I have this function that requesting and getting data from server

function TaskFinishedRequestAccepted(requestId, empTaskAssignCompletionId, selectedFinishedTaskMiainId, selectedFinishedTaskStautsDetail, requestByEmpId){
    var go_path = "ESP.php?action=tfrq&vars=5&var1=" + requestId +
        "&var2=" + empTaskAssignCompletionId + "&var3=" + selectedFinishedTaskMiainId + "&var4=" + selectedFinishedTaskStautsDetail + "&var5=" + requestByEmpId;
    $jq.get(go_path,{},function(data) {

    });

}

And I am calling this function in order to get it's return data in this way, code given below (which is wrong, seeking help for it)

$.when(TaskFinishedRequestAccepted(2,3,4,5,33)).done(function(return){
console.log(return);
});

But I don't know how to return actually? So that I can get its response in done function.

  • Don't use return as the name of your argument... check function(return) – Dekel Aug 26 '17 at 12:24
  • sorry return wasn't parameter, i have removed that – Muhammad Faizan Khan Aug 26 '17 at 12:57
  • 1
    Update the code to be the relevant to what you have now and ask the question – Dekel Aug 26 '17 at 12:57
  • @Dekel above is actual code – Muhammad Faizan Khan Aug 28 '17 at 4:20
up vote 0 down vote accepted

Simply return the deferred object from your function. There's no need to use when. Also, jQuery offers a much more convenient way to construct URL query parameters...

return $jq.get('ESP.php', {
  action: 'tfrq',
  vars: 5,
  var1: requestId,
  var2: empTaskAssignCompletionId,
  var3: selectedFinishedTaskMiainId,
  var4: selectedFinishedTaskStautsDetail,
  var5: requestByEmpId
})

and

TaskFinishedRequestAccepted(2,3,4,5,33).done(function(res) {
  console.log(res);
});
  • Yes its working, i were not familiar with this way. Thanks – Muhammad Faizan Khan Aug 28 '17 at 5:25

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