=$row['City']; $new_state=$row['State']; $new_phone=$row['Phone']; $html1=<<<HTML1 <form action="updatecustomer.php" method="post"> <p class="inputidentifier">Please Enter The Customer's ID</p><input type="text" style="width:375px;height:40px;font-size:30px;" name="inputid" size="20"><br><br> <input type="submit" name="enterid" style="height:40px"> HTML1; print($new_cid); if(isset($_POST['update'])) { $query1="UPDATE customer SET Cfname='$_POST[firstname]' WHERE Cid='$_POST[inputid]'"; mysql_query($query1) or die(mysql_error()); if(mysql_affected_rows()==1) print("Query sucessful"); else print("Something went wrong"); } ?> <html> <head> <style type="text/css"> .inputtext {width:300px; height:40px;font-size:30px;} .inputidentifier{font-size:25px;font-family:"Arial"} .h1type{font-family:"Arial"} </style> <title>Test</title> </head> <body> <?php print($html1); ?> <h1 align="center" class="h1type">Update Customer Details</h1> <form action="updatecustomer.php" method="POST"> <table align="center" cellspacing="10" cellpadding="10" border="0" width="60%"> <tr> <td align="right" class="inputidentifier">First Name</td> <td align="left"><input type="text" class="inputtext" name="firstname" placeholder="eg:Kevin" value="<?php print($new_firstname) ?>"></td> </tr> <tr> <td align="right" class="inputidentifier">Last Name</td> <td><input type="text" class="inputtext" name="lastname" placeholder="eg:Aloysius" value="<?php print($new_lastname) ?>"></td> </tr> <tr> <td align="right" class="inputidentifier">E-mail</td> <td align="left"><input type="email" style="width:500" class="inputtext" name="email" placeholder="yourname@email.com" value="<?php print($new_email) ?>"> </tr> <tr> <td align="right" class="inputidentifier">Phone Number</td> <td align="left"><input type="text" class="inputtext" name="phone" placeholder="How Do We Call You?" value="<?php print($new_phone) ?>"></td> </tr> <tr> <td align="right" class="inputidentifier">Address</td> <td><textarea style="width:500;height:150" wrap="virtual" class="inputtext" name="address" placeholder="Where is your Crib?"><?php print($new_address) ?></textarea></td> </tr> <tr> <td align="right" class="inputidentifier">State</td> <td align="left"><input type="text" style="width:500" class="inputtext" name="state" placeholder="State" value="<?php print($new_state) ?>"> </tr> <tr> <td align="right" class="inputidentifier">City</td> <td align="left"><input type="text" class="inputtext" name="city" placeholder="City" value="<?php print($new_city) ?>"> </tr> <tr> <td align="right" class="inputidentifier">Pin Code</td> <td><input type="text" class="inputtext" name="pincode" placeholder="Mulund 400080" maxlength="6" value="<?php print($new_pincode) ?>"></td> </tr> <tr> <td align="right" class="inputidentifier">How do Pay for your Bling?</td> <td align="left"> <input type="text" class="inputtext" name="payment" value="<?php print($new_payment)?>"> </tr> <tr> <td></td> <td><input type="submit" name="update" value="Update!" style="width:100px;height:60px;"></td> </tr> </table> </form> </body> </html> Hi there, I'm having a problem with updating a record with an UPDATE mysql query and then following that query with a SELECT query to get those values just updated. This is what I'm trying to do...I'd like a member to be able to complete a recommended task and upon doing so, go to a page in their back office where they can check off that task as "Completed". This completed task would be recorded in their member record in our database so that when they return to this list, it will remain as "Completed". I'm providing the member with a submit button that will call the same page and then update depending on which task is clicked as complete. Here is my code: Code: [Select] $memberid = $_SESSION['member']; // Check if form has been submitted if(isset($_POST['task_done']) && $_POST['task_submit'] == 'submitted') { $taskvalue = $_POST['task_value']; $query = "UPDATE membertable SET $taskvalue = 'done' WHERE id = $memberid"; $result = mysqli_query($dbc, $query); } $query ="SELECT task1, task2, task3 FROM membertable WHERE id = $memberid"; $result = mysqli_query($dbc, $query); $row = mysqli_fetch_array($result, MYSQLI_ASSOC); $_SESSION['task1'] = $row['task1']; $_SESSION['task2'] = $row['task2']; $_SESSION['task3'] = $row['task3']; ?> <h4>Task List</h4> <table> <form action="" method="post"> <tr> <td>Task 1</td> <td><?php if($_SESSION['task1'] == 'done') {echo '<div>Completed</div>';} else{ echo '<input type="submit" name="task_done" value="Mark As Completed" />';} ?></td> </tr> <input type="hidden" name="task_value" value="task1" /> <input type="hidden" name="task_submit" value="submitted" /> </form> <form action="" method="post"> <tr> <td>Task 1</td> <td><?php if($_SESSION['task1'] == 'done') {echo '<div>Completed</div>';} else{ echo '<input type="submit" name="task_done" value="Mark As Completed" />';} ?></td> </tr> <input type="hidden" name="task_value" value="task2" /> <input type="hidden" name="task_submit" value="submitted" /> </form> <form action="" method="post"> <tr> <td>Task 1</td> <td><?php if($_SESSION['task1'] == 'done') {echo '<div>Completed</div>';} else{ echo '<input type="submit" name="task_done" value="Mark As Completed" />';} ?></td> </tr> <input type="hidden" name="task_value" value="task3" /> <input type="hidden" name="task_submit" value="submitted" /> </form> </table> The problem that I am having is that the database is not updated with the value "done" but after submission, the screen displays "Completed" instead of "Mark As Completed". So the value is being picked up as "done", but that is why I have the SELECT after the UPDATES, so that there is always a current value for whether a task is done or not. Then I refresh and the screen returns the button to Mark As Complete. Also, when I try marking all three tasks as, sometimes all three are updated, sometimes only one or two and again, I leave the page or refresh and the "Marked As Completed" buttons come back. Bizarre. If anyone can tell me where my logic is going wrong, I would appreciate it. Hi guys, I'm trying to query two tables for different data and echo the results that match both tables. Here are the tables I have and the query I'm trying to run. (Table) qc_reports (Fields) id report_date report_lot_number report_po report_supplier report_buyer report_inspectedby report_pulptemprange report_carrierconditions report_supplierclaim report_carrierclaim report_temprecorder report_temprange_N report_temprange_M report_temprange_B report_suppliercontact report_contactedby report_time report_comments (Table) qc_lots (Fields) id report_id lot_temprange lot_commodity lot_rpcs lot_brand lot_terms lot_cases lot_orgn lot_estnum lot_avgnum This is the query that I'm trying to do. Code: [Select] <?php $sql = "SELECT * FROM qc_reports, qc_lots WHERE "; if (!empty($start_date) and !empty($end_date)) $sql .= " qc_reports.report_date BETWEEN '$start_date' and '$end_date' AND "; if (!empty($search_fronteralot)) $sql .= " qc_reports.report_lot_number = '$search_fronteralot' AND "; if (!empty($search_buyer)) $sql .= " qc_reports.report_buyer = '$search_buyer' AND "; if (!empty($search_supplier)) $sql .= " qc_reports.report_supplier = '$search_supplier' AND "; if (!empty($search_po)) $sql .= " qc_reports.report_po = '$search_po' AND "; if (!empty($search_carrierconditions) and $search_carrierconditions != 'all') $sql .= " qc_reports.report_carrierconditions = '$search_carrierconditions' AND "; if (!empty($search_commodity) and $search_commodity != 'all') $sql .= " qc_lots.lot_commodity = '$search_commodity' AND "; if (!empty($search_inspectedby)) $sql .= " qc_reports.report_inspectedby = '$search_inspectedby' AND "; $sql = substr($sql, 0, -4); $query = mysql_query($sql); $numrows = mysql_num_rows($query); ?> RESULTS - <?php echo $numrows; ?> <hr> <table width='500'><tr><td><b>Date</b></td><td><b>Lot Number</b></td><td><b>PO</b></td><td> </td></tr> <tr> <td> </td> </tr> <?php while ($row = mysql_fetch_assoc($query)) { $id = stripslashes($row['id']); $report_lot_number = stripslashes($row['report_lot_number']); $report_po = stripslashes($row['report_po']); $report_date = stripslashes($row['report_date']); echo "<tr> <td>" . $report_date . "</td></td><td>" . $report_lot_number . "</td><td>" . $report_po . "</td><td><a href='view_report.php?id=" . $id . "'>View</a></td> </tr>"; } echo '</table><br><br><br><hr><br><br>'; } ?> All the variables are passed from a HTML form with $_POST. I need the search to work like this: If there is a value in a form field then the query gets appended with that value but when it gets to the $search_commodity it needs to search the second table (qc_lots) and check for the results. Any results that match have to be matched to the results from the first table (qc_reports) and display (echo) only qc_reports that match to both tables. The only common field is the report_id on the qc_lots table and the id on the qc_reports table. I'm stuck and need some guidance. Can someone help please? Hey guys, New to the forum and a newer user of PHP / MySQL. I am having trouble with some code I've written up. I don't seem to get any errors when running it, but it's not updating my database the way that it should. hopefully a simple fix. I am thinking that it must be on the MySQL side of things. Couple of things to start. My html form is comprised completely of drop down list inputs. I'm the only user so I thought this would be the easiest approach. Because of that I've made my PHP as follows: Code: [Select] <?php $season = $_POST['season']; $month = $_POST['month']; $day = $_POST['day']; $year = $_POST['year']; $time = $_POST['time']; $event = $_POST['event']; $game = $_POST['game']; $buyin = $_POST['buyin']; $connect = mysql_connect('localhost','root','') or die('can not connect'); if ($connect) { echo "connected to database"; } $db = mysql_select_db('dpl') or die('can not find database'); if ($db) { echo "DPL Selected"; } $query = sprintf("INSERT INTO events (season , month , day , year , time , event , game , buyin) VALUES ('%s' , '%s' , '%s' , '%s' , '%s' , '%s' , '%s' , '%s')", $season , $month , $day , $year , $time , $event , $game , $buyin ); if ($query) { echo "Your event has been added"; } ?> My connection is working, my database is selected and I'm even now getting confirmation that my query is working, but when i go to check my database there are no entries in it? any thoughts? I've tried the drop down variables as both VARCHAR and TEXT inputs in MySQL, but I can't seem to get it to work. Any help is greatly appreciated. Here is my code: // Start MySQL Query for Records $query = "SELECT codes_update_no_join_1b" . "SET orig_code_1 = new_code_1, orig_code_2 = new_code_2" . "WHERE concat(orig_code_1, orig_code_2) = concat(old_code_1, old_code_2)"; $results = mysql_query($query) or die(mysql_error()); // End MySQL Query for Records This query runs perfectly fine when run direct as SQL in phpMyAdmin, but throws this error when running in my script??? Why is this??? Code: [Select] You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '= new_code_1, orig_code_2 = new_code_2WHERE concat(orig_code_1, orig_c' at line 1 If you also have any feedback on my code, please do tell me. I wish to improve my coding base. Basically when you fill out the register form, it will check for data, then execute the insert query. But for some reason, the query will NOT insert into the database. In the following code below, I left out the field ID. Doesn't work with it anyways, and I'm not sure it makes a difference. Code: Code: [Select] mysql_query("INSERT INTO servers (username, password, name, type, description, ip, votes, beta) VALUES ($username, $password, $name, $server_type, $description, $ip, 0, 1)"); Full code: Code: [Select] <?php include_once("includes/config.php"); ?> <!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Strict//EN" "http://www.w3.org/TR/xhtml1/DTD/xhtml1-strict.dtd"> <html xmlns="http://www.w3.org/1999/xhtml"> <head> <title><? $title; ?></title> <meta http-equiv="Content-Language" content="English" /> <meta http-equiv="Content-Type" content="text/html; charset=UTF-8" /> <link rel="stylesheet" type="text/css" href="style.css" media="screen" /> </head> <body> <div id="wrap"> <div id="header"> <h1><? $title; ?></h1> <h2><? $description; ?></h2> </div> <? include_once("includes/navigation.php"); ?> <div id="content"> <div id="right"> <h2>Create</h2> <div id="artlicles"> <?php if(!$_SESSION['user']) { $username = mysql_real_escape_string($_POST['username']); $password = mysql_real_escape_string($_POST['password']); $name = mysql_real_escape_string($_POST['name']); $server_type = mysql_real_escape_string($_POST['type']); $description = mysql_real_escape_string($_POST['description']); if(!$username || !$password || !$server_type || !$description || !$name) { echo "Note: Descriptions allow HTML. Any abuse of this will result in an IP and account ban. No warnings!<br/>All forms are required to be filled out.<br><form action='create.php' method='POST'><table><tr><td>Username</td><td><input type='text' name='username'></td></tr><tr><td>Password</td><td><input type='password' name='password'></td></tr>"; echo "<tr><td>Sever Name</td><td><input type='text' name='name' maxlength='35'></td></tr><tr><td>Type of Server</td><td><select name='type'> <option value='Any'>Any</option> <option value='PvP'>PvP</option> <option value='Creative'>Creative</option> <option value='Survival'>Survival</option> <option value='Roleplay'>RolePlay</option> </select></td></tr> <tr><td>Description</td><td><textarea maxlength='1500' rows='18' cols='40' name='description'></textarea></td></tr>"; echo "<tr><td>Submit</td><td><input type='submit'></td></tr></table></form>"; } elseif(strlen($password) < 8) { echo "Password needs to be higher than 8 characters!"; } elseif(strlen($username) > 13) { echo "Username can't be greater than 13 characters!"; } else { $check1 = mysql_query("SELECT username,name FROM servers WHERE username = '$username' OR name = '$name' LIMIT 1"); if(mysql_num_rows($check1) < 0) { echo "Sorry, there is already an account with this username and/or server name!"; } else { $ip = $_SERVER['REMOTE_ADDR']; mysql_query("INSERT INTO servers (username, password, name, type, description, ip, votes, beta) VALUES ($username, $password, $name, $server_type, $description, $ip, 0, 1)"); echo "Server has been succesfully created!"; } } } else { echo "You are currently logged in!"; } ?> </div> </div> <div style="clear: both;"> </div> </div> <div id="footer"> <a href="http://www.templatesold.com/" target="_blank">Website Templates</a> by <a href="http://www.free-css-templates.com/" target="_blank">Free CSS Templates</a> - Site Copyright MCTop </div> </div> </body> </html> I'm restarting this under a new subject b/c I learned some things after I initially posted and the subject heading is no longer accurate. What would cause this behavior - when I populate session vars from a MYSQL query, they stick, if I populate them from an MSSQL query, they drop. It doesn't matter if I get to the next page using a header redirect or a form submit. I have two session vars I'm loading from a MYSQL query and they remain, the two loaded from MSSQL disappear. I have confirmed that all four session vars are loading ok initially and I can echo them out to the page, but when the application moves to next page via redirect or form submit, the two vars loaded from MSSQL are empty. Any ideas? When I echo the POST, it echoes the correct value. The MySQL portion seems to just ignore it all together. I've tried changing the dropdown option to just a text field, same thing occurred. I have text fields right above this particular one that update just fine with the SAME exactly scripting. if POST, update query, done. Works. This one for some reason will not. MySQL portion: if ($_POST['bUpdate']){ mysql_query("UPDATE `Patients` SET `b` = '$_POST[bUpdate]' WHERE `id` = '".$_GET['id']."'"); } echo $_POST['bUpdate']; Form Portion: Code: [Select] <tr onmouseover="color(this, '#baecff');" onmouseout="uncolor(this);"> <td width="310" colspan="2" align="center"><span class="fontoptions">Postcard Status </span><br /> <? if ($data['b'] == 1){ echo '<select name="bUpdate"><option value="1" selected>Yes</option><option value="0">No</option></select>'; } else { echo '<select name="bUpdate"><option value="1">Yes</option><option value="0" selected>No</option></select>'; } ?> </td> </tr> Can someone review this piece of code and advise what's missing that's preventing the SQL query from working? Issue: no results being echoed out from $results. Note: I confirmed the db connection established (only the query not working - no results pulled from db and displayed via echo statements). $db = mysql_connect($host,$user,$pw) or die("Cannot connect to MySQL."); mysql_select_db($database,$db) or die("Cannot connect to database."); echo "Success! Connected to database ".$database."<br /><br />"; // $jsearch is variable sent in from form "title" name $jsearch = $_POST['jobsearch']; // I confirmed that all the field names are correct //-query the database table $sql="SELECT id,title,details,status FROM jobs WHERE title = '$jsearch';"; //-run the query against the mysql query function $result=mysql_query($sql) or die("<br>Query string: $result<br>Returned error: " . mysql_error() ); //-create while loop and loop through result set while($row=mysql_fetch_array($result)){ $title =$row['title']; echo title."<br />"; $details=$row['details']; echo $details."<br />"; $status=$row['status']; echo $status."<br />"; $ID=$row['id']; Evening everybody, hoping someone can see my error here! $sql="INSERT INTO transactions (t_ref, m_affid, m_name, order_val, order_date, order_status, u_id, u_comm) VALUES('$t_ref', '$m_affid', '$m_name', '$order_val', '$order_date', '$order_status', '$u_id', '$u_comm')"; if (!mysql_query($sql)) { mysql_error(); } else { $newq = mysql_query("SELECT * FROM userbalance WHERE u_id = '$u_id'"); echo mysql_error(); $row = mysql_fetch_assoc($newq); $cpending = $row['pending']; $npending = $cpending + $u_comm; $updatepending = "INSERT into userbalance (pending) VALUES ('$npending') WHERE u_id = '$u_id'"; if (!mysql_query($updatepending)) { mysql_error(); } } Basically the 1st query works and inserts the data correctly, however once it gets to $newq = mysql_query("SELECT * FROM userbalance WHERE u_id = '$u_id'"); this query does not insert anything, no errors. I am using a query to update the db when a user logs in. It sets every value correctly but it doesnt set the colum u_online which is INT(1). $link->query("UPDATE ".TBL_PREFIX."users SET u_last_login = '".$config['time_now']."', u_online = 1, u_ip = '".$_SERVER['REMOTE_ADDR']."', u_activity_time = '".$config['time_now']."', u_points = u_points + '$login_points' WHERE u_username = '$username'") or die(print_link_error()); when i echo the query: UPDATE asf_users SET u_last_login = '1300310822', u_online = 1, u_ip = '127.0.0.1', u_activity_time = '1300310822', u_points = u_points + '1' WHERE u_username = 'doddsey65' which works because i tried it in phpmyadmin and it changed the column. But it doesnt work in the actual script. It changes every other value that its supposed to but the u_online. Anyone have any ideas why? ok Im building a search page. The user can enter a name, county, category, address into my search field. The results page will show the details based on that. It works great so here is a snippet of the working code. $result = "-1"; if (isset($_POST['searchField'])) { $result = $_POST['searchField']; } $result = sprintf("SELECT Clubs.clubID, Clubs.name, Clubs.county, Clubs.logo, Clubs.postcode, Clubs.intro, Clubs.thumbsup, Clubs.cat, Category.*, County.*FROM Clubs INNER JOIN Category ON Clubs.cat = Category.catID INNER JOIN County ON Clubs.county = County.countyID WHERE ((Clubs.name Like %s) OR (Clubs.cat LIKE %s) OR (County.county LIKE %s) OR (Clubs.area LIKE %s) OR (Clubs.postcode LIKE %s) OR (Category.categorys LIKE %s)) " , String($result . "%", "text"), String($result . "%", "text"), String($result . "%", "text"), String($result . "%", "text"), String($result . "%", "text"), String($result . "%", "text")); This code works great no matter what I enter. the problem Im having is I only want to show results based on the logged in users county. I have a variable stored under $user['county'] which is the ID found in the County table under countyID I have tried writing the code so many different ways. Here is my latest attemped but it doesnt work. It breaks the whole query and nothing is displayed. $result = "-1"; if (isset($_POST['searchField'])) { $result = $_POST['searchField']; } $County= "-1"; if (isset($user['county'])) { $County= $user['county']; } $result = sprintf("SELECT Clubs.clubID, Clubs.name, Clubs.county, Clubs.logo, Clubs.postcode, Clubs.intro, Clubs.thumbsup, Clubs.cat, Category.*, County.* FROM Clubs INNER JOIN Category ON Clubs.cat = Category.catID INNER JOIN County ON Clubs.county = County.countyID WHERE ((Clubs.name Like %s) OR (Clubs.cat LIKE %s) OR (County.county LIKE %s) OR (Clubs.area LIKE %s) OR (Clubs.postcode LIKE %s) OR (Category.categorys LIKE %s)) AND County.countyID = %s" , String($result . "%", "text"), String($result . "%", "text"), String($result . "%", "text"), String($result . "%", "text"), String($result . "%", "text"), String($result . "%", "text") String($County. "%", "int")); Thanks Danny Im using the following query to pull all topics that have a new reply since the users last visit and where the user has posted within them. Code: [Select] $topic_query = $link->query("SELECT t.*, u.*, p.* FROM ".TBL_PREFIX."topics as t LEFT JOIN ".TBL_PREFIX."users as u ON (u.u_username = t.t_poster) LEFT JOIN ".TBL_PREFIX."posts as p ON (t.t_tid = p.p_tid) WHERE t.t_last_post_time > u.u_activity_time AND p.p_poster = '".$user->user_name."' GROUP BY t.t_tid ORDER BY t.t_sticky DESC, t.t_time_posted DESC LIMIT $start_page, $topics_to_show") or die(print_link_error()); for some reason though it still shows two topics that have a last post time which is less than that of the users activity time. The last_post_time for the topic is 1300309160 compare that with the users last activity time 1300784679 as you can see the last activity time is more than the last post time. there are no records in the database that are more than the last activity time so i shouldnt be getting any results. Anyone have any ideas? Basically I need to input data into two tables. I am running 3 different query's but only 2 of them work. The other one doesn't. None working query: mysql_query("INSERT INTO users(username, password, email, pin, key) VALUES('$username', '$password', '$email', '$key', '$pin')"); Working querys: mysql_query("DELETE FROM beta_keys WHERE keys_new='$key'"); **and** mysql_query("INSERT INTO beta_keys(keys_used) VALUES('$key')"); So any ideas why the top one doesn't work but the bottom two do? my SQL Query wont execute on on following lines: Code: [Select] $result = mysql_query("INSERT INTO 'gallery' ('image', 'memberid', 'caption') VALUES ('$newFileName', '$member_id', '$caption')") or die (mysql_error()); i get the following error: Code: [Select] You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near ''gallery' ('image', 'memberid', 'caption') VALUES ('gallery/9074849_1.jpg', '1',' at line 1 here is my full code: Code: [Select] <?php require_once('connect.php'); $rand = mt_rand(1,9999999); $rand2 = mt_rand(1,9999999); $member_id = $_SESSION['SESS_MEMBER_ID']; $caption = $_POST["caption"]; if(isset($_FILES['uploaded']['name'])) { $allowed_filetypes = array('.jpg','.gif','.bmp','.png','.jpeg'); $max_filesize = 524288; // Maximum filesize in BYTES (currently 0.5MB) $fileName = basename($_FILES['uploaded']['name']); $errors = array(); $target = "gallery/"; $fileBaseName = substr($fileName, 0, strripos($fileName, '.')); // Get the extension from the filename. $ext = substr($fileName, strpos($fileName,'.'), strlen($fileName)-1); //$newFileName = md5($fileBaseName) . $ext; $newFileName = $target . $rand . "_" . $member_id.$ext; // Check if filename already exists if(file_exists("gallery/" . $newFileName)) { $errors[] = "The file you attempted to upload already exists, please try again."; } // Check if the filetype is allowed. if(!in_array($ext,$allowed_filetypes)) { $errors[] = "The file you attempted to upload is not allowed."; } // Now check the filesize. if(!filesize($_FILES['uploaded']['tmp_name']) > $max_filesize) { $errors[] = "The file you attempted to upload is too large."; } // Check if we can upload to the specified path. if(!is_writable($target)) { $errors[] = "You cannot upload to the specified directory, please CHMOD it to 777."; } //Here we check that no validation errors have occured. if(count($errors)==0) { //Try to upload it. if(!move_uploaded_file($_FILES['uploaded']['tmp_name'], $newFileName)) { $errors[] = "Sorry, there was a problem uploading your file."; } } //Lets INSERT database information here //Here we check that no validation errors have occured. if(count($errors)==0) { $result = mysql_query("INSERT INTO 'gallery' ('image', 'memberid', 'caption') VALUES ('$newFileName', '$member_id', '$caption')") or die (mysql_error()); { $errors[] = "SQL Error."; } } //If no errors show confirmation message if(count($errors)==0) { echo "<div class='notification success png_bg'> <a href='#' class='close'><img src='img/cross_grey_small.png' title='Close this notification' alt='close' /></a> <div> The file {$newFileName} has been uploaded<br>\n </div> </div>"; //echo "The file {$fileName} has been uploaded"; echo "<br>\n"; echo "<a href='gallery.php'>Go Back</a>\n"; } else { //show error message echo "<div class='notification attention png_bg'> <a href='#' class='close'><img src='img/cross_grey_small.png' title='Close this notification' alt='close' /></a> <div> Sorry your file was not uploaded due to the following errors:<br>\n </div> </div>"; //echo "Sorry your file was not uploaded due to the following errors:<br>\n"; echo "<ul>\n"; foreach($errors as $error) { echo "<li>{$error}</li>\n"; } echo "</ul>\n"; echo "<br>\n"; echo "<a href='gallery.php'>Go Back</a>\n"; } } else { //Show the form echo "Use the following form below to add a new image to your gallery;<br />\n"; echo "<form enctype='multipart/form-data' action='' method='POST'>\n"; echo "Please choose a file: <input name='uploaded' type='file' /><br />\n"; echo "Caption: <input name='caption' type='text' /><br />\n"; echo "<input type='submit' value='Upload' />\n"; echo "</form>\n"; //Echo Tests! echo "<br /><br />Random FileName: "; echo $rand; echo "<br />"; echo "member ID: #"; echo $member_id; } ?> any help appreciated. its prob something simple. my table has the following fields: "gallery" id (primary Key, AUTO_INC) memberid (fetched from session) image (will store image name including extension) caption (from "caption" text field in form) I've got to be missing something pretty basic here.. considering the query is pretty basic. I'm trying to figure out how to pull a query as an array so I can compare it against another array (array_diff) I'm doing a mysql_fetch_array, and I'm getting an error ( mysql_fetch_array(): supplied argument is not a valid MySQL result resource): Quote $checker = "SELECT ID FROM edible_uses"; $result2 = mysql_fetch_array($checker) or die(mysql_error()); //echoing to see if I'm getting what I need. echo $row['ID']; I've done a mysql_query and I get results. The table name and all that is correct. I'm stumped. This seems like a pretty simple query? I tried mysql_fetch_assoc as well. Same result? I tried it with an extra set of parenthesis around it. nope. The following mysql query is not returning rows like I expect it to. '$update_field' is a variable, matching an actual field name in table 'users'. 'user_task[1]' is an integer value. What am I missing here? Code: [Select] $query_update_user = "UPDATE users SET ".$update_field." = 'Y' WHERE user_no = '".$user_task[1]."'"; |