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I am using a javascript multi select function for listbox along with php code. In the interface we can select multiple elements but when I use the php code to get the values from it, it retrieves only one value. Can some one please tell me what is wrong?

javascript:

 <script type="text/javascript">
$(function(){
    $("select").multiselect();
});
</script>

HTML code:

<select title="Basic example" multiple="multiple" name="example-basic" size="5">
    <option value="Sgoop">Sgoop</option>
    <option value="Monet">Monet</option>
    <option value="Hive">Hive</option>
    <option value="Mahout">Mahout</option>
    <option value="R">R</option>
    <option value="Storm">Storm</option>
    <option value="Flume">Flume</option>
    <option value="Solr">Solr</option>
    <option value="Python">Python</option>
    <option value="Splunk">Splunk</option>
    <option value="Ruby">Ruby</option>
    <option value="perl">perl</option>
    </select>

mysql code:

$sql="INSERT INTO details (name, type, domain, rights, description, author, version, download)
VALUES
('$_POST[compname]','$_POST[examplebasic]','$_POST[examplebasic2]','$_POST[examplebasic3]','$_POST[textarea]','$_POST[name]',1,0)";

after changing the examplebasic to examplebasic[] now i am getting an array to string conversion error. what can i do to resolve this

share|improve this question
    
The answer to your problem is already given by @Alireza41, I am just hinting you, do not use this code in production site. It is bad practice to insert post data to database directly. –  Amit Kriplani Mar 15 '13 at 8:55

1 Answer 1

up vote 1 down vote accepted

EDIT


change name to

name="example-basic[]"

and in your php code :

$options = json_encode( $_POST['example-basic'] );

// and for populating you can use `json_decode` to get the array again

or you can split array items with , then insert it to database field :

$options = implode( ',', $_POST['example-basic'] );

see implode php manual for more description

// then for populating use `explode` to convert it to array

$sql="INSERT INTO details (name, type, domain, rights, description, author, version, download)

VALUES ('$_POST[compname]','$options','example','example2','$_POST[textarea]','$_POST[name]',1,0)";
share|improve this answer
    
I am using it to get values and store it in the database also. Now its giving me an array to string conversion error. Check the code i have edited the mysql code also –  user2169907 Mar 15 '13 at 8:01
    
just get the array and insert each option to the database –  Alireza41 Mar 15 '13 at 8:09
    
i have to manually code in the options? what if i dont know how many will be selected –  user2169907 Mar 15 '13 at 8:10
    
it is left for the users decision how can i hard code that part. –  user2169907 Mar 15 '13 at 8:11
    
I write this code because of your source code –  Alireza41 Mar 15 '13 at 8:11

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