将表格中的数据显示到下拉菜单中
[英]displaying data from a table into a drop down menu
问题描述
我有2张桌子
domains_info和tb2
我的表格运作良好,并将资料输入数据库
这是我页面的顶部
<?php
$action = isset($_POST['action']) ? $_POST['action'] : "";
if($action=='create'){
//include database connection
include 'db_connect.php';
//write query
$query = "insert into domains_info
set
domain = '".$mysqli->real_escape_string($_POST['domain'])."',
domain_account = '".$mysqli->real_escape_string($_POST['domain_account'])."',
renew_date = '".$mysqli->real_escape_string($_POST['renew_date'])."'";
if( $mysqli->query($query) ) {
//if saving success
header("Location:domains.php");
}else{
echo "Database Error: Unable to create record.";
}
$mysqli->close();
}
这是表格
<select id="domain_account" name="domain_account" class="txtBox">
<option value="">-select-</option>
<option value="a">a</option>
<option value="b">b</option>
<option value="c">c</option>
</select>
我试图像这样更改页面的顶部
<?php
$action = isset($_POST['action']) ? $_POST['action'] : "";
if($action=='create'){
//include database connection
include 'db_connect.php';
//write query
$query = "insert into domains_info
set
domain = '".$mysqli->real_escape_string($_POST['domain'])."',
domain_account = '".$mysqli->real_escape_string($_POST['domain_account'])."',
renew_date = '".$mysqli->real_escape_string($_POST['renew_date'])."'";
if( $mysqli->query($query) ) {
//if saving success
header("Location:domains.php");
}else{
echo "Database Error: Unable to create record.";
}
$mysqli->close();
}
$query = "select id, data
from tb2
where id='".$mysqli->real_escape_string($_REQUEST['id'])."'
limit 0,1";
$result = $mysqli->query( $query );
$row = $result->fetch_assoc();
$id = $row['id'];
$data = $row['data'];
并以此更新我的表格
<select id="domain_account" name="domain_account" class="txtBox">
<option value="">-select-</option>
<option value="<?php echo$data; ?>"><?php echo$data; ?></option>
</select>
如您所知,我对此非常陌生,无法正常工作。
抱歉,我没有解释我要实现的目标,我试图显示包含数据库数据的下拉表单。
1 个解决方案
解决方案1
2 2013-10-09 21:28:56
尝试使用数据库填充下拉列表:
<?php
$query = "select id, data from tb2";
$result = $mysqli->query( $query );
echo '<select id="domain_account" name="domain_account" class="txtBox">';
echo '<option value="">-select-</option>';
while ($row = $result->fetch_assoc()){
?>
<option value="<?php echo $row['data']; ?>"><?php echo $row['data']; ?></option>
<?php
}
echo "</select>";
?>
通过从下拉列表中选择字段名称来显示mysql表的字段数据
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[英]How to insert the selected data from drop down menu into multiple table in database
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