0

Basically I am trying to return a list of names gotten from an Ajax request. When there is only one name, it works perfectly. However with multiple names I start seeing behavior I can't explain.

function getIDFromInput(input){
    sendToID = new Array; //An Array of "Name :Id" 
    $.ajax({
        type:"GET",
        url: "user_search.php",
        contentType:"application/x-www-form-urlencoded; charset=utf-8",
        dataType:"json",
        async:false,    
        data: "q="+input,
        success:function(data){
            if(data.success){
                var userLength = data.success.length;                   
                if(userLength == 1){ // For one user everything works fine
                    var userNum = data.success.users[0];                        
                    var userName = data.success.usersNames[userNum];                        
                    sendToID[0] = userName + " :"+userNum;

                }
                else if(userLength > 1){ // Multiple users it fails

                    for(i = 0; i < userLength; i++){

                        var userNum = data.success.users[i];
                        //this call works
                        var userName = data.success.usersNames[userNum];
                        //this call fails, even though it seems to be the same call as above
                        sendToID[i] = userName + " :"+userNum;
                    }                       
                }
                else if(userLength < 1){ // never enter here
                }
            }           
        },
        error:function(data){ //After it fails it goes into here

        }
    });
    return sendToID;
}

The JSON I am passing back for < 2, ( The one that doesn't work, is below)

{"success":{"length":2,"userNames":[{"5":"Travis Baseler"},{"6":"Ravi Bhalla"}],"users":["5","6"]}}

The JSON I am passing back the one that does work is

{"success":{"length":"1","usersNames":{"6":"Ravi Bhalla"},"users":["6"]}}

Does anyone know why the first works but the second doesn't?

  • 4
    You should be avoiding synchronous AJAX requests when possible – meagar Aug 25 '11 at 20:05
  • 2
    @meagar: I know I'm going out on a limb here, but I'm sure there is a reason for it being synchronous. If he didn't know anything about JS/jQuery he wouldn't even know the option exists. – josh.trow Aug 25 '11 at 20:08
  • Once you get the data format straightened out so it's the same for all cases, you don't need the if/else at all. You can do all three branches from the for loop. The for loop handles length of 0, length of 1 and length of > 1 all automatically. – jfriend00 Aug 25 '11 at 20:09
  • @josh Yet, here he is using synchronous AJAX calls. – meagar Aug 25 '11 at 20:09
  • 1
    @Shane Chin: AAAAAAAUGH you're killing me man :) It must have been a copy/paste job then... – josh.trow Aug 25 '11 at 20:39
7

in your first example, "usernames" is an array, and in the seconds one it's an object
(notice the [] in the first example which don't exist in the second one).
see @meagar's comment which explains this better than I did.

some further points:
1. you're using numbers as object property names; this (IMO) is not recommended since it's a bit confusing.
2. you can obtain the length of the array using the .length property of an array:
var userNum = data.success.users.length
3. wouldn't it make more sense to have your objects in the format of { 'userNum': X, 'username': Y }? that way you can return just one array:
success: [ {'userNum': 5, 'username': 'Travis Baseler'}, {'userNum': 6, 'username': 'Ravi Bhalla'}]

  • 1
    What he means is, usernames["6"] will work when userNames is {"6" : "Ravi..."}. But when you return an array in the form [{"5":...},{"6":...}], usernames["6"] is no longer defined. You should be outputting userNames in the form {"5":"Travis...", "6":"Ravi..."}. – meagar Aug 25 '11 at 20:07
  • Thanks a ton for the input!!! With my current scheme, what would be the correct way to access the user's name? For accessing an object wouldn't I use the "."? I will be changing my output method since above is much, much cleaner, but at this point I'm confused as to what is the correct syntax for above. data.success.usersNames.userNum still fails. – Shane Chin Aug 25 '11 at 20:16
  • 3
    with the current datatype, I think @scrappedcola has the right answer. but your main issues here are that: a. you're returning a different data structure for different cases, which is very bad (see @meagar's comment above), and b. you're returning data in a less than efficient way. If you try my suggestion, you can just do success[i].userNum or success[i].username which is much cleaner – J. Ed Aug 25 '11 at 20:21
  • Thanks for the help, SO! – Shane Chin Aug 25 '11 at 20:25
1

Your for loop should look like this:

for(i = 0; i < userLength; i++){
 var userNum = data.success.users[i];
   //this call works
  var userName = data.success.userNames[i][userNum];//you need to index the user in the array in the object uisng the loop then user the userNum to get your userName.
  sendToID[i] = userName + " :"+userNum;
 }  

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