art*_*son 2 html javascript php json mysqli
我遇到一个问题,从PHP查询返回的JSON无效,我不确定为什么; 我还在学习.当datatype排除时,以下代码返回:
{"Customer_ID":"0", "FirstName":"John", "LastName":"Smith"}
{"Customer_ID":"1", "FirstName":"Jane", "LastName":"Smith"}
否则它返回:
SyntaxError: "JSON.parse: unexpected non-whitespace character after ..."
我认为这可能是因为记录没有在单个JSON响应中返回,但我不能看到这是问题,因为并发响应是JSON.有任何想法吗?有什么建议?随意指出语义问题.
HTML:
getRecord("*", "customer", "");
JavaScript的:
function getRecord(field, table, condition) {
var request = $.ajax({
url: "./handler.php",
method: "GET",
dataType: "JSON",
cache: "false",
data: {
action: "SELECT",
field: `${field}`,
table: `${table}`,
condition: `${condition}`,
},
});
request.done(function(data, status, xhr) {
console.log(data, status, xhr);
});
request.fail(function(xhr, status, error) {
console.log(xhr, status, error);
});
};
PHP:
<?php
# IMPORT SETTINGS.
include "settings.php";
# FUNCTION DISPATCHER.
switch($_REQUEST["action"]) {
case "SELECT":
getRecord($conn);
break;
default:
printf('Connection Error: Access Denied.');
mysqli_close($conn);
}
# LIST OF COLUMNS THAT WE NEED.
function getRecord($conn) {
$table = $_REQUEST["table"];
$field = $_REQUEST["field"];
$condition = $_REQUEST["condition"];
if (!empty($condition)) {
$query = "SELECT $field FROM $table WHERE $condition";
} else {
$query = "SELECT $field FROM $table";
}
if ($result = mysqli_query($conn, $query)) {
while ($record = mysqli_fetch_assoc($result)) {
echo json_encode($record);
}
}
# CLOSE THE CONNECTION.
mysqli_close($conn);
}
?>
您的JSON无效,因为它包含多个对象.您需要做的是将所有结果放入一个数组中然后回应json_encode它.尝试这样的事情:
$records = array();
if ($result = mysqli_query($conn, $query)) {
while ($records[] = mysqli_fetch_assoc($result)) {
}
}
echo json_encode($records);
这将为您提供如下所示的输出:
[
{"Customer_ID":"0", "FirstName":"John", "LastName":"Smith"},
{"Customer_ID":"1", "FirstName":"Jane", "LastName":"Smith"}
]
并且您可以通过类似的方式访问Javascript中的每个元素
let customer = data[0].FirstName + ' ' + data[0].LastName;