83

I've this controller, and the function read($q) return error Call to undefined function sendRequest()

<?php

class InstagramController extends BaseController {

/*
|--------------------------------------------------------------------------
| Default Home Controller
|--------------------------------------------------------------------------
|
| You may wish to use controllers instead of, or in addition to, Closure
| based routes. That's great! Here is an example controller method to
| get you started. To route to this controller, just add the route:
|
|   Route::get('/', 'HomeController@showWelcome');
|
*/

public function read($q)
{
    $client_id = 'ea7bee895ef34ed08eacad639f515897';

    $uri = 'https://api.instagram.com/v1/tags/'.$q.'/media/recent?client_id='.$client_id;
    return sendRequest($uri);
}

public function sendRequest($uri){
    $curl = curl_init($uri);
    curl_setopt($curl, CURLOPT_RETURNTRANSFER, true);
    curl_setopt($curl, CURLOPT_SSL_VERIFYPEER, 0);
    curl_setopt($curl, CURLOPT_SSL_VERIFYHOST, 0);
    $response = curl_exec($curl);
    curl_close($curl);
    return $response;
}

}

I'm assuming it's because I'm referencing the function in the wrong manner, but I can't find any explanations for how to do it.

2
  • You probably want to make sendRequest protected. Jul 25, 2013 at 15:00
  • If you call an member var in php you do that with $this-> . And in your function read you call the function sendRequest without $this. Try: return $this->sendRequest($url); Jan 13, 2021 at 9:56

4 Answers 4

187

Try:

return $this->sendRequest($uri);

Since PHP is not a pure Object-Orieneted language, it interprets sendRequest() as an attempt to invoke a globally defined function (just like nl2br() for example), but since your function is part of a class ('InstagramController'), you need to use $this to point the interpreter in the right direction.

5
  • @KristofferNolgren I suggest you read more on OOP. $this refers to the current InstagramController object, which has the sendRequest() method on it.
    – Blue Genie
    Jul 25, 2013 at 15:02
  • Becous sendRequest() is a function inside class. It's basic use in PHP. Read more about class. Jul 25, 2013 at 15:02
  • 9
    PHP interprets sendRequest as an attempt to invoke a globally defined function (just like nl2br() for example), but since you defined your function inside of a class ('InstagramController'), you need to use $this to point the interpreter in the right direction.
    – haim770
    Jul 25, 2013 at 15:09
  • PHP is different from C or Java, where you would do as your original post. I think you're assuming it works the same because the language/syntax looks similar in many other ways.
    – user985366
    Mar 11, 2016 at 13:12
  • Worked just fine! However how do I concatenate the outputs of two functions? I tried to show contents from getTitle and getContent in the following way: return $this->getTitle() . $this->getContent() inside another function called getContent() which gave me error. Oct 25, 2016 at 16:17
18

Yes. Problem is in wrong notation. Use:

$this->sendRequest($uri)

Instead. Or

self::staticMethod()

for static methods. Also read this for getting idea of OOP - http://www.php.net/manual/en/language.oop5.basic.php

1

You can call the method with $this->methodNameYouWantToCall($thing_you_want_to_pass).

In Your case you can something like this......

return $this->sendRequest($uri);
-3

To call a function inside a same controller in any laravel version follow as bellow

$role = $this->sendRequest('parameter');
// sendRequest is a public function
1
  • Is there anything new you want to add? There are two other answers, both years old, giving the same advice
    – Nico Haase
    Jan 13, 2021 at 9:46

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