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I'm trying to do a search with multiple keywords. For testing purposes ,the search string looks like this

http://localhost/admin/search.php?search=live+concert

So far, the search works perfectly!!!

If there is no parameters, im able to echo a message

if (isset($_GET['search'])) {

   // split keywords
   $keywords = preg_split('/[\s]+/', $_GET['search']);

   // search

} else {
   echo 'Nothing to search';
}

Here's my problem. When I hit the search button without entering keywords, i get an empty string , like this

http://localhost/admin/search.php?search=

I want to echo an error to the user saying that there is no keywords to search for. I've tried using count($keywords), but i always get 1 as a result when no keywords have been entered.

How do i check if the user hit the search button without entering keyword(s) ?

Thanks

share|improve this question
1  
Did you try php's empty method? It is different from isset. – Dan Feb 22 '14 at 22:31
up vote 4 down vote accepted

You can use trim($_GET['search']) where you remove any additional spaces and check if then $_GET['search'] is not '' this way even if the user only submits space, your error message shows

if (isset($_GET['search']) && trim($_GET['search']) != '') {
share|improve this answer
    
"isset" is entirely unnecessary. The variable will be set as it has been posted by the form. A simple (!$_GET['search']) or even (!trim($_GET['search'])) will suffice. – JBES Feb 22 '14 at 22:45
    
@JBES if you don't use isset first, you may get a warning that trim is using an unset variable, so it is better to use isset first, then run the trim, so if I visit the the page through a direct link, the without a query string the $_GET won't be set – CodeBird Feb 22 '14 at 22:51
    
You have completely missed the point. The variable WILL be set as it is being posted by the form. My answer stands. Additionally, !='' is also unnecessary as all that is required is a leading ! (logical NOT operator - php.net/manual/en/language.operators.logical.php) – JBES Feb 22 '14 at 22:55
    
@JBES if I visit the page like this: localhost/admin/search.php directly in the browser is $_GET['search'] set? – CodeBird Feb 22 '14 at 22:56
2  
@JBES just for the info, how can he test a form with method get in your opinion, how could he test if the form was submitted or not? Question 2 if he is using get that he might want people to share urls that give results without having to submit a form, what's your solution for that? – CodeBird Feb 22 '14 at 23:52

You might be able try something like this:

if (empty($_GET['search'])) {
    echo 'You did not enter anything';
}

empty checks to see if the var is either 0, empty, or not set at all. Not that this matters but as of PHP 5.5 empty() supports expressions, rather than only variables.

share|improve this answer
    
"empty" is entirely unnecessary. The variable will be set as it has been posted by the form. A simple (!$_GET['search']) will suffice. – JBES Feb 22 '14 at 22:43

You can use simple validation as below, this will check if "search" is posted and its not NULL or not having a while space and length is greater than 0

if (isset($_GET['search']) && strlen(trim($_GET['search']))>0) {
 // do the search
}else{
 echo 'Nothing to search';
}
share|improve this answer
    
strlen(trim($_GET['search'])) > 0 would be a lot less clunky as trim($_GET['search']) !== ''. ('' is the only string value that will ever have a length of 0.) – cHao Feb 27 '14 at 4:52

If the user has clicked the search button, $_GET['search'] will be set but empty, which is why your 'isset' condition is failing. Why not a simple:

if (!trim($_GET['search'])){ //trim removes whitespace from beginning and end
share|improve this answer

The empty function should work -

if ( isset($_GET['search']) && !empty(trim($_GET['search'])) )
share|improve this answer

You can use if ($_GET['search'] == '') {/*ERROR*/} or if (strlen($_GET['search']) < 1) {/*ERROR*/}.

These could also be added to your already existing if statement.

The problem with using count is that when you place an empty string as the second argument for preg_split(), an array with one empty string value will be returned: array(''). Therefore, the amount of values in the array will be one.

share|improve this answer
    
$keywords after preg_split will be an array hence unfortunately neither of your solutions would work... – JBES Feb 22 '14 at 22:36
    
My mistake. I have fixed it. – Anonymous Feb 22 '14 at 22:38

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