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4

Ajax is asynchronous. You are calling populateArray and then immediately logging diseaseNameArray to the console before the ajax request completes, so of course it's going to be undefined -- you're not giving the ajax request time to complete. You need to log to console in success. Or make the ajax call synchronous with async: false.


3

As there are too many records it taking too much time , to avoid suggestion is Make use of Pagination or Make use of parallel execution by firing multiple ajax request i.e. request one fetch 1 to 3000 data and parallel request fetch 3001 to 6000 data.. Example Code : might having syntax error ajax: { url: "/delete.php", dataType: ...


3

There are two ways you can do. Web Sockets. Using the HTTP 101 Switching Protocols, you can have a persistent connection to the server and work out on the changes to the view. Long Polling. If your server is hard enough for no DDoS attacks, you can use this method to continuously ping the server, and get the latest info. Does the above two methods help? ...


3

Try This Code You'll get the answer; if(isset($_GET['id'])) { $id = $_GEt['id']; } http://php.net/manual/en/reserved.variables.get.php


3

isset returns true or false, so you can use short condition with a ternary operator, like this: $id = isset($_GET['id']) ? $_GET['id'] : null;


2

use isset like this: if(isset($_GET['id'])) $id = $_GET['id'];


2

Seems like there are few issues On the setRequestHeader (which takes 2 arguement, but were only given one in your sample code) hr.setRequestHeader("Content-type","application/x-www-form-urlencoded"); Your php code needs to return a json format e.g echo '{"message":"'.$_POST['test'].'"}'; Your page needs to get the value from the parsed json (note the ...


2

Try as (Not Tested). You can parse your JSON data using $.parseJSON success: function(data){ // document.write(data); //just do not use document.write var fd_values = $.parseJSON(data); document.getElementById("agent_name").value = fd_values[0].name; // unique _id ...


2

Could you split your steps into 5 seperate requests? Or perhaps, everythime you complete a step in your php code could create a row in a database or something simliar. A seperate ajax request could then check or wait for this row addition and report back the progress to the user.


2

You need to either convert id to a string, or keys to an int. Try this: foreach (string keys in Response.Form.AllKeys) { var m = db.Quiz.Single(h => h.id.ToString() == keys); } Or this: foreach (string keys in Response.Form.AllKeys) { var m = db.Quiz.Single(h => h.id == Int16.Parse(keys)); } Also, you should look in to using ModelBinding ...


2

Maybe this helps: $(".ident").click(function(){ var id = $(this).attr('auction'); $.ajax({ url:'../bid/inscription', dataType:'json', type:'get', cache:true, data: { id: id }, success: function (response) { ...


2

AJAX stands for Asynchronous Javascript And Xml. Because it is asynchronous, your data has not necessarily reached your outputHandler function. You should probably create a function that runs after outputHandler, and is called at the end of outputHandler. You should put your console.log in this second function. That way, it is guaranteed to get the data. ...


1

That error object isn't going to have a status code because it's an error object generated by the view engine. If that error is populated you can pretty much assume it's a 500 error because the view engine failed to compile a view for some reason. For example, if you're using Jade, that error object will be populated if you try to have Jade compile a ...


1

How about making use of the data attributes to make the process simpler? <div class="page1" data-answer-div="results-one"> <form class="sampler"> <input type="radio" name="sex" value="male" checked="checked" data-answer="a1" />Male <input type="radio" name="sex" value="female" data-answer="a2" />Female ...


1

I'd try something like that. What problem exactly do you have with AJAX? $('#yourform').on('submit', function(e) { e.preventDefault(); var form = $(this); $.ajax({ type: form.prop('method'), url: form.prop('action'), data: form.serialize(), success: function(result) { alert('success'); } } ...


1

To do seperate requests you could write something like this (assuming you have jQuery loaded into $): $.get('step1.php', function(data){ $('#prog').css({width:data + '%'}); $.get('step2.php', function(data){ $('#prog').css({width:data + '%'}); //[...and so on] }); }); Then in step1.php [...] step5.php: <?php //Do some ...


1

use params instead of data; data is used for post requests what Brian Glaz said is right


1

Cross-origin requests simply are not allowed by default. The remote server may provide permission to your application through CORS or by supporting Ajax alternatives like JSONP. Edited: The only (easy) way to get cross-domain data using AJAX is to use a server side language as the proxy as Andy E noted. Here's a small sample how to implement that using ...


1

For this purpose You can use localstorage save your json in localstorage variable and fetch it at any moment localStorage.setItem('favoriteflavor','vanilla'); /*how to save data in localstorage*/ var taste = localStorage.getItem('favoriteflavor');/*how to fetch data from localstorage*/ alert(taste); localStorage.removeItem('favoriteflavor');/*how to delete ...


1

There are two three things i would suggest: A.) Change the id of the target div. as you have attendYes and you are using txtHint. B.) @ js You can try sending the query in the .send() like below. xmlhttp.open("GET","attending.php",true); xmlhttp.send("q=" + encodeURIComponent(str)); C.) and @ php: You should not use intval() although i am not very ...


1

There's no element like document.getElementById("txtHint"). Update it with correct one: document.getElementById("attendYes").innerHTML = xmlhttp.responseText;


1

You need to create a global variable to store data from the first request and then you'll be able to use that data. somefunction = function() { var response1; $.get('/path_to_somewhere1', function(data) { // Store just given response response1 = data; $.get('/path_to_somewhere2', function(data) { ...


1

You need to modify content-type to the correct format <!doctype html> <html> <head> <title>Testing</title> </head> <body> <h1 id="test">Testing</h1> <input type="text" id="search" placeholder="search"/> <div id="target"> </div> <script type="text/javascript"> ...



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