如何將資料庫表的一條記錄中增加一個單獨的欄位來進行json輸出
表user有兩個欄位,id,name
表user_friend有三個欄位,id,userid,friendid
$query = $this->db->query('SELECT * FROM user where id=46' );
$user=$query->row();
$queryfriend= $this->db->query('SELECT * FROM user_friend where userid='.$user->id );
$userfriend=$queryfriend->result();
各位親,請問下我要輸出如下的json格式,應該怎樣操作?
{
"user": {
"id": "46",
"name": "john",
"userfriend": [ {
"id": "13",
"userId": "46",
"friendId": "43"
},
{
"id": "15",
"userId": "46",
"friendId": "44"
}
]
}
}
------解決思路----------------------
print_r($userfriend);
看看都是什麼
------解決思路----------------------
這樣試試
$user['userfriend']=$userfriend;
$data['user']=$user;
echo json_encode($data);
------解決思路----------------------
我的想法:
1.拼接json
1).迴圈$user,嵌套迴圈$userfriend
2.重組數組
1).兩表聯查
2).迴圈構造新數組
額外:
json_encode()注意編碼UTF-8
------解決思路----------------------
這樣就可以了。
$query = $this->db->query('SELECT * FROM user where id=46' );
$user=$query->row();
$queryfriend= $this->db->query('SELECT * FROM user_friend where userid='.$user->id );
$userfriend=$queryfriend->result();
$data = array();
$data['user']['id'] = $user[0]['id'];
$data['user']['name'] = $user[0]['name'];
$data['user']['userfriend'] = $userfriend;
echo json_encode($data);
------解決思路----------------------
先取出所有使用者,foreach迴圈取出每個使用者的朋友,在儲存到一個數值裡面
