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我有一个动态表,我想单击链接示例位置A并转到另一个php页面。 然而,在另一个php页面中,我想从位置A中选择一些细节。我可以知道如何获取值?我尝试了一些方法,但仍然失败。如何获取用户从动态表中选择的值?
创建动态表:
<?php
include "mysqli.connect.php";
// Make a MySQL Connection
$_session['place'] = $row['links'];
$retrieveLocation = "SELECT COUNT(c.userid) AS userid, p.places, p.address, p.telephone, p.links FROM promotion AS p LEFT JOIN candy AS c on p.places = c.places GROUP BY p.places ORDER BY userid desc";
$result = $mysqli->query($retrieveLocation);
while ($row = $result->fetch_array(MYSQLI_ASSOC))
{
echo "<tr><td>{$row['places']}</td><td>{$row['address']}</td><td>{$row['telephone']}</td><td>{$row['userid']}</td><td><a href=\"".$row['links']."\">View</a></td></tr>";
}
?>
因此,这将产生从数据库和输出表中的值:
places | address | telephone | userid | links
----------------------------------------------
A | A.php
B | B.php
C | C.php
D | D.php
a.php只会
<?php
include "mysqli.connect.php";
// Make a MySQL Connection
$retrieve = "SELECT username, product, rating FROM ratings WHERE places='".$_SESSION['place']."'";
$result = $mysqli->query($retrieve);
while ($row = $result->fetch_array(MYSQLI_ASSOC))
{
echo "<tr><td>{$row['product']}</td><td>{$row['rating']}</td><td>{$row['username']}</td></tr>";
}
?>
所以对于我的最后列,当用户点击时,它将引导他们到页面(例如A.php)。进入A.php页面,我需要从位置A中选择一些细节并显示出来。 请帮忙吗?谢谢。 (我刚刚尝试的会话部分,它没有工作)