JSON解析沒有從數組中獲得價值

Question

我對從PHP函數返回的數組執行JSON分析，它似乎並沒有工作。

這裏的PHP函數：

<!DOCTYPE html> 
 
<html> 
 
<head> 
 
</head> 
 
<body> 
 

 
<?php 
 

 
\t \t \t $bname = $_REQUEST["bname"]; 
 

 
     \t $link = mysqli_connect('localhost', 'root', '123'); 
 

 
\t \t \t $servername = "localhost"; 
 
\t \t \t $username = "root"; 
 
\t \t \t $password = "123"; 
 
\t \t \t $dbname = "success"; 
 

 
\t \t \t // Create connection 
 
\t \t \t $conn = new mysqli($servername, $username, $password, $dbname); 
 
\t \t \t // Check connection 
 
\t \t \t if ($conn->connect_error) { 
 
    \t \t \t die("Connection failed: " . $conn->connect_error); 
 
\t \t \t } 
 
\t \t \t // PHP for execution 
 
\t \t \t $sql = "SELECT id, bname, bicon, rafrica, rasia, roceania, reurope, rsouthamerica, rnorthamerica, traffic, revenue, profit FROM business LIMIT 1"; 
 
\t \t \t $result = $conn->query($sql); 
 

 
\t \t \t if ($result->num_rows > 0) { 
 
    \t \t \t // output data of each row 
 
    \t \t \t while($row = $result->fetch_assoc()) { 
 
     \t \t \t $b3name = $row["bname"]. "<br>"; 
 
     \t \t \t $b3icon = $row["bicon"]. ""; 
 
     \t \t \t $b3rafrica = $row["rafrica"]. "<br>"; 
 
     \t \t \t $b3rasia = $row["rasia"]. "<br>"; 
 
     \t \t \t $b3roceania = $row["roceania"]. "<br>"; 
 
     \t \t \t $b3reurope = $row["reurope"]. "<br>"; 
 
     \t \t \t $b3rsouthamerica = $row["rsouthamerica"]. "<br>"; 
 
     \t \t \t $b3rnorthamerica = $row["rnorthamerica"]. "<br>"; 
 
     \t \t \t $b3traffic = $row["traffic"]. "<br>"; 
 
     \t \t \t $b3revenue = $row["revenue"]. "<br>"; 
 
     \t \t \t $b3profit = $row["profit"]. "<br>"; 
 
    \t \t \t } 
 
\t \t \t } else { 
 
    \t \t \t echo "0 results"; 
 
\t \t \t } 
 

 
\t \t \t $output = array(
 
\t \t \t  'name' => $b3name, 
 
\t \t \t  'icon' => $b3icon, 
 
\t \t \t  'traffic' => $b3traffic 
 
\t \t \t); 
 
\t \t \t 
 
\t \t \t echo json_encode($output); 
 

 
?> 
 
</body> 
 
</html>

這裏是包含JSON解析AJAX：

\t \t function loadfacebook1() 
 
\t \t { 
 
\t \t \t var xmlhttp; 
 
\t \t \t if (window.XMLHttpRequest) 
 
    \t \t \t {// code for IE7+, Firefox, Chrome, Opera, Safari 
 
    \t \t \t xmlhttp=new XMLHttpRequest(); 
 
    \t \t \t } 
 
\t \t \t else 
 
    \t \t \t {// code for IE6, IE5 
 
    \t \t \t xmlhttp=new ActiveXObject("Microsoft.XMLHTTP"); 
 
    \t \t \t } 
 

 
\t \t \t xmlhttp.onreadystatechange=function() 
 
\t \t \t { 
 
\t \t \t if (xmlhttp.readyState==4 && xmlhttp.status==200) 
 
\t \t \t  { 
 
\t \t \t  document.getElementById("b1").innerHTML=xmlhttp.responseText; 
 
\t \t \t  } 
 
\t \t \t } 
 
    \t \t \t 
 
    \t \t \t xmlhttp.open("GET","getfacebook.php",true); 
 
\t \t \t xmlhttp.send(); 
 

 
\t \t \t var obj = JSON.parse(xmlhttp.responseText); 
 
\t \t \t document.getElementById("demo").innerHTML=obj.name + "<br>"; 
 
\t \t }

我我們荷蘭國際集團

<span id="demo">

顯示返回值，但我需要obj.name（和陣列的一些其它元件）分配給一個變量（多個），我可以使用來更新其他東西在頁面中。任何幫助將非常感激。

乾杯，

威爾

Answer 1

當AJAX響應交付你應該將收到的JSON解析成調用的函數（onreadystatechange的）

Answer 2

當你從PHP提供JSON結果，你應該排除HTML代碼。嘗試刪除以下，看看是否有幫助：

<!DOCTYPE html> 
<html> 
<head> 
</head> 
<body> 

和

</body> 
</html>