我试图让这个PHP脚本对从mysql数据库中提取的数据进行分页。
在第二个for循环中某处出错了。而不是通过它拉动数据只是返回空白或空白字段。
我需要它来显示数据库中的标题,描述和内容字段以及ID。
require_once("../controls/config.php");
$connection = new mysqli(DB_HOST, DB_USER, DB_PASS, DB_NAME);
if ($connection->connect_errno) {
printf("Connect failed: %s\n", $connection->connect_error);
exit();
}
// number of results to show per page
$per_page = 3;
// figure out the total pages in the database
$result = $connection->query("SELECT * FROM pages");
$total_results = $result->num_rows;
$total_pages = ceil($total_results / $per_page);
// check if the 'page' variable is set in the URL (ex: view-paginated.php?page=1)
if (isset($_GET['page']) && is_numeric($_GET['page']))
{
$show_page = $_GET['page'];
// make sure the $show_page value is valid
if ($show_page > 0 && $show_page <= $total_pages)
{
$start = ($show_page -1) * $per_page;
$end = $start + $per_page;
}
else
{
// error - show first set of results
$start = 0;
$end = $per_page;
}
}
else
{
// if page isn't set, show first set of results
$start = 0;
$end = $per_page;
}
for ($i = 1; $i <= $total_pages; $i++)
{
echo "<a href='?page=$i'>$i</a><br>";
}
// loop through results of database query, displaying them in the table
for ($i = $start; $i < $end; $i++)
{
// make sure that PHP doesn't try to show results that don't exist
if ($i == $total_results) { break; }
echo $i["id"].' ';
echo $i["title"].' ';
echo $i["description"].' ';
echo $i["content"].' ';
echo '<a href="edit.php?id='.$i["id"].'">Edit</a> ';
echo '<a href="delete.php?id='.$i["id"].'">Delete</a><br>';
}
?>
<p><a href="new.php">Add a new record</a></p>
有人能指出我正确的方向吗?
答案 0 :(得分:2)
看起来您正在尝试将$ i视为关联数组。虽然$ i只是一个整数。此外,您没有包含mysqli查询结果的数组。你应该试试:
// this will loop through results and assign to $rows array
while($row = $result->fetch_array())
{
$rows[] = $row;
}
// this will loop through $rows array and provide each column result
foreach($rows as $row)
{
echo $row["id"];
echo $row["title"];
echo $row["description"];
echo $row["content"];
}
有关详细信息,请参阅:http://us2.php.net/mysqli_fetch_array