我是 php 的初学者,这可能是一个愚蠢的问题。我进行了选择和查询。但我想要它,所以如果我点击 id(index.php?id=2),它将打开一个新页面,其中包含数据库中的所有详细信息(标题、omschrijving、soort、foto1、foto1 和 prijs)
<?php
function tonenTabel(){
include "connect.int.php";
if ($_GET) //als er iets in meegestuurd in de url (bijv. studenten.php?id=3)
{
if (isset($_GET["id"])) //check of dit dan id is wat is meegestuurd
{
$id = $_GET["id"]; //ophalen van de waarde van id
}
}
//maken select query
$query = "
SELECT
menuid, soort, titel, prijs
FROM
gerechten
";
if (isset($id)) //bestaat id en is deze gevuld dan filteren op id
{
$query.= "
WHERE
menuid = $id
";
}
//uitvoeren select query
$result = mysqli_query ($link, $query);
//tellen aantal gevonden rijen
$total = mysqli_num_rows($result);
if ($total > 0)
{
//tonen alle gegevens
$table = "
<table>
<tr>
<th>ID</th>
<th>Soort</th>
<th>Titel</th>
<th>Prijs</th>
</tr>
";
while ($row = mysqli_fetch_assoc($result)){
$table .= "<tr>";
foreach ($row as $key => $value)
{
if ($key == "foto")
{
$table .="<td><img src='$value' /></td>";
}
elseif ($key == "menuid")
{
$table .="<td><a href='index.php?id=$value'></a>$value</td>";
}
else
{
$table .="<td>$value</td>";
}
}
$table .= "</tr>";
}
$table .="</table>";
echo $table;
echo " Totaal ". $total . " gerechten";
}
}
function tonenLijst(){
echo "<p>kies een student</p>";
$form= ' <form action="index.php" method="get">';
$form.= '<select name = "id" >';
$form.= '<option>1</option>';
$form.= '<option>2</option>';
$form.= '<option>3</option>';
$form.= '<option>4</option>';
$form.= '<option>id</option>';
$form.= '<input type="submit">';
$form.= '</select>';
$form.= '</form>';
echo $form ;
}
?>