如何使用AJAX调用PHP函数,并获取返回值?
I want to call a specific function from my database.php file, and get the returned value. Here I am trying to do this:
js:
function submit_verification_code(){
$.ajax({
url: "database.php",
type: "post",
data: ({
'code': code_entered,
}),
dataType:"text",
context: this,
success : function(response) {
console.log('RESPONSE: ' + response);
//OPTIONAL_FUNCTION_TO_DO_SOMETHING_WITH_THE_RESPONSE(response);
},
error: function(jqXHR,textStatus,errorThrown){
//OPTIONAL_FUNCTION_TO_DO_SOMETHING_WITH_THE_ERROR(jqXHR);
console.log(errorThrown);
}
});
}
database.php
if(isset($_POST['code'])){
does_code_match($_POST['code']);
}
function does_code_match($code){
connect();
die('test');
$sql = 'select * from emailstobeverified where email=';
$sql .= "'" . $_SESSION['email'] . "'";
$sql .= ' and verification_code=';
$sql .= $code;
$sql .= ';';
$count = query($sql)->num_rows;
die(strval($count));
disconnect();
echo strval($count);
exit;
//Once you've outputted, make sure nothing else happens
}
does_code_match function executes, and the console log prints <br /> when console.log("RESPONSE" + response) is called. But I want it to print the value of $count
EDIT:
There is a problem with connect() function. If I call die('test') just before calling connect(), it returns a response! It says "hello world" in the console. If I call it directly AFTER calling connect(), it prints this:
<b>Warning</b>: Use of undefined constant conn - assumed 'conn' (this will throw an Error in a future version of PHP) in <b>C:\xampp2\htdocs\database.php</b> on line <b>72</b><br />
<br />
<b>Warning</b>: Use of undefined constant dbhost - assumed 'dbhost' (this will throw an Error in a future version of PHP) in <b>C:\xampp2\htdocs\database.php</b> on line <b>72</b><br />
<br />
<b>Warning</b>: Use of undefined constant dbuser - assumed 'dbuser' (this will throw an Error in a future version of PHP) in <b>C:\xampp2\htdocs\database.php</b> on line <b>72</b><br />
<br />
<b>Warning</b>: Use of undefined constant dbpass - assumed 'dbpass' (this will throw an Error in a future version of PHP) in <b>C:\xampp2\htdocs\database.php</b> on line <b>72</b><br />
<br />
<b>Warning</b>: Use of undefined constant db - assumed 'db' (this will throw an Error in a future version of PHP) in <b>C:\xampp2\htdocs\database.php</b> on line <b>72</b><br />
test
and the response is <br />
Connect function:
$dbhost = "localhost";
$dbuser = "root";
$dbpass = "";
$db = "example";
$conn;
function connect(){
$GLOBALS[conn] = new mysqli($GLOBALS[dbhost], $GLOBALS[dbuser], $GLOBALS[dbpass],$GLOBALS[db]) or die("Connect failed: %s
". $GLOBALS[conn] -> error);
}
When referencing array keys, you must enclose them in quotes, change your function to the following:
function connect(){
$GLOBALS['conn'] = new mysqli($GLOBALS['dbhost'], $GLOBALS['dbuser'], $GLOBALS['dbpass'],$GLOBALS['db']) or die("Connect failed: %s
". $GLOBALS['conn'] -> error);
}
Also, in general, this is a strange way of storing global variables, you should look into using the $_ENV array instead.
Change your jQuery to the following:
$.ajax({
url: "database.php",
type: "post",
dataType: "json",
data: ({
code: code_entered,
}),
context: this,
success : function(response) {
console.log(response);
//OPTIONAL_FUNCTION_TO_DO_SOMETHING_WITH_THE_RESPONSE(response);
},
error: function(jqXHR,textStatus,errorThrown){
console.log(jqXHR);
//OPTIONAL_FUNCTION_TO_DO_SOMETHING_WITH_THE_ERROR(jqXHR);
}
});
Then change your PHP to the following:
if(isset($_POST['code'])){
does_code_match($_POST['code']);
//no need to call echo again
}
function does_code_match($code){
connect();
$sql = 'select * from emailstobeverified where email=';
$sql .= "'" . $_SESSION['email'] . "'";
$sql .= ' and verification_code=';
$sql .= $code;
$sql .= ';';
error_log('Adding code to be verified with query: ' . $sql);
$count = query($sql)->num_rows;
disconnect();
//I can't speak for the above code, I'm assuming it works.
error_log("CODE MATCHES? " . $count);
error_log(json_encode($count));
//Not sure why you're doing this, but I assume it's for testing only
echo json_encode($count);
exit;
//Once you've outputted, make sure nothing else happens
}
What kind of stuff do you see in your console.log(response); output? Once you start developing your environment, you will probably start to send back an array of responses instead of just a value.
just echo $count
$count = query($sql)->num_rows;
disconnect();
echo $count;
If you encode the count, on the receiving end, you will have to decode the json first.