PHP接收json,并将接收数据插入数据库
最近有一个需求,前端向后台提交json,后台解析并且将提交的值插入数据库中,
难点
- 1、php解析json(这个不算难点了,网上实例一抓一大把)
- 2、解析json后,php怎样拿到该拿的值
<?php require ('connect.php'); /* 本例用到的数据: post_array={"order_id":"0022015112305010013","buyer_id":"2","seller_id":"1","all_price":"100.00","json_list":[{"product_id":"3","product_number":"3"},{"product_id":"8","product_number":"2"},{"product_id":"10","product_number":"4"}]} */ $post_array=$_POST['post_array']; //--解析Json,获取对应的变量值 $obj=json_decode($post_array,TRUE); $order_id = $obj['order_id']; $buyer_id = $obj['buyer_id']; $seller_id = $obj['seller_id']; $all_price = $obj['all_price']; $i=0;//循环变量 //--得到Json_list数组长度 $num=count($obj["json_list"]); //--遍历数组,将对应信息添加入数据库 for ($i;$i<$num;$i++) { $list_product_id[]=$obj["json_list"][$i]["product_id"]; $list_product_number[]=$obj["json_list"][$i]["product_number"]; $insert_order_product_sql="INSERT INTO tbl_order_product (order_id,product_id,product_number) VALUES (?,?,?)"; $result = $sqlconn -> prepare($insert_order_product_sql); $result -> bind_param("sss", $order_id,$list_product_id[$i],$list_product_number[$i]); $result->execute(); } //--添加订单信息 $insert_order_sql="INSERT INTO tbl_order (order_id,buyer_id,seller_id,all_price) VALUES (?,?,?,?)"; $result=$sqlconn->prepare($insert_order_sql); $result->bind_param("ssss",$order_id,$buyer_id,$seller_id,$all_price); $result->execute(); $result -> close(); $sqlconn -> close(); ?>
投稿者信息
昵称: Hola
Email: [email protected]
blog: holajelly.cc
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