我试图加入两个表。一个是类别,另一个是子类别。类别表中的id成为子类别表中的cat id
类别
id name catimage
2 cat1 image1
子类别
id name subcatimage catid
1 subcat1 image2 2
该代码是
<?php
ob_start();
require_once('config.php');
$selectsubcategory = mysql_query("SELECT category.name, subcategory.name, category.catimage, subcategory.id, subcategory.catid FROM category INNER JOIN subcategory ON category.id=subcategory.catid ");
$posts = array();
if(mysql_num_rows($selectsubcategory))
{
while($post = mysql_fetch_assoc($selectsubcategory))
{
$posts[] = $post;
}
header('Content-type: application/json');
echo stripslashes(json_encode(array('subcategorylist'=>$posts)));
}
else
{
header('Content-type: application/json');
echo stripslashes(json_encode(array('subcategorylist'=>'No subcategory')));
}
?>
我正在获取所有详细信息,但问题是我没有得到category.name的结果。谁能帮忙
P.S我用过sql,现在稍后会更改它,我关心的是功能部分
最佳答案
subcategory.name会覆盖您的类别名称。
您必须为子类别名称使用别名,如下所示:
$selectsubcategory = mysql_query("SELECT category.name, subcategory.name AS sub_name, category.catimage, subcategory.id, subcategory.catid FROM category INNER JOIN subcategory ON category.id=subcategory.catid ");