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Let me explain further exactly what I am trying to do. I am querying a database with one table with fields id, book, author, genre, email.

I have an insert page that works fine but I need to have a search page that has 4 searches with a drop down box showing unique entries for each field - book, author, genre, email.

I have come across a URL that I have got working to show entries in database but when you click on an entry it goes nowhere: http://www.phpsuperblog.com/php/html-form-drop-down-menu-with-data-from-mysql-datebase-as-options/

I hope I am doing something basic wrong. Latest attempt to have it working is here: http://swapabook.hostei.com/search6.php

I had been previously trying following the following link to create these drop down menus to query what is dynamically changing in a database: http://forums.devarticles.com/mysql-development-50/drop-down-menu-populated-from-a-mysql-database-1811.html

I hope I'm doing the correct thing by editing this but if you want me to add a new entry I can also do this.

My html code is as follows:

 <form action="namesearch2.php" method="post">
   Name of Book
   <SELECT NAME=name>
      <OPTION VALUE=0>Choose
   </SELECT>
   <input type="submit">
</form>

The php is as follows:

<?php
 $con=mysqli_connect('mysql1x.000webhost.com','a4425533_swapabo','xxxx','a4425533_swapabo');

// Check connection
if (mysqli_connect_errno())
  {
  echo "Failed to connect to MySQL: " . mysqli_connect_error();
  }

$result = mysqli_query($con,"'SELECT book FROM book'");

while($row = mysqli_fetch_array($result))
 {
  $bookselect=$row["book"];
  $options.="<OPTION VALUE=\"$bookselect\">".$bookselect.'</option>';
  }
?>

I previously had it that you could enter text in a field and it would query the database but I'm having trouble complicating it further by trying to populate this drop down menu.

http://swapabook.hostei.com/search2.html

share|improve this question
    
check my answer below, I guess it has the solution stackoverflow.com/a/15160649/348311 –  sikas Mar 1 '13 at 16:18

3 Answers 3

I want to add to what user2035638 said ..

I inspected your HTML .. and found that the first entry is not closed.

Name of Book
<SELECT NAME=name>
  <OPTION VALUE=0>Choose
    </SELECT>
<input type="submit">

You have to close the first <OPTION> so that your code should look like this:

Name of Book
<SELECT NAME=name>
  <OPTION VALUE=0>Choose</OPTION>
    </SELECT>
<input type="submit">
share|improve this answer

Try this;

<?php 
 $con=mysqli_connect('mysql1x.000webhost.com','a4425533_swapabo','xxxx','a4425533_swapabo');

// Check connection
if (mysqli_connect_errno())
  {
  echo "Failed to connect to MySQL: " . mysqli_connect_error();
  }

$result = mysqli_query("SELECT book FROM book",$con);
?>
<form action="namesearch2.php" method="post">
   Name of Book
   <SELECT NAME=name>
      <OPTION VALUE=0>Choose
      <?php  
      while($row = mysqli_fetch_array($result))
     {
      $bookselect=$row["book"];
      echo "<OPTION VALUE=\"$bookselect\">".$bookselect.'</option>';
      }
     ?>


   </SELECT>
   <input type="submit">
</form>
share|improve this answer
    
I made the changes mentioned but I get an error "Choose PHP Error Message warning:mysqli_fetch_array() expects parameter 1 to be mysqli_result, null given in ...search3.html on line 14. Files amended are swapabook.hostei.com/search3.html and PHP code here <?php $con=mysqli_connect('mysql10.000webhost.com','a4425533_swapabo','sch00ner','a442‌​5533_swapabo'); // Check connection if (mysqli_connect_errno()) { echo "Failed to connect to MySQL: " . mysqli_connect_error(); } $result = mysqli_query($con,"'SELECT book FROM book'"); ?> –  daithi_dearg Mar 1 '13 at 15:39
    
I edited the code please check –  Vijay Verma Mar 1 '13 at 15:45
    
You can use mysql instead of mysqli –  Vijay Verma Mar 1 '13 at 15:49
    
Edited the code but same warning with mysql rather than mysqli –  daithi_dearg Mar 1 '13 at 16:01

There seems to be one error in your code:

This line:

$options.="<OPTION VALUE=\"$bookselect\">".$bookselect.'</option>';

Change to:

$options.="<OPTION VALUE=\"".$bookselect".\">".$bookselect.'</option>';
share|improve this answer
    
I was about to note the same! –  sikas Mar 1 '13 at 14:54
    
That doesn't matter cause double quotes could be parsed for variables. –  Hast Mar 1 '13 at 14:55
    
@Hast: You mean: variables within double quotes will be parsed? Indeed. –  Marcel Korpel Mar 1 '13 at 15:08
    
I added that /OPTION in the html code and I also changed that entry above but still seeing the same thing. –  daithi_dearg Mar 1 '13 at 15:14
    
Also if I run the php directly on the site I get following: Parse error: syntax error, unexpected T_CONSTANT_ENCAPSED_STRING in /home/a4425533/public_html/namesearch2.php on line 15 but not sure that is a valid troubleshooting step anyway –  daithi_dearg Mar 1 '13 at 15:17

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