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I've used php before and never run into this problem....

I have radio buttons which pass on their own value. When my form is submitted I have verified that the value passed matches the if statement condition in my code. However, it will not execute that path.

For example, when the city radio button is selected, the if condition pertaining to city does not execute. I have debugged by placing an echo statement ahead of the if statement and it matches the value in the if statement, hence my confusion on why it does not execute.

If anyone can help I'd be grateful... I'm quite baffled.

Heres the html:

<html>
<head>
<title>Lab 5</title>
<link rel='stylesheet' href='SearchForm.css' type='text/css' media='all' />
</head>
<body>
<p>You may use % as a wildcard character in your search.</p>
<form method='POST' action='index.php?type=search'>
  <input type='text' name='search_param' value='' />
  <input type='radio' name='search-type' value='City' id='city' />
  <label for='city'>City</label>
  <input type='radio' name='search-type' value='Country' id='country' />
  <label for='country'>Country</label>
  <input type='radio' name='search-type' value='Language' id='language' />
  <label for='language'>Language</label>
  <br /><br />
  <input type='submit' name='submit' value='Search' />
</form>
<p>Or, <a href='index.php?type=insert'>perform an insertion.</a></p>
</body>
</html>

and the php:

<?php

include 'connect.php';

$table = $_POST['search-type'];
$search = $_POST['search_param'];

if($table != NULL)
{
        echo '<table>';

        if($table == 'City')
        {

                $query = "SELECT * FROM city WHERE name ILIKE $1 ORDER BY name;";
                $stmt = pg_prepare($connection, "city", $query);
                $result = pg_execute($connection, "city", array($search));

                while($row = pg_fetch_assoc($result))
                {
                        cityTable($row);
                }
        echo '</table>';

        }

}
else
{
        echo 'Please select a table to query!';
}

As you can see, I've even removed the variable $search from my if condition, instead going straight to the post.

When I've echoed $search it yields "city" so..... please help!

share|improve this question
    
try to change name='search-type' with name='search-type[]' –  JackTurky Sep 28 '12 at 5:03
    
'city' != 'City' ? –  Ja͢ck Sep 28 '12 at 5:03

6 Answers 6

up vote 1 down vote accepted

String comparisons in PHP are case sensitive, so instead of:

if($_POST['search_param'] == 'City')

You should have:

if (0 === strcasecmp($_POST['search_param'], 'City'))

Or:

if (0 === strcasecmp(trim($_POST['search_param']), 'City'))
share|improve this answer
    
learned about === operator.thanx –  mmhasannn Sep 28 '12 at 5:08

No one has noticed undefined $1 in the query :D

share|improve this answer
    
That's how you set up a bound parameter using pg_prepare: php.net/manual/en/function.pg-prepare.php –  andrewsi Sep 28 '12 at 15:56

Ok. Try this:

$table = isset($_POST['search-type']) ? $_POST['search-type'] : NULL; // string from radio
$search = isset($_POST['search_param']) ? $_POST['search_param'] : NULL; // string from input
share|improve this answer
    
Yes that is correct, part of my debuggin process, code updated. but it still doesn't work. I've even echoed $table one line above the condition and it yields 'City', yet it won't work! –  ZAX Sep 28 '12 at 5:10
    
@ZAX i updated my answer –  Sergey Sep 28 '12 at 6:04

Try the conditions:

$table = isset($_POST['search-type']) ? $_POST['search-type'] : false;
$search = isset($_POST['search_param']) ? $_POST['search_param'] : false;

if ($table) {

}
else if (!$table || $table === null) {

}

The HTML form might be posting the parameter search-type but as a blank (which is not null).

share|improve this answer
if($table != NULL)
{
        echo $table;

        if($search != NULL )
        {

the search param is the value which we get at the input text field my friend

share|improve this answer

I think you want

        if($table == 'City')

$_POST['search_param'] is the value in the text box.

share|improve this answer
    
You are correct, that was left over from part of my debugging, yet it still won't work! other suggestions!? –  ZAX Sep 28 '12 at 5:11

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