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I am trying to send json data from an HTML form back to php server via a POST method. Here is my code. It goes to fail block in callback function. Firebug console(ctrl+shift+J) displays no error.

<script> 
function ADDLISITEM(form)
{ 
var options = form.txtInput.value;
options = JSON.stringify(options);
var url = "conn_mysql.php"
var request = null;
request = new XMLHttpRequest();
request.open("POST", url, true);
request.onreadystatechange = function(){
    if (request.readyState == 4) {
            if (request.status == 200) {
                alert(request.responseText);
        } else {
            alert(request.status); 
        }
    }
}
request.setRequestHeader("Content-Type", "application/x-www-form-urlencoded");
request.send("options=" + encodeURIComponent(options).replace(/%20/g, '+'));
}
</script>

conn_mysql.php

<?php  
    $json = $_POST['options'];
    $options = json_decode($json);
    $username = "user";  
    $password = "********";  
    $hostname = "localhost";  
    $dbh = mysql_connect($hostname, $username, $password) or die("Unable to 
    connect to MySQL");  
    $selected = mysql_select_db("spec",$dbh) or die("Could not select first_test");
    $query1 = "INSERT INTO user_spec (options) VALUES ('$options')";
    mysql_query($query1);
    //if(!mysql_query($query1, $dbh))
    //{die('error:' .mysql_error());} echo'success';
    $query = "SELECT * FROM user_spec";  
    $result=mysql_query($query);     
    $outArray = array(); 
     if ($result)
     { 
       while ($row = mysql_fetch_assoc($result)) $outArray[] = $row; 
     } 
      echo json_encode($outArray);
?> 
share|improve this question
1  
You want us to write you the code? –  Richards Oct 31 '10 at 12:42
    
+1 Richards, @Harmen Stackoverflow is an help site... –  Kyle Hudson Oct 31 '10 at 13:28
    
no, with your help –  XCeptable Oct 31 '10 at 16:32
    
What's wrong with jQuery? –  pt2ph8 Nov 1 '10 at 21:10
    
It might help to know what the request.status you're receiving is. If it's not 200, then what? 404? 403? 500? –  stevelove Nov 1 '10 at 21:30
show 4 more comments

1 Answer

up vote 1 down vote accepted

Your request shows "fail" because the onreadystatechange function is called multiple times with different readyStates. Here is an improved, better indented version:

request.onreadystatechange = function(){
    if (request.readyState == 4) {
        if (request.status == 200) {
            alert('http.responseText');
        } else {
            alert('fail'); // fails here
        }
    }
}

You should only check the status when readyState reached 4.

Moreover, when assigning parameters to a URL, you should use encodeURIComponent to properly encode the parameters (e.g., when sending & in a value the parser thinks it marks the beginning of a new key/value pair). And when using POST as method, you should change all instances of %20 to + per the spec and send your data as a parameter to the send function and not concatenate it to the URL:

var url = "conn_sql.php";
…
request.send("options=" + encodeURIComponent(options).replace(/%20/g, '+'));

UPDATE: To process the sent string in PHP, use json_decode, e.g.:

<?php
    $json = $_POST['options'];
    $options = json_decode($json);
    // now $options contains a PHP object
?>

(Also see How to decode a JSON String)

share|improve this answer
    
thank you very much Marcel for all these valuable advises:-) its working now. there was a php script name mistake too. Now I have to catch this in POST in php. I think I will have to start new question if I get problem. –  XCeptable Nov 1 '10 at 21:52
    
Also it was not printing any response with http.responseText, I use request.responseText & it start printing output. –  XCeptable Nov 1 '10 at 21:54
    
@XCeptable: Indeed, I missed that one, but then you'll have to remove the single quotes around that variable name, too. Anyway, you're welcome. I'm glad you succeeded. –  Marcel Korpel Nov 1 '10 at 22:49
    
there is still one problem. the 'alert (request.responseText)' should print the text JSON.stringify(options) which we are sending to url but it is printing the data that the program receives using getJson from same php script.it was left out yesterday night as i was not expecting if its going into success block then again it will not print what it suppose to be. –  XCeptable Nov 2 '10 at 9:26
    
@XCeptable: No, that's not true. The variable request.responseText should print the received data from your PHP script. –  Marcel Korpel Nov 2 '10 at 9:55
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