PHP - Php Print Help
Hello.
i am totally new to php and just started to learn now. i just dont understand why the following code is not printing the username that i enter on the page.
Please note that the code itself is saved with the name "basicForm.php".
Thanks.
<html>
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"\n"; echo '</div>'; echo '</div>'; print("<form name='form1' method='post' action='create-b.php' enctype='application/x-www-form-urlencoded' style='margin:0px'> <input type='hidden' name='time' value='werwRG/443gooa22a04c0c2d46c802cc7e3b262398852$glg/WE?F'> <input name='name' value='Anonymous' type='text' MAXLENGTH='15' style='position:absolute;width:650px;left:67px;top:142px;z-index:11'> <input name='subject' value='(No subject)' MAXLENGTH='15' type='text' style='position:absolute;width:650px;left:67px;top:166px;z-index:11'> <textarea name='body' MAXLENGTH='255' type='text' style='position:absolute;left:67px;top:191px;width:650px;height:98px;z-index:11'></textarea> <input name='submit' type='submit' value='Create thread' style='position:absolute;left:614px;top:291px;z-index:11'> <div id='captcha' style='position:absolute; overflow:hidden; left:10px; top:296px; z-index:10'> require_once('captc/recaptchalib.php'); $publickey = '*******************************************'; echo recaptcha_get_html($publickey); </form> </div>"); How can I make the highlighted text be read as PHP and not just text? It has to be in the form tags... before you reply saying you forgot the php tags, no i didn't. I can't use php tags inside php tags... Im trying to print several image url's and names from an sql database into 3 columns, Aiming to get it to go 1,2,3 4,5,6 7,8,9 etc etc. but for some reason myne is going 1,3,5 2,4,6 etc. Dont bother mentioning that my loops do nothing, i realised that about 10 minutes ago, Any help would be appreciated. <?php include 'config.php'; mysql_connect($host, $user, $pass) or die(mysql_error()); mysql_select_db($database) or die(mysql_error()); $result = mysql_query("SELECT * FROM tracks"); echo '<div id="left_wrapper">'; for ($i=0;$i<mysql_num_rows($result);$i+=3) { $row = mysql_fetch_array($result); $id = $row['id'] + 1; echo "<img src='Thumbnails/" . $id .".gif'></img><br>"; echo $row['name']. "<br>"; } echo "</div>"; echo '<div id="middle_wrapper">'; for ($i=1;$i<mysql_num_rows($result);$i+=3) { $row = mysql_fetch_array($result); $id = $row['id'] + 1; echo "<img src='Thumbnails/" . $id .".gif'></img><br>"; echo $row['name']. "<br>"; } echo "</div>"; echo '<div id="right_wrapper">'; for ($i=2;$i<mysql_num_rows($result);$i+=3) { $row = mysql_fetch_array($result); $id = $row['id'] + 1; echo "<img src='Thumbnails/" . $id .".gif'></img><br>"; echo $row['name']. "<br>"; } echo "</div>"; ?> i know each of those loops does nothing, But you can see where they are meant to do, Each div is aligned to different positions, first loop is left, 2nd is center, 3rd is right. Hi, I am trying to get the form field to echo a php variable. The problem is that the form is 'Printed' via php. print "<td width=\"300\" valign=\"top\"><input type=\"text\" name=\"usr\" value=\"i.e. JBloggs \" onfocus=\"if(!this._haschanged){this.value=''};this._haschanged=true;\" tabindex=\"1\"></td>"; Instead of the value being i.e. JBloggs have it echo the $name variable. Any input would be appreciated. Probably a simple solution, just one I'm not sure how to do it. I need the array to print out like this Code: [Select] array( 'name'=>'Store 1', 'address'=>'LA1' ), Right now, I got it to look like this Thanks in advance Code: [Select] Array ( [name] => 'Albertville Farmers Market', [address] => '116 Main Street Albertville, Alabama 35950' ) , Array ( [name] => 'Alexander City Downtown Market', [address] => 'Braod Street Alexander City, Alabama 35010' ) , How can I go about accomplishing this? Here is my code Code: [Select] $stores = array('name'=>"'$MktName',",'address'=>"'$address'"); echo "<pre>"; print_r($stores); echo "</pre>"; I'm working on a site where I've implemented a simple back end wysiwyg editor for content on a page. Then on the public page I run a php query to pull that content and display it. But doing this cancels out the css I have been using to split content into two columns. Is there a way to do this in php, or is there a way to circumvent the problem? ( also tried echoing the entire css style along with the query result - that didn't work either) The <p id='container_sub'> is what is split into two columns. I tried it outside of the query, and inside the query around where I echo results. Neither worked. Here's the basic php code, and further down the css that makes two columns: Code: [Select] <?php $pageid = '2'; // Formulate Query // This is the best way to perform an SQL query // For more examples, see mysql_real_escape_string() $query = sprintf("SELECT content FROM tbl_pages WHERE page_id='%s'", mysql_real_escape_string($pageid)); // Perform Query $result = mysql_query($query); // Check result // This shows the actual query sent to MySQL, and the error. Useful for debugging. if (!$result) { $message = 'Invalid query: ' . mysql_error() . "\n"; $message .= 'Whole query: ' . $query; die($message); } // Use result // Attempting to print $result won't allow access to information in the resource // One of the mysql result functions must be used // See also mysql_result(), mysql_fetch_array(), mysql_fetch_row(), etc. while ($row = mysql_fetch_assoc($result)) { echo "<p id='container_sub'>".$row['content']."</p>"; } // Free the resources associated with the result set // This is done automatically at the end of the script mysql_free_result($result); ?> The css.... Code: [Select] #container_sub {-moz-column-count: 2; -moz-column-gap: 25px; -webkit-column-count: 2; -webkit-column-gap: 20px; column-count: 2; column-gap: 20px;} #container_sub2 {-moz-column-count: 2; -moz-column-gap: 25px; -webkit-column-count: 2; -webkit-column-gap: 20px; column-count: 2; column-gap: 20px;} I currently have a search page on my site that prints the products but it prints the products more than once if its in more than one category I have tried getting distinct item in my SQL. But this doesnt work so im trying an if statement that if there is more than one specific result then to just print this once. I was wondering if anyone had any ideas of how to do this using an if statement I just dont know how to go about just printing the result just once if its greater than 1. The code is below to make it clearer. $searchterm = $_POST['searchterm']; trim ($searchterm); /*check if search term was entered*/ if (!$searchterm){ echo 'Please enter a search term.'; echo $searchterm; } /*add slashes to search term*/ if (!get_magic_quotes_gpc()) { $searchterm = addslashes($searchterm); } /*query the database*/ $query = "SELECT * from (products LEFT JOIN categories_products_link ON products.prod_id = categories_products_link.prod_id) LEFT JOIN categories ON categories_products_link.cat_id = categories.cat_id WHERE prod_title LIKE '%" . $searchterm . "%' ORDER BY cat_title, prod_title"; $result = mysql_query($query); /*number of rows found*/ $num_results = mysql_num_rows($result); echo '<p><h1>Search Results: '.$num_results.'</h1></p><br />'; /*loops through results*/ for ($i=0; $i <$num_results; $i++) { $num_found = $i + 1; $row = mysql_fetch_assoc($result); echo "$num_found. "?><a href="store-<?php echo $row['cat_id'];?>-<?php echo $row['prod_id']; ?>/<?php echo seo_makeSafeURI($row['prod_title']); ?>.html"><strong><?php echo $row['prod_title']; ?></strong></a> <br /> Should i be using print() or echo() for an xmlhttp.responsetext ? Code: [Select] <?php //================================================================ // Configure connection parameters $connect_string="DRIVER={Sybase SQL Anywhere 5.0}; SERVER=ACMSQL036A; DATABASE=BACKOFF"; $dbuser="DBA" $dbpswd="SQL" //================================================================ // Connect to DB $conn = odbc_connect($connect_string, $dbuser, $dbpswd); // Query $xrefnum = $_GET['ae_xrefnum']; $qry = "SELECT xrefnum, plunum FROM DBA.PLU_Cross_Ref where xrefnum = '$xrefnum'"; // Get Result $result = odbc_exec($conn,$qry); if (!$result) { echo odbc_errormsg($conn); } // Get Data From Result $row=odbc_fetch_array($result); // Show data print($row[plunum]); } // Free Result odbc_free_result($result); // Close Connection odbc_close($conn); //================================================================ ?> Hello guys and gals, I am pretty green to PHP! I have an empty array that that I am trying to put images into. The thing is I have a certain file name in the folder, I want to exclude that file. This is what I have tried, any advice would be appreciated! Code: [Select] $thumbImg[] = array(); foreach (glob($DImg) as $PImg) { if (!is_file("thumbnail.jpg")) { $thumbImg[] = "<img src=\"pathtoimage\">"; } } Later on the page I am printing it out with this. It is still including the thumbnail.jpg image. Thank you in advance!! Code: [Select] for ($i=0; $i<count($thumbImg); $i++) print $thumbImg[$i]; This topic has been moved to Miscellaneous. http://www.phpfreaks.com/forums/index.php?topic=346728.0 I am trying to get the code at the bottom of the script to print just once during the loop but it either doesn't print at all or repeats with the loop im am using if (!$i++) to print once and i works the first time i use it. foreach($uploadFilename as $key => $myvar) { if (!$i++) print "<!DOCTYPE html PUBLIC \"-//W3C//DTD XHTML 1.0 Transitional//EN\" \"http://www.w3.org/TR/xhtml1/DTD/xhtml1-transitional.dtd\"> <html xmlns=\"http://www.w3.org/1999/xhtml\"> <head> <meta http-equiv=\"Content-Type\" content=\"text/html; charset=utf-8\" /> <title>Upload Complete....</title> </head> <body> <body onload=\"document.forms.formname.submit);\"> <form id=\"formname\" name=\"form1\" method=\"post\" action=\"reg5.php\">\n"; echo "<input type=\"hidden\" name=\"image$key\" value=\""; echo end(explode('/',$myvar)); echo "\">\n"; if (!$i++) print "</form> </body> </html>\n"; } Hello.
How would I print the following:
http://site.com/break?return=site2.com
So that I can set a button containing site2.com.
Example: <a href="site2.com"></a>
And so forth:
http://site.com/break?return=site3.com
Would print: <a href="site3.com"></a>
I am using function to insert into database. But the primary key is automatic and I used Quote $_SESSION['Tes_ID'] = mysql_insert_id(); to retrieve this. But now that I use function method. I am not sure how to retrieve the primary key on to the next page. Code: [Select] $value = modulesql($postVar1, $postVar2, $SessionVar1, $SessionVar2); $_SESSION['Tes_ID'] = mysql_insert_id(); echo $value, $_SESSION['Tes_ID']; Code: [Select] <?php function modulesql($Tes_Name, $Tes_Description, $Use_ID, $Sub_ID){ $con = OpenConnection(); mysql_select_db("examination", $con); $module = ("INSERT INTO test (`Tes_Name`, `Tes_Description`, `Use_ID`, `Sub_ID`) VALUES ($Tes_Name, $Tes_Description, $Use_ID, $Sub_ID)") or die('Cannot Execute:'. mysql_error()); CloseConnection($con); return $module; } ?> Have I lost you with my question?? I spent some time "Googling" today but all I found was how to create PDFs on the fly. What I wonder is if it is possible to print text on an existing PDF. And if so, could I get some pointer where to obtain this knowledge? Simply put. I have a PDF form that is not yet filled out. I would like to be able to look up an address and other information in a database, and use that information to print on the existing PDF file. Any help is much appreciated. I am trying to print pdf document from php code but error shows warning printer_write() couldn't allocate the printerjob 3003. Here my code
$printer = ("Printername");
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