本文介紹了如何正確使用 PHP 將 MySQL 對象編碼為 JSON?的處理方法,對大家解決問題具有一定的參考價值,需要的朋友們下面隨著小編來一起學習吧!
問題描述
我正在嘗試遍歷 MySQL 對象并在另一個頁面上使用 ajax 調用來附加數據,但我無法讓 php 向回調返回有效的 JSON.
這個顯然行不通...
query($myQuery) or die($mysqli->error);$row = $result->fetch_assoc();回聲 json_encode($row);?>或者這個...
query($myQuery) or die($mysqli->error);while ( $row = $result->fetch_assoc() ){回聲 json_encode($row) .", ";}?> 解決方案
$data = array();while ( $row = $result->fetch_assoc() ){$data[] = json_encode($row);}回聲 json_encode( $data );這應該可以.此外,您可以使用 http://jsonlint.com/ 查看您的 JSON 輸出有什么問題.>
更新:使用 fetch_all() 也可能是個好主意
$data = $result->fetch_all( MYSQLI_ASSOC );回聲 json_encode( $data );I am trying to iterate through a MySQL object and use an ajax call on another page to append the data but I can't get the php to return valid JSON to the callback.
This one obviously doesn't work...
<?php
$db_host = "localhost";
$db_user = "blah";
$db_pass = "blah";
$db_name = "chat";
$mysqli = new MySQLi($db_host, $db_user, $db_pass, $db_name);
$myQuery = "SELECT * FROM users";
$result = $mysqli->query($myQuery) or die($mysqli->error);
$row = $result->fetch_assoc();
echo json_encode($row);
?>
Or this one...
<?php
$db_host = "localhost";
$db_user = "blah";
$db_pass = "blah";
$db_name = "chat";
$mysqli = new MySQLi($db_host, $db_user, $db_pass, $db_name);
$myQuery = "SELECT * FROM users";
$result = $mysqli->query($myQuery) or die($mysqli->error);
while ( $row = $result->fetch_assoc() ){
echo json_encode($row) . ", ";
}
?>
解決方案
$data = array();
while ( $row = $result->fetch_assoc() ){
$data[] = json_encode($row);
}
echo json_encode( $data );
This should do it. Also, you can use http://jsonlint.com/ to see what are the problems with your JSON output.
Update: using fetch_all() might be a good idea too
$data = $result->fetch_all( MYSQLI_ASSOC );
echo json_encode( $data );
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