Hot answers tagged

4

You are using <select> id as category But In jquery you are calling $("#select1").change(function(event) like this . You just need to change $("#select1").change(function(event) to $("#category").change(function(event)


3

You also need to put single quotes, when you push data in your supplist. supplist.supplements.push({'supplement':'supplement', 'dose':'dose', 'dosewieght':'doseweight'}); Otherwise it throws javascript error that supplement is not defined, because it treats supplement as variable, not as a string. Now in your php code You need to decode and your json and ...


3

You need to guard null values if you get the data async {{element && element[0].name}} {{element && element[0].pass}} {{element && element[1].title}}


2

If you want progress status: xhr: function () { var xhr = $.ajaxSettings.xhr(); // call the original function xhr.addEventListener('progress', function (e) { if (e.lengthComputable) { var percentComplete = e.loaded / e.total; // Do something with download progress } }, false); return xhr; }


2

When calling $.ajax(options) you can set global: false in options to prevent .ajaxStart() from being triggered. global Whether to trigger global Ajax event handlers for this request. The default is true. Set to false to prevent the global handlers like ajaxStart or ajaxStop from being triggered. This can be used to control various Ajax Events....


2

Why doesn't 1 execute first and why is 1 executed 6 times? From the documentation for .fadeOut, the second parameter is "A function to call once the animation is complete, called once per matched element". So in this case the function will be called after ~100ms (the delay you provide as the first parameter) and will be called six times (once for each ...


2

You can inspect the error trying to see the JSON. In Google Chrome you can see it inspecting the element, reloading the page and then in the Network tab, XHR filter. You can see it in the next image


2

As per your update you need to include Input within your controller simply using use App\Http\Controllers\Input; at the top of the file after namespace. Instead of using Input facade you can use Request facade for better coding standards


2

You seem to be looking for an array. Just define a variable name as an array. And push all the values into it, and once it has all the values then send it in the ajax request. name = []; name.push("2"); name.push("3"); $.ajax({ type : "POST", url : 'abc.action', data : { name : name }, error : function() { .....


2

This answer will have main load both genders initially. Rather than use several gender specific URLs the gender buttons will return the html of the selected gender and dynamically change the html of the page. main_view.php (with Javascript included) <div class="container"> <div class="row"> <div class="col-md-3 side_menu"> &...


1

Before, you were assigning $row array items to variables, and then not using them until after the loop. After the loop, you used those variables, but it would only have the last values. You must append your items to an array ('list') inside of your array and then json_encode() your result from the loop to get the desired effect. <?php $conn = ...


1

You need to push $name and $category variables into another array - currently you're simply overriding those values in your while loop. Do something like: $list = array(); while($row = mysqli_fetch_array($result)) { $list[] = array('name'=>$row['name'], 'category_id'=>$row['category_id']); } $data = array('list'=>$list); echo json_encode($data);


1

Have a read about PHP arrays here - http://php.net/manual/en/function.array.php Also before you jump straight to json_encode($data), try var_dump($data) see what you're working with. You need to build the array in your while loop, $data = []; while($row = mysqli_fetch_array($result)) { $data['list'][] = [ 'name' => $row['name'], '...


1

xhttp.open("POST", "ajax2.php?name"=+d, true); I think you got a typo there, put the = into the quote marks. xhttp.open("POST", "ajax2.php?name=" + d, true);


1

It should be rawData[i].name for (var i = 0, len = rawData.length; i < len; i++) { var imageName = rawData[i].name; console.log(imageName); }


1

Use AJAX. I wrote about it in a previous post. Add an event listener to the select box, so when an item is picked, you can make an AJAX request to the PHP site to get the data you need. json_encode the data (make it into an array first), and then with jQuery, you can put the data into the form. Bringing data from html to php


1

You may create an action method which returns the HTML markup needed to render your table. Let's create a view model using which we will pass the table data. public class ItemVm { public string ItemId {set;get;} public string Line {set;get;} public string Supplier {set;get;} } Now in your action method, get your data from the table, load to a list ...


1

I want the $.when to occur only after AddRoleToUser function finished. That's what your current code does. But assuming AddRoleToUser starts an asynchronous process, and you want to wait until that process completes, AddRoleToUser will need to accept a callback or return a promise. If we assume it returns a promise, then you can have your call to $.when ...


1

To use jQuery in console it's need to be already included to the web page (in HTML via script tag). If you want to use jQuery in console on any page, use next code in console: var jq = document.createElement('script'); jq.src = "https://ajax.googleapis.com/ajax/libs/jquery/2.1.4/jquery.min.js"; document.getElementsByTagName('head')[0].appendChild(jq); // ....


1

You have to add the JQuery to make the $ functions work, to check in console add the Jquery script dynamically and call your ajax function. (function(){ var newscript = document.createElement('script'); newscript.type = 'text/javascript'; newscript.async = true; newscript.src = 'https://ajax.googleapis.com/ajax/libs/jquery/1.6.1/jquery.min....


1

You are using a JQuery function, so you need to include JQuery in the page, if it's not already there. Run this before your code: var x = document.createElement('script'); x.src = 'https://cdnjs.cloudflare.com/ajax/libs/jquery/3.1.0/jquery.js'; document.getElementsByTagName("head")[0].appendChild(x);


1

Why your URL is /Email/Email/statusChangeEmail? It should be /Email/statusChangeEmail. The /Email means EmailController and /statusChangeEmail means controller action statusChangeEmail .


1

Why don't you add the error-message divs in your html (inside main-panel, give them some ids, lets say error1, error2) as hidden <div class="error-message" id="someID' hidden>...</div> and then when you get an error instead of replace just call error: function (data,textStatus) { $('#main-panel').find('*').not('.error-message').remove();//...


1

You can have many solutions. I give you two: The first solution (See javascript) is good for small things (like your error message). The second is good for lagger thing, such as creating a form dynamically. This is called templating. // Solution 1 $('#fulfillButton').bind('click',function() { $('#main-panel').replaceWith($('<div />')....


1

Since you're not using the #show action, you can use the only or except arguments. something like this should work: resources :advertisements, except: [:show] do member do get :get_random_ad end end However, if you're only using :get_random_ad, you can omit the resource and instead use get :random_ad, to: 'advertisements#...


1

As you mentioned, the solution is to parse the remote html (Beautiful Soup is great for this) and serialize it to JSON on the server. One last thing: You will continue to get the same "No 'Access-Control-Allow-Origin' header is present on the requested resource" error if you are opening the "index.html" file directly in the browser. You need to serve your ...


1

I got the Answer now its working perfectly. here i am going to share my answer. Here is Jquery: $('#myform').submit(function (event) { dataString = $("#myform").serialize(); $.ajax({ type:"POST", url:"<?php echo base_url(); ?>task/sohan_by_date", data:dataString, success:function (data) { $('#task')...


1

As I said in my comment, laravel doesn't load automatically all the relations so you have to do that. if you would like to load every time subcategories into your products so you have to update you model and add a with attribute like so : //Product model protected $with = ['subcategory']; Or if you just want to do this just once, so you have to do ...


1

Return the xhr object and execute abort on it in a another observable. var uploadObservable = fileUpload(); var uploadRequest; uploadObservable.subscribe( function (x) { uploadRequest = x; }, function (err) { console.log('Error: %s', err); }, function () { console.log('Completed'); }); var input = $('#cancelBtn'); var cancelBtn = ...


1

When you create an Observable you can specify the unsubscribe behavior by returning a Subscription or a function from builder function: fileUpload(file: File): Observable<any> { return new Observable( observer => { let xhr:XMLHttpRequest = new XMLHttpRequest(); xhr.onreadystatechange = () => { if (xhr.readyState ==...



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