Welcome to OGeek Q&A Community for programmer and developer-Open, Learning and Share
Welcome To Ask or Share your Answers For Others

Categories

0 votes
481 views
in Technique[技术] by (71.8m points)

php - How can i populate a dropdown list by selecting the value from another dropdown list?

I have build two drop downs (like state and city) by fetching the records of both drop downs from mysql database and am trying to build the tool in which, while selecting any value (i.e. any state) from first drop down, at that time in second drop down (in city) only those values (cities) under that value (state) selected in first drop down should be visible.

Here's my code:

<tr>    
        <td id='hed'><span style="font-family:verdana,geneva,sans-  serif">State</state></td>
        <td>
        <?php 
        $dbcon = mysql_connect("@ip","@username","@password");

        if($dbcon)
        {
            mysql_select_db("@database", $dbcon);
        }
        else
        {
            die('error connecting to the database');
        }

        $qry = "select @value(state) from @tablename  ";
        $result = mysql_query($qry) or die(mysql_error());

        $dropdown = "<select name='@valuename' id='officeItemList' style='cursor:pointer;cursor:hand;'>";
        while($row = mysql_fetch_array($result))
        {           
            $dropdown .= "
<option value='{$row['@value']}' > {$row['@value']} </option>";
        }
        $dropdown .= "
</select>"; 
        echo $dropdown;
        mysql_close($dbcon);
        ?>
        </td> 
    </tr>

        <tr>
        <td id='hed'><span style="font-family:verdana,geneva,sans-serif">City</span></td>
        <td colspan="1"> 
        <?php 
        $dbcon = mysql_connect("@ip","@username","@password");

        if($dbcon)  
        {
            mysql_select_db("@database", $dbcon);
        }  
        else
        {
            die('error connecting to the database');
        }  

        $qry = "select value2(city) from @tablename where ";
        $result = mysql_query($qry) or die(mysql_error()); 

        $dropdown = "<select name='@value2' id='officeItemList' style='cursor:pointer;cursor:hand;'>";
        while($row = mysql_fetch_array($result)) 
        {

            $dropdown .= "
<option value='{$row['@value2']}' > {$row['@value2']} </option>";
        }
        $dropdown .= "
</select>"; 
        echo $dropdown;
        mysql_close($dbcon);
        ?>      


        </td>
    </tr>
See Question&Answers more detail:os

与恶龙缠斗过久,自身亦成为恶龙;凝视深渊过久,深渊将回以凝视…
Welcome To Ask or Share your Answers For Others

1 Reply

0 votes
by (71.8m points)

That is the wrong way. Your PHP code is fully executed before showing the page to user. So second query can never know that user choses something.

Right way #1: Do it in two pages. First page contains first combo and when it is submitted second page is generated and shows the second combo.

Right way #2 although not optimal: Do it in one page. Load all possible records for second combo to some JS array. Place listener to first array. When user choses something fill second combo with right records from JS-array.

Right way #3 (most right of them): Do it in a page with AJAX-request in it. User selects a value in the first combo. Its listener sends a request to some server script which returns JSON-object with records for second combo.


与恶龙缠斗过久,自身亦成为恶龙;凝视深渊过久,深渊将回以凝视…
OGeek|极客中国-欢迎来到极客的世界,一个免费开放的程序员编程交流平台!开放,进步,分享!让技术改变生活,让极客改变未来! Welcome to OGeek Q&A Community for programmer and developer-Open, Learning and Share
Click Here to Ask a Question

1.4m articles

1.4m replys

5 comments

57.0k users

...