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I got this code to work, mostly. I have an issue in where it is posting the comp_id instead of the name, which is the company.

I can't figure out why. Can someone here look at this code and tell me where the error is?

The table is comp, the fields are comp_id and name.

The test page is: http://kaboomlabs.com/PDI/test4.php

I know I'm missing something but I've been staring at this code for too long and I don't see the obvious mistakes any more. Thanks.

<?php
 require_once('connectvars.php');
        $dbc = mysqli_connect(DB_HOST, DB_USER, DB_PASSWORD, DB_NAME)
        or die('Error connecting to MySQL .');

if (isset($_POST['submit'])) {
    $comp = mysqli_real_escape_string($dbc,$_POST['comp']);
}


//Access the Database
    if (!empty($comp)) {
        $dbc = mysqli_connect(DB_HOST, DB_USER, DB_PASSWORD, DB_NAME)
        or die('Error connecting to MySQL server.');

    $query = "INSERT INTO ncmr (comp) VALUES ('$comp')";

    $data = mysqli_query($dbc, $query) or die("MySQL error: " . mysqli_error($dbc) . "<hr>\nQuery: $query");
        mysqli_close($dbc);
    }


echo "<form method='post'>";
        echo '<fieldset>';
            echo'<div id="comp">';
             $mysqli = new mysqli(DB_HOST, DB_USER, DB_PASSWORD, DB_NAME); 
        $mysqli->select_db('comp');
            echo '<span class="b">Company:&nbsp;&nbsp;</span>';
            $result = $mysqli->query("SELECT * FROM comp"); 
            $i = 0;
            echo "<SELECT name='comp'>\n";
            while($row = $result->fetch_assoc()) {
            if ($i == 4) echo '<option value="lines">-----</option>';
            echo "<option value='{$row['name']}'>{$row['name']}                                 </option>\n";
            $i++;}
        echo "</select>\n";
            echo '</div>';
            echo '<div id="button"><input type="submit" value="Submit NCMR" name="submit" /></div>';
    echo '</fieldset>';
echo '</form>';
?>
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1  
Well... Don't just stare at the code. Do some active debugging such as inspecting the generated HTML in your browser, displaying the received post values with var_dump(), inspecting the generated SQL code... –  Álvaro G. Vicario Dec 30 '11 at 13:43
    
you're getting a mysqli_real_escape_string() warning on your page. Is the first parameter in your mysqli_connect(); function a link identifier? –  sooper Dec 30 '11 at 13:47
    
@Sooper, I don't know. I'm noticing that too. @ Alvaro, How? –  Matt Ridge Dec 30 '11 at 13:51
    
More than anything else: Please stop intermixing database queries with the HTML. Break all the queries into a library of functions that return arrays of the data you need, then foreach() over them to build your form, It'll be much clearer and easier to debug and upgrade. –  DampeS8N Dec 30 '11 at 14:30
    
@DampeS8N How do you do that? –  Matt Ridge Dec 30 '11 at 14:57

3 Answers 3

Your options values are the IDs of the comps, and when you submit a form with dropdowns, what gets sent is the value of the selected option for every dropdown, not the text displayed.

You should change this line:

       echo "<option value='{$row['comp_id']}'>{$row['name']}</option>\n";

For this:

    echo "<option value='{$row['name']}'>{$row['name']}</option>\n";

Let me know if that helps you!

Edit There were actually 2 errors on your code, the first one was the change above, and the second one is the fact that your form tag has no action attribute. You need to specify that for the form to post something somewhere.

It should be like this:

<form method="post" action="your_script.php">

And on your_script.php you need to catch the parameters with $_POST['comp']

Let me know if that solves the problem!

share|improve this answer
    
I am getting an error now: Warning: mysqli_real_escape_string() expects parameter 1 to be mysqli, null given in \kaboomlabs.com/PDI/test4.php on line 5 –  Matt Ridge Dec 30 '11 at 13:47
    
This is because you defined $dbc after you tried to use it as an argument to mysqli_real_escape_string. See the bottom of my answer. –  Logan Serman Dec 30 '11 at 13:52
    
Sorry not switching it to a mix of php and html. I've spent too long attempting to get this work using php. I'd like an answer in php usage only please. –  Matt Ridge Dec 30 '11 at 14:49
    
@Deleteman I've done what you said, now it's not posting at all. –  Matt Ridge Dec 30 '11 at 14:57
    
@MattRidge You probably have another error there, because the change I propposed can't affect the form in that way. Do you have some other error message? –  Deleteman Dec 30 '11 at 15:36
up vote 1 down vote accepted

I solved this issue, the people here helped, and pointed me in the right direction. The problem was that not one person gave the correct answer, but multiple people gave part of the complete answer.

Here is the script in it's entirety.

<?php
 require_once('connectvars.php');
        $dbc = mysqli_connect(DB_HOST, DB_USER, DB_PASSWORD, DB_NAME)
        or die('Error connecting to MySQL .');

if (isset($_POST['submit'])) {
    $comp = mysqli_real_escape_string($dbc,$_POST['comp']);
}


//Access the Database
    if (!empty($comp)) {
        $dbc = mysqli_connect(DB_HOST, DB_USER, DB_PASSWORD, DB_NAME)
        or die('Error connecting to MySQL server.');
    $query = "INSERT INTO ncmr (comp) VALUES ('$comp')";
    $data = mysqli_query($dbc, $query) or die("MySQL error: " . mysqli_error($dbc) . "<hr>\nQuery: $query");
        mysqli_close($dbc);
    }
echo "<form method='post'>";
    echo '<fieldset>';
        echo'<div id="comp">';
            $mysqli = new mysqli(DB_HOST, DB_USER, DB_PASSWORD, DB_NAME); 
                $mysqli->select_db('comp');
            echo '<span class="b">Company:&nbsp;&nbsp;</span>';
                $result = $mysqli->query("SELECT * FROM comp"); 
                $i = 0;
            echo "<SELECT name='comp'>\n";
                while($row = $result->fetch_assoc()) {
                    if ($i == 4) echo '<option value="lines">-----</option>';
            echo "<option value='{$row['name']}'>{$row['name']}</option>\n";
                $i++;
            }
        echo "</select>\n";
        echo '</div>';
        echo '<div id="button"><input type="submit" value="Submit NCMR" name="submit" /></div>';
    echo '</fieldset>';
echo '</form>';
?>
share|improve this answer
    
Don't miss to accept an answer please: meta.stackexchange.com/questions/5234/… –  Udo Held Dec 31 '11 at 13:50

First of all, you really shouldn't be using echo to output all of your HTML like that. It is better to do something like this:

<?php
    // Connect to database, etc...
    $result = $mysqli->query("SELECT * FROM `comp`);
?>
<!-- Output your HTML here, outside of PHP tags -->
<form method="post">
    <fieldset>
        <div id="comp">
<?php while ($row = $result->fetch_assoc()) { ?>
            <option value="lines">-----</option>
            <option value='<?php echo $row['name']; ?>'><?php echo $row['name']; ?></option>
<?php } ?>

I omitted a lot of the code, but I hope you get the idea.

The reason you are POSTing the comp_id field is because that is the value of your <option> elements. The browser does not POST what is between the tags (the "inner HTML"), it posts the value attribute. I showed this change above:

<option value='{$row['comp_id']}'>{$row['name']}</option>

should be:

<option value='{$row['name']}'>{$row['name']}</option>

Lastly, the reason you are getting a mysqli_real_escape_string error is because this line:

$comp = mysqli_real_escape_string($dbc, trim($_POST['comp']));

Comes BEFORE:

 $dbc = mysqli_connect(DB_HOST, DB_USER, DB_PASSWORD, DB_NAME)
        or die("MySQL error: " . mysqli_error($dbc) . "<hr>\nQuery: $query");

So when you are giving mysqli_real_escape_string the $dbc parameter, it has no idea what that is, because you are defining $dbc after you try to provide it as a parameter.

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