14

I am having a ajax post call to a cakePhp Controller:

$.ajax({
                type: "POST",
                url: 'locations/add',
                data: {
                  abbreviation: $(jqInputs[0]).val(),
                  description: $(jqInputs[1]).val()
                },
                success: function (response) {
                    if(response.status === "success") {
                        // do something with response.message or whatever other data on success
                        console.log('success');
                    } else if(response.status === "error") {
                        // do something with response.message or whatever other data on error
                        console.log('error');
                    }
                }
            });

When I try this I get the following error message:

Controller actions can only return Cake\Network\Response or null.

Within the AppController I have this

$this->loadComponent('RequestHandler');

enabled.

the Controller function looks like this:

public function add()
{
    $this->autoRender = false; // avoid to render view

    $location = $this->Locations->newEntity();
    if ($this->request->is('post')) {
        $location = $this->Locations->patchEntity($location, $this->request->data);
        if ($this->Locations->save($location)) {
            //$this->Flash->success(__('The location has been saved.'));
            //return $this->redirect(['action' => 'index']);
            return json_encode(array('result' => 'success'));
        } else {
            //$this->Flash->error(__('The location could not be saved. Please, try again.'));
            return json_encode(array('result' => 'error'));
        }
    }
    $this->set(compact('location'));
    $this->set('_serialize', ['location']);
}

What do I miss here? Is there any additional settings needed?

6
  • 1
    Controller actions can only return Cake\Network\Response or null. what is so unclear about this error message? You obviously return a string return json_encode().
    – floriank
    Dec 8, 2016 at 14:52
  • sorry, I still don't get the point? I return an array, like in the example above? Dec 8, 2016 at 15:04
  • 1
    You don't. php.net/manual/en/function.json-encode.php And have you ever read this? book.cakephp.org/3.0/en/views/json-and-xml-views.html
    – floriank
    Dec 8, 2016 at 19:44
  • 1st don't return json just echo it so it will be printed in result. 2nd if you are not setting the header content type to json you have to mention it in the ajax like this dataType:'JSON'
    – Aman Rawat
    Dec 9, 2016 at 7:13
  • @AmanRawat No, you do not echo data from a controller action! You either return a response object, echo data in a template, or use a serialized view.
    – ndm
    Dec 9, 2016 at 14:25

8 Answers 8

22

Instead of returning the json_encode result, set the response body with that result and return it back.

public function add()
{
    $this->autoRender = false; // avoid to render view

    $location = $this->Locations->newEntity();
    if ($this->request->is('post')) {
        $location = $this->Locations->patchEntity($location, $this->request->data);
        if ($this->Locations->save($location)) {
            //$this->Flash->success(__('The location has been saved.'));
            //return $this->redirect(['action' => 'index']);
            $resultJ = json_encode(array('result' => 'success'));
            $this->response->type('json');
            $this->response->body($resultJ);
            return $this->response;
        } else {
            //$this->Flash->error(__('The location could not be saved. Please, try again.'));
            $resultJ = json_encode(array('result' => 'error', 'errors' => $location->errors()));

            $this->response->type('json');
            $this->response->body($resultJ);
            return $this->response;
        }
    }
    $this->set(compact('location'));
    $this->set('_serialize', ['location']);
}

Edit (credit to @Warren Sergent)

Since CakePHP 3.4, we should use

return $this->response->withType("application/json")->withStringBody(json_encode($result));

Instead of :

$this->response->type('json');
$this->response->body($resultJ);
return $this->response;

CakePHP Documentation

3
  • This: $this->response->type('json'); and $this->response->body($resultJ); helped me lot, thanks! Dec 9, 2016 at 11:50
  • I updated the anwser to include the validation errors. Dec 9, 2016 at 11:52
  • 2
    Worth noting that since CakePHP 3.4, this is no longer valid. You should instead use return $this->response->withType("application/json")->withStringBody(json_encode($result)); which allows for passing a string to the immutable response. Jul 30, 2018 at 2:03
21

Most answers I've seen here are either outdated, overloaded with unnecessary information, or rely on withBody(), which feels workaround-ish and not a CakePHP way.

Here's what worked for me instead:

$my_results = ['foo'=>'bar'];

$this->set([
    'my_response' => $my_results,
    '_serialize' => 'my_response',
]);
$this->RequestHandler->renderAs($this, 'json');

More info on RequestHandler. Seemingly it's not getting deprecated anytime soon.

UPDATE: CakePHP 4

$this->set(['my_response' => $my_results]);
$this->viewBuilder()->setOption('serialize', true);
$this->RequestHandler->renderAs($this, 'json');

More info

10
  • 1
    Also, my_response can be any valid key name, just needs to match in both places. Aug 16, 2018 at 6:24
  • Also, this worked on CakePHP 3.6.10 (thought I should clarify) Sep 10, 2018 at 12:02
  • It's not works without the component ! so It's not a general solution.
    – MSS
    Apr 22, 2019 at 13:31
  • @MSS what component? Apr 24, 2019 at 4:55
  • RequestHandler component is neaded
    – MSS
    Apr 24, 2019 at 7:51
8

there are few things to return JSON response:

  1. load RequestHandler component
  2. set rendering mode as json
  3. set content type
  4. set required data
  5. define _serialize value

for example you can move first 3 steps to some method in parent controller class:

protected function setJsonResponse(){
    $this->loadComponent('RequestHandler');
    $this->RequestHandler->renderAs($this, 'json');
    $this->response->type('application/json');
}

later in your controller you should call that method, and set required data;

if ($this->request->is('post')) {
    $location = $this->Locations->patchEntity($location, $this->request->data);

    $success = $this->Locations->save($location);

    $result = [ 'result' => $success ? 'success' : 'error' ];

    $this->setJsonResponse();
    $this->set(['result' => $result, '_serialize' => 'result']);
}

also it looks like you should also check for request->is('ajax); I'm not sure about returning json in case of GET request, so setJsonResponse method is called within if-post block;

in your ajax-call success handler you should check result field value:

success: function (response) {
             if(response.result == "success") {
                 console.log('success');
             } 
             else if(response.result === "error") {
                    console.log('error');
             }
         }
1
  • that one is a handy answer ! BRAVO Dec 9, 2016 at 11:55
1

In the latest version of CakePHP $this->response->type() and $this->response->body() are deprecated.

Instead you should use $this->response->withType() and $this->response->withStringBody()

E.g:

(this was pinched from the accepted answer)

if ($this->request->is('post')) {
    $location = $this->Locations->patchEntity($location, $this->request->data);
    if ($this->Locations->save($location)) {
        //$this->Flash->success(__('The location has been saved.'));
        //return $this->redirect(['action' => 'index']);
        $resultJ = json_encode(array('result' => 'success'));

        $this->response = $this->response
            ->withType('application/json') // Here
            ->withStringBody($resultJ)     // and here

        return $this->response;
    }
}

Relevant Documentation

0
0

When you return JSON data you need to define the data type and response body information like below:

$cardInformation = json_encode($cardData);
$this->response->type('json');
$this->response->body($cardInformation);
return $this->response;

In you case just change this return json_encode(array('result' => 'success')); line with below code:

$responseResult = json_encode(array('result' => 'success'));
$this->response->type('json');
$this->response->body($responseResult);
return $this->response;
0

RequestHandler is not required to send json. In controller's action:

$this->viewBuilder()->setClassName('Json');
$result = ['result' => $success ? 'success' : 'error'];
$this->set($result);
$this->set('_serialize', array_keys($result));
0

As of cakePHP 4.x.x the following should work assuming that your controller and routes are set as shown below: controller: <your_project_name>/src/Controller/StudentsController.php

public function index()
    {
        $students = $this->Students->find('all');
        $this->set(compact('students'));
        $this->viewBuilder()->setOption('serialize',['students']);
    }

Routes: <your_project_name>/config/routes.php

<?php

use Cake\Routing\Route\DashedRoute;
use Cake\Routing\RouteBuilder;

/** @var \Cake\Routing\RouteBuilder $routes */
$routes->setRouteClass(DashedRoute::class);

$routes->scope('/', function (RouteBuilder $builder) {
 
    $builder->setExtensions(['json']);
    $builder->resources('Students');
    $builder->fallbacks();
});

Run bin/cake server and visit http://localhost:8765/students.json using postman/insomnia or just the normal browser. See further documentation for setting up Restful controllers and Restful Routing

Don't forget to set the method to GET on postman and insomnia.

0

Though I'm not a CakePHP Guru, in my case i'm using cake > 4 and I need some results by ajax call. For this, from my controller i wrote,

echo json_encode(Dashboard::recentDealers()); die;

and in my JS file i just need to parse the data using

JSON.parse(data)

The ajax call like

 $.get('/recent-dealers', function (data, status) {
   console.log (JSON.parse(data)); });
});

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.