joshgarrod Posted November 20, 2010 Share Posted November 20, 2010 Hi all, I have a script that is supposed to upload an image and then update a field in the table with the image's path in it. The image uploads okay but the details do not UPDATE in the table... any ideas? I have echoed after the sql statement which doesn't appear upon submitting but it shows the query printed out doing the right thing (I think) UPDATE `fleet` SET `fleetimage4` = '../fleet/last.JPG' WHERE `fleetref` = '9' LIMIT 1 <?php $ref = (!empty($_GET['ref']))?trim($_GET['ref']):""; $image = (!empty($_GET['image']))?trim($_GET['image']):""; $idir = "../fleet/"; // Path To Images Directory if (isset ($_FILES['fupload'])){ //upload the image to tmp directory $url = $_FILES['fupload']['name']; // Set $url To Equal The Filename For Later Use if ($_FILES['fupload']['type'] == "image/jpg" || $_FILES['fupload']['type'] == "image/jpeg" || $_FILES['fupload']['type'] == "image/pjpeg") { $file_ext = strrchr($_FILES['fupload']['name'], '.'); // Get The File Extention In The Format Of , For Instance, .jpg, .gif or .php $copy = copy($_FILES['fupload']['tmp_name'], "$idir" . $_FILES['fupload']['name']); // Move Image From Temporary Location To Permanent Location } } if (isset($_POST['submit'])){ //$fleetref=$_POST["fleetref"]; $fleetimage1 = mysql_real_escape_string("$idir" . $_FILES['fupload']['name']); $fleetimage2 = mysql_real_escape_string("$idir" . $_FILES['fupload']['name']); $fleetimage3 = mysql_real_escape_string("$idir" . $_FILES['fupload']['name']); $fleetimage4 = mysql_real_escape_string("$idir" . $_FILES['fupload']['name']); # setup SQL statement if ($image == "1") { $query = sprintf("UPDATE `fleet` SET `fleetimage1` = '$fleetimage1' WHERE `fleetref` = '$ref' LIMIT 1"); } else if ($image == "2"){ $query = sprintf("UPDATE `fleet` SET `fleetimage2` = '$fleetimage2' WHERE `fleetref` = '$ref' LIMIT 1"); } else if ($image == "3"){ $query = sprintf("UPDATE `fleet` SET `fleetimage3` = '$fleetimage3' WHERE `fleetref` = '$ref' LIMIT 1"); } else if ($image == "4"){ $query = sprintf("UPDATE `fleet` SET `fleetimage4` = '$fleetimage4' WHERE `fleetref` = '$ref' LIMIT 1"); } #execute SQL statement echo "before exe"; $result = mysql_db_query($db,$query,$cid) or die($query."<br>".mysql_error()); echo "after exe"; # check for error if (!$result){ echo("ERROR: " . mysql_error() . "\n$SQL\n"); }} ?> <div class="controls_left"> <FORM NAME="fa" ACTION="<?php echo "fleet_edit_image.php?ref=$ref&image=$image"; ?>" METHOD="POST" enctype="multipart/form-data"> <input type = "hidden" name="MAX_FILE_SIZE" value = "1000000"> Select image: <input type = "file" name = "fupload"> <p>Copyright note: Please only use photographs either that you have taken yourself or that you have permission to use as we will not be held responsible for any Copyright infringement.</p> <input name="submit" type="submit" value="Edit image" /> </FORM> </div> <div class="image_right"><?php if ($image == "1") { $imageprint = "$fleetimage1"; } else if ($image == "2") { $imageprint = "$fleetimage2"; } else if ($image == "3") { $imageprint = "$fleetimage3"; } else if ($image == "4") { $imageprint = "$fleetimage4"; } echo "<div class=\"image_right\"><img src=\"../$imageprint\" alt=\"Edit image\" width=\"293\" height=\"218\"></div>"; ?> Quote Link to comment Share on other sites More sharing options...
MadTechie Posted November 21, 2010 Share Posted November 21, 2010 mysql_db_query() is very out of date PHP ver 4.0.6: mysql_db_query() is deprecated' date=' do not use this function[/quote'] update $result = mysql_db_query($db,$query,$cid) or die($query."<br>".mysql_error()); to mysql_select_db($db, $cid); $result = mysql_query($query, $cid) or die($query."<br>".mysql_error()); Quote Link to comment Share on other sites More sharing options...
joshgarrod Posted November 21, 2010 Author Share Posted November 21, 2010 Hi, thanks for your reply but I get two warnings now and still the same result, the field in the table still doesn't update? Warning: mysql_select_db(): supplied argument is not a valid MySQL-Link resource in /home//login/fleet_edit_image.php on line 116 Warning: mysql_query(): supplied argument is not a valid MySQL-Link resource in /home//login/fleet_edit_image.php on line 116 Thanks Quote Link to comment Share on other sites More sharing options...
Pikachu2000 Posted November 21, 2010 Share Posted November 21, 2010 Post your current code . . . Quote Link to comment Share on other sites More sharing options...
MadTechie Posted November 21, 2010 Share Posted November 21, 2010 It would seam you haven't connected to the database, add the following code to the start (with the correct database details) $cid = mysql_connect('localhost', 'mysql_user', 'mysql_password'); if (!$link) { die('Could not connect: ' . mysql_error()); } Quote Link to comment Share on other sites More sharing options...
joshgarrod Posted November 22, 2010 Author Share Posted November 22, 2010 Hi, I was connecting further up, here is my code: <?php $con = mysql_connect("host","user","pass"); if (!$con) { die('Could not connect: ' . mysql_error()); } mysql_select_db("quest", $con); $idir = "../fleet/"; // Path To Images Directory if (isset ($_FILES['fupload'])){ //upload the image to tmp directory $url = $_FILES['fupload']['name']; // Set $url To Equal The Filename For Later Use if ($_FILES['fupload']['type'] == "image/jpg" || $_FILES['fupload']['type'] == "image/jpeg" || $_FILES['fupload']['type'] == "image/pjpeg") { $file_ext = strrchr($_FILES['fupload']['name'], '.'); // Get The File Extention In The Format Of , For Instance, .jpg, .gif or .php $copy = copy($_FILES['fupload']['tmp_name'], "$idir" . $_FILES['fupload']['name']); // Move Image From Temporary Location To Permanent Location } } if (isset($_POST['submit'])){ //$fleetref=$_POST["fleetref"]; $fleetimage1 = mysql_real_escape_string("$idir" . $_FILES['fupload']['name']); $fleetimage2 = mysql_real_escape_string("$idir" . $_FILES['fupload']['name']); $fleetimage3 = mysql_real_escape_string("$idir" . $_FILES['fupload']['name']); $fleetimage4 = mysql_real_escape_string("$idir" . $_FILES['fupload']['name']); # setup SQL statement if ($image == "1") { $query = sprintf("UPDATE `fleet` SET `fleetimage1` = '$fleetimage1' WHERE `fleetref` = '$ref' LIMIT 1"); } else if ($image == "2"){ $query = sprintf("UPDATE `fleet` SET `fleetimage2` = '$fleetimage2' WHERE `fleetref` = '$ref' LIMIT 1"); } else if ($image == "3"){ $query = sprintf("UPDATE `fleet` SET `fleetimage3` = '$fleetimage3' WHERE `fleetref` = '$ref' LIMIT 1"); } else if ($image == "4"){ $query = sprintf("UPDATE `fleet` SET `fleetimage4` = '$fleetimage4' WHERE `fleetref` = '$ref' LIMIT 1"); } #execute SQL statement echo "before exe"; mysql_select_db($db, $cid); $result = mysql_query($query, $cid) or die($query."<br>".mysql_error()); echo "after exe"; # check for error if (!$result){ echo("ERROR: " . mysql_error() . "\n$SQL\n"); }} else { //header("location:fleet_edit.php?ref=$ref"); //exit(); } ?> Quote Link to comment Share on other sites More sharing options...
MadTechie Posted November 22, 2010 Share Posted November 22, 2010 $con should be $cid Quote Link to comment Share on other sites More sharing options...
joshgarrod Posted November 22, 2010 Author Share Posted November 22, 2010 awesome, thanks v much for your help - all sorted Quote Link to comment Share on other sites More sharing options...
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