phpbnoobb23 Posted August 14, 2014 Share Posted August 14, 2014 Hello, I seem to have some problem with my script that has a goal of outputting data about the file size when a filename is queried. The sql table name is file The table columns are as followed: id | name | mime | size The file name is stored in name. The script that i have that gets the file name is: <!DOCTYPE html> <html xmlns="http://www.w3.org/1999/xhtml"> <head> <meta http-equiv="content-type" content="text/html;charset=utf-8" /> <meta name="generator" content="Adobe GoLive" /> <title>File Select</title> <!--The following script tag downloads a font from the Adobe Edge Web Fonts server for use within the web page. We recommend that you do not modify it.--><script>var __adobewebfontsappname__="dreamweaver"</script><script src="http://use.edgefonts.net/aguafina-script:n4:default.js" type="text/javascript"></script> </head> <body> <div id="title"> <h3 align="center">File Upload</h3> </div> <form action="result.php" method="post" name="fileID" target="_self" class="inp" AUTOCOMPLETE="ON"> <h1> <!--Input file name--> <label for="fileID">File Name: </label> <input type="text" name='file1' id='sampleID' list="samp"> </input><br> <datalist id="samp"> <?php $connect = mysql_connect('localhost', 'root', ''); mysql_select_db("test_db"); $query = mysql_query("SELECT * FROM `file` ORDER BY `file`.`name` ASC LIMIT 0 , 30"); WHILE ($rows = mysql_fetch_array($query)): $File_name = $rows['name']; echo "<option value=$File_name>$File_name/option> <br>"; endwhile; ?> </datalist> <input type="submit" class="button" > </form> </body> </html> As you can see, I got the file name, but I just can't figure out how to display the file size. The file size is store in size. Just to clarify, I need to search a file name in the database and then output the file size also stored in the database under the same table name "file." Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/ Share on other sites More sharing options...
Ch0cu3r Posted August 14, 2014 Share Posted August 14, 2014 The code you posted, only lists files in a <datalist></datalist>. When and where do you want the filesize to be shown? When some selects a file from the datalist and submits the form? What code have you tried so far. Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1487772 Share on other sites More sharing options...
phpbnoobb23 Posted August 14, 2014 Author Share Posted August 14, 2014 (edited) The code you posted, only lists files in a <datalist></datalist>. When and where do you want the filesize to be shown? When some selects a file from the datalist and submits the form? What code have you tried so far. Yes, so when i press submit I would like to pull the file size information from the table. I have tried something like this: <!DOCTYPE html> <html xmlns="http://www.w3.org/1999/xhtml"> <head> <meta http-equiv="Content-Type" content="text/html; charset=UTF-8" /> <title>GeneSeq -- Result Summary</title> <link href="CSS/oneColLiqCtrHdr.css" rel="stylesheet" type="text/css" /> </head> <body> <div class="container"> </p></div> <p> <table width="95%" align="center" class="tableBorder" name="results" cellpadding="5px"> <thead align="center" > <th width="5%" class='content'>File_Size</th> </thead> <?php $File_name = htmlspecialchars($_POST['File_name']); $connect = mysql_connect('localhost', 'root', ''); mysql_select_db("test_db"); If (strlen($File_name) == 0) { $query = mysql_query("SELECT * FROM `file` ORDER BY `file`.`size` ASC LIMIT 0 , 30 "); WHILE ($rows = mysql_fetch_array($query)): $size = $rows['size']; if (strlen($File_name) == 0) echo "No file by that name."; $File_Size = preg_replace("/_[0-9]{0,5}$/", "",$size); echo "<tr width=60% class='content'>"; echo "<td class='content'>$size<br></td></tr>"; endwhile; ?> </table> </p> <!-- end .content --></div> <div class="footer"> <p>Example ©2013</p> <!-- end .footer --></div> <!-- end .container --></div> </body> </html> I'm extremely new to this, so it looks sloppy. I tried putting some stuff together, but it does not work. I get this error: Parse error: syntax error, unexpected $end in /home/u293130761/public_html/result.php on line 52 Edited August 14, 2014 by phpbnoobb23 Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1487776 Share on other sites More sharing options...
Ch0cu3r Posted August 14, 2014 Share Posted August 14, 2014 Your code has a lot of issues. So we'll start from scratch To retrieve a specific row from a table you need to use a WHERE clause in your query, eg $query = mysql_query("SELECT * FROM `file` WHERE name='filename to search' "); You'd replace filename to search with the the actual name of the file you want to retrieve the file size for. You could replace it with your $File_name variable. BUT this is very insecure, it will open your code up to SQL Injection attacks (if that wording is new to you then google it, learn about it and how to protect yourself). Instead you'd first need to sanitize $File_name so its value is safe to be used in a query. PHP does have a function called mysql_real_escape_string for doing just that (*see note below). So now your code for fetching file size for the chosen filename will now read as $File_name = mysql_real_escape_string($File_name); // sanitize $result = mysql_query("SELECT name, size FROM `file` WHERE name='$File_name' "); // use it in the query, fetch the file size for the file. Then to output the filesize you'd you'd do something like this if(mysql_num_rows($result)) { list($name, $size) = mysql_fetch_row($result); // populate variables with the file name and size echo "The file size for <i>$name</i> is <b>$size</b>"; // output info } else { echo 'Invalid filename given'; } NOTE: The mysql_* functions are deprecated, meaning they are no longer supported/maintained and could be removed from future versions of PHP. I would strongly advise you to convert your code over to PDO or MySQLi and use prepared queries when using user input within a query. Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1487782 Share on other sites More sharing options...
phpbnoobb23 Posted August 14, 2014 Author Share Posted August 14, 2014 (edited) Your code has a lot of issues. So we'll start from scratch To retrieve a specific row from a table you need to use a WHERE clause in your query, eg $query = mysql_query("SELECT * FROM `file` WHERE name='filename to search' "); You'd replace filename to search with the the actual name of the file you want to retrieve the file size for. You could replace it with your $File_name variable. BUT this is very insecure, it will open your code up to SQL Injection attacks (if that wording is new to you then google it, learn about it and how to protect yourself). Instead you'd first need to sanitize $File_name so its value is safe to be used in a query. PHP does have a function called mysql_real_escape_string for doing just that (*see note below). So now your code for fetching file size for the chosen filename will now read as $File_name = mysql_real_escape_string($File_name); // sanitize $result = mysql_query("SELECT name, size FROM `file` WHERE name='$File_name' "); // use it in the query, fetch the file size for the file. Then to output the filesize you'd you'd do something like this if(mysql_num_rows($result)) { list($name, $size) = mysql_fetch_row($result); // populate variables with the file name and size echo "The file size for <i>$name</i> is <b>$size</b>"; // output info } else { echo 'Invalid filename given'; } NOTE: The mysql_* functions are deprecated, meaning they are no longer supported/maintained and could be removed from future versions of PHP. I would strongly advise you to convert your code over to PDO or MySQLi and use prepared queries when using user input within a query. So, it would look something like this? <?php $dbLink = new mysqli('localhost', 'root', '', 'test_db'); $File_name = mysql_real_escape_string($File_name); // sanitize $result = mysql_query("SELECT name, size FROM `file` WHERE name='$File_name' "); // use it in the query, fetch the file size for the file. if(mysql_num_rows($result)) { list($name, $size) = mysql_fetch_row($result); // populate variables with the file name and size echo "The file size for <i>$name</i> is <b>$size</b>"; // output info } else { echo 'Invalid filename given'; } ?> what about the forms? how would I place them to fetch the file name and then submit to output on the results page? I'm sorry just really new to this. Edited August 14, 2014 by phpbnoobb23 Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1487784 Share on other sites More sharing options...
adam_bray Posted August 14, 2014 Share Posted August 14, 2014 (edited) All you've done is change the MySQL connect function but still used the other mysql_* functions - that's inconsistent and doesn't work. Have a read through this http://codular.com/php-mysqli to get a better understanding of what Ch0cu3r said; or even better, look at the PDO post - http://codular.com/php-pdo-how-to. Edited August 14, 2014 by adam_bray Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1487785 Share on other sites More sharing options...
phpbnoobb23 Posted August 18, 2014 Author Share Posted August 18, 2014 (edited) The mysql_* functions work fine. I've used them in the past to run little tests and it worked fine. Edited August 18, 2014 by phpbnoobb23 Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488133 Share on other sites More sharing options...
phpbnoobb23 Posted August 18, 2014 Author Share Posted August 18, 2014 All you've done is change the MySQL connect function but still used the other mysql_* functions - that's inconsistent and doesn't work. Have a read through this http://codular.com/php-mysqli to get a better understanding of what Ch0cu3r said; or even better, look at the PDO post - http://codular.com/php-pdo-how-to. The script below should suffice, correct? <!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>Result Summary</title> <link href="CSS/oneColLiqCtrHdr.css" rel="stylesheet" type="text/css" /> </head> <body> <div class="container"> <p> <?php $File_name = htmlspecialchars($_POST['File_name']); $File_name = mysql_real_escape_string($File_name); // sanitize $db = new mysqli('localhost', 'root', '', 'test_db'); If (strlen($File_name) == 0) { $$result = mysql_query("SELECT name, size FROM `file` WHERE name='$File_name' "); // use it in the query, fetch the file size for the file. WHILE ($rows = mysql_fetch_array($query)): $size = $rows['size']; if(mysql_num_rows($result)) { list($name, $size) = mysql_fetch_row($result); // populate variables with the file name and size echo "The file size for <i>$name</i> is <b>$size</b>"; // output info } else { echo 'Invalid filename given'; } ?> </p> <div class="footer"> <p>Results ©2014</p> <!-- end .footer --></div> <!-- end .container --></div> </body> </html> Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488135 Share on other sites More sharing options...
Ch0cu3r Posted August 18, 2014 Share Posted August 18, 2014 The script below should suffice, correct? No. You have clearly ignored what I and adam_bray have said. The links adam gave explains what There is a fundamental difference between the mysql_ and mysqli_ (note the i )functions. You cannot use them together like you have done. They are separate function libraries. You need to replace all your mysql_ functions to the mysqli_ counterparts. The article adam links to explains how do that. Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488138 Share on other sites More sharing options...
mac_gyver Posted August 18, 2014 Share Posted August 18, 2014 the last code you posted won't even parse, it's missing the closing syntax of two php constructs. i even see a double $$ on a variable and wrong variable names being used. programming is an exact science. every character matters. sometimes, capitalization of those characters matters. every variable name matters. every statement, what it does and what it contributes to your goal, matters. copy/pasting code together isn't how programming is accomplished and isn't how learning a programming language works either. you must actually learn what the basic language syntax is, then what each statement you are using means and does, so that you can write code that uses the language syntax and statements to accomplish the goal you are trying to achieve. next, you need to define the goal you are trying to achieve. besides a statement of what you are trying to accomplish (in this case, process form data to retrieve and display a corresponding piece of information from a database table), you need to define what inputs you have available, what exact processing you want to do based on those inputs, and what exact result or output you want to produce. i'm not going to take the time to list what's wrong with the posted code because, well, you need to start over with the php portion of your code and write it yourself to do what you want it to do. i have one hint, htmlspecialchars() is an OUTPUT function. it is used when you output data onto a web page. it is not used on input data to a script. any code you may have found posted on the internet that showed using it on data going into a database query was an incorrect application of the function. Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488149 Share on other sites More sharing options...
phpbnoobb23 Posted August 18, 2014 Author Share Posted August 18, 2014 No. You have clearly ignored what I and adam_bray have said. The links adam gave explains what There is a fundamental difference between the mysql_ and mysqli_ (note the i )functions. You cannot use them together like you have done. They are separate function libraries. You need to replace all your mysql_ functions to the mysqli_ counterparts. The article adam links to explains how do that. Please excuse my confusion with some of the reading. I tried to cut my code down based on the new mysqli. I do hope I wrote the correct functions. <?php $db = new mysqli('localhost', 'root', '', 'test_db'); if($db->connect_errno > 0){ die('Unable to connect to database [' . $db->connect_error . ']'); } $File_name->real_escape_string($File_name); $result = mysqli_query("SELECT name, size FROM `file` WHERE name='$File_name' "); if(($result->num_rows) = 1) { list($name, $size) = $result -> fetch_row (); echo "The file size for <i>$name</i> is <b>$size</b>"; // output info } else { echo 'Invalid filename given'; //error } $db->close(); ?> Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488150 Share on other sites More sharing options...
Barand Posted August 18, 2014 Share Posted August 18, 2014 Turn error reporting on while you are developing. There are at least four errors in that code. Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488154 Share on other sites More sharing options...
Ch0cu3r Posted August 18, 2014 Share Posted August 18, 2014 Well that is more like it. But you still have some issues $File_name->real_escape_string($File_name); You have got your variables mixed up there, real_escape_string() is a method belonging to the $db object. So $File_name-> should be $db-> Next you are escaping an undefined variable called $File_name. You need to be escaping the $_POST['File_name'] variable here and then save the escaped value to a variable called $File_name Line 9 should read as $File_name = $db->real_escape_string($_POST['File_name']); The next problem is line 12 if(($result->num_rows) = 1) { You need two equal signs to compare values. The = should be == Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488156 Share on other sites More sharing options...
phpbnoobb23 Posted August 18, 2014 Author Share Posted August 18, 2014 Well that is more like it. But you still have some issues $File_name->real_escape_string($File_name); You have got your variables mixed up there, real_escape_string() is a method belonging to the $db object. So $File_name-> should be $db-> Next you are escaping an undefined variable called $File_name. You need to be escaping the $_POST['File_name'] variable here and then save the escaped value to a variable called $File_name Line 9 should read as $File_name = $db->real_escape_string($_POST['File_name']); The next problem is line 12 if(($result->num_rows) = 1) { You need two equal signs to compare values. The = should be == It seems to work fine, but i get an error that says: Warning: mysqli_query() expects at least 2 parameters, 1 given in /home/u293130761/public_html/result.php on line 10 Invalid filename given. I understand that the query is for the file name and size, but when i query the file name in search.php I get the error above. Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488173 Share on other sites More sharing options...
Ch0cu3r Posted August 18, 2014 Share Posted August 18, 2014 Didnt pick that up earlier You are getting that error because you have called the mysqli_query function using procedural code and have not passed it the $db instance as the first argument. When using mysqli procedurally you must pass in the database instance as the first argument for any function that requires it. Alternatively you can replace mysqli_query with $db->query Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488178 Share on other sites More sharing options...
phpbnoobb23 Posted August 18, 2014 Author Share Posted August 18, 2014 (edited) Didnt pick that up earlier You are getting that error because you have called the mysqli_query function using procedural code and have not passed it the $db instance as the first argument. When using mysqli procedurally you must pass in the database instance as the first argument for any function that requires it. Alternatively you can replace mysqli_query with $db->query that fixed the problem and the only error i'm getting now is : Invalid filename given when i do query from search.php My script for search.php looks like this : <!DOCTYPE html> <html xmlns="http://www.w3.org/1999/xhtml"> <head> <meta http-equiv="content-type" content="text/html;charset=utf-8" /> <meta name="generator" content="Adobe GoLive" /> <title>File Select</title> <!--The following script tag downloads a font from the Adobe Edge Web Fonts server for use within the web page. We recommend that you do not modify it.--><script>var __adobewebfontsappname__="dreamweaver"</script><script src="http://use.edgefonts.net/aguafina-script:n4:default.js" type="text/javascript"></script> </head> <body> <div id="title"> <h3 align="center">File Upload</h3> </div> <form action="result.php" method="post" name="fileID" target="_self" class="inp" AUTOCOMPLETE="ON"> <h1> <!--Input file name--> <label for="fileID">File Name: </label> <input type="text" name='file1' id='sampleID' list="samp"> </input><br> <datalist id="samp"> <!DOCTYPE html> <html xmlns="http://www.w3.org/1999/xhtml"> <head> <meta http-equiv="content-type" content="text/html;charset=utf-8" /> <meta name="generator" content="Adobe GoLive" /> <title>File Select</title> <!--The following script tag downloads a font from the Adobe Edge Web Fonts server for use within the web page. We recommend that you do not modify it.--><script>var __adobewebfontsappname__="dreamweaver"</script><script src="http://use.edgefonts.net/aguafina-script:n4:default.js" type="text/javascript"></script> </head> <body> <div id="title"> <h3 align="center">File Upload</h3> </div> <form action="result.php" method="post" name="fileID" target="_self" class="inp" AUTOCOMPLETE="ON"> <h1> <!--Input file name--> <label for="fileID">File Name: </label> <input type="text" name='file1' id='sampleID' list="samp"> </input><br> <datalist id="samp"> <?php $db = new mysqli('localhost', 'root', '', 'test_db'); $query = $db->query("SELECT * FROM `file` ORDER BY `file`.`name` ASC LIMIT 0 , 30"); while($row = $query->fetch_assoc()){ $File_name = $row['name']; echo "<option value=$File_name>$File_name/option> <br>"; } ?> </datalist> <input type="submit" class="button"> </form> </body> </html> Edited August 18, 2014 by phpbnoobb23 Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488185 Share on other sites More sharing options...
Ch0cu3r Posted August 18, 2014 Share Posted August 18, 2014 Is that the actual code for listing files? You do realise you have repeated the first 24 lines of HTML twice! First sort your HTML out and make sure it is valid and then debug your PHP code to see why the files are not being listed. Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488188 Share on other sites More sharing options...
phpbnoobb23 Posted August 18, 2014 Author Share Posted August 18, 2014 (edited) Is that the actual code for listing files? You do realise you have repeated the first 24 lines of HTML twice! First sort your HTML out and make sure it is valid and then debug your PHP code to see why the files are not being listed. I edited my reply. The file names are being list. My error was that i added an (s) at the end of row, So it did not fetch the file names. My real problem now is i'm still getting the "Invalid filename given" error when I press submit. Edited August 18, 2014 by phpbnoobb23 Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488189 Share on other sites More sharing options...
Solution Ch0cu3r Posted August 18, 2014 Solution Share Posted August 18, 2014 (edited) That is because you have named your File Name field file1 <input type="text" name='file1' id='sampleID' list="samp"> </input><br> You need to the name it File_name as this is the name of field you are trying to get the value of in PHP ( $_POST['File_name'] ) Edited August 18, 2014 by Ch0cu3r Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488191 Share on other sites More sharing options...
phpbnoobb23 Posted August 18, 2014 Author Share Posted August 18, 2014 Thanks A lot guys. I appreciate all the help and input from everyone. Special thanks to Ch0cu3r for being extra patient. My problem is now solved. Quote Link to comment https://forums.phpfreaks.com/topic/290450-query-and-output-data-from-same-table-in-db/#findComment-1488200 Share on other sites More sharing options...
Recommended Posts
Join the conversation
You can post now and register later. If you have an account, sign in now to post with your account.