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I have this Javascript below, and I know that there is probably a better way of doing what I have done, so if you would like to share a better way, please do and I will definitely use it.

var Apeople = ["bob", "joe", "jane", "mike", "henry", "alex"];
var Abdays = ["08/20", "01/23", "04/19", "08/16", "01/08", "04/02"];

Apeople and Abdays line up with each other, so Janes birthday is 04/19.

I know I'm not supposed to use eval() so if you know of a better way please tell me.

var mnths = ["January", "February", "March", "April", "May", "June", "July", "August", "September", "October", "November", "December"];
for(i=0; i<mnths.length; i++){
   eval("var "+mnths[i]+" = []");
}

for(i=0; i<Abdays.length; i++){
   var ab = Abdays[i];
   if(ab.substring(0,1) == "0"){
      var mn = ab.substring(1,2); //month number without 0 before it
   } else {
      var mn = ab.substring(0,2); //month number if 11 or 12
   }
   eval(""+mnths[mn-1]+".push(i)");
}

Now I have January=[1,4] April=[2,5] August=[0,3]. I did this so I can find out whos name goes with what birthday.

For example Apeople[January[0]] would be joe and Abdays[January[0]] would be 01/23.

What I need to do is put each months entries in order by which comes first going by the birthdays. Abdays[January[0]] is 01/23 but Abdays[January[1]] is 01/08 so they should be swapped.

As I am typing this I am thinking that I probably should have used JSON.

So what I need help with is putting the birthdays in order while still being able to tell which birthday goes to which name, and at the same time possibly finding a better way to write this code.

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1  
If you converted those mm/dd values to native JS timestamps, you could simply use a standard array sort call in JS to get them in order. As is, you've got a lot of extra pointless work to do because you're not exploiting native capabilities. –  Marc B Aug 14 '12 at 17:13
    
BTW: You're eval is not util. Don't use eval to do that. mnths[mn-1].push(i) will totaly work. In most case, eval can and must be avoided. AND you don't do eval("var "+mnths[i]+" = []"); you're mixing array and object here... –  dievardump Aug 14 '12 at 17:24
    
@MarcB Yes, but if I sorted just the birthdays, I wouldn't know which name went with each birthday anymore because they wouldn't line up. –  Tomjr260 Aug 14 '12 at 17:27
    
@dievardump So if I get rid of the eval in eval(""+mnths[mn-1]+".push(i)"); and just do mnths[mn-1].push(i) I could also get rid of the first eval, correct? Edit: I tried doing just mnths[mn-1].push(i) and get the error Error: TypeError: mnths[mn - 1].push is not a function –  Tomjr260 Aug 14 '12 at 17:32
    
Btw, ab.substring(0,1) can be substituted with ab.charAt(0) fnctn. –  Stano Aug 14 '12 at 17:36

2 Answers 2

up vote 1 down vote accepted

You can sort theAbdays array like this.

Abdays = Abdays.sort(function(a, b){
   var d1 = new Date(a + " 2010");
   var d2 = new Date(b + " 2010");
   return d1 > d2;
});

I randomly selected 2010. You will have to modify this, add more conditions if you need and write code to sort Apeople according to sorted Abdays .

UPDATE:

Quickly written. You can find better ways, but hope this helps

var map = {};
for(var i=0 ; i < Apeople.length; i++){
   map[Abdays[i]] = Apeople[i];
}

Abdays = Abdays.sort(function(a, b){      
   var d1 = new Date(a + " 2010");
   var d2 = new Date(b + " 2010");
   return d1 > d2;
});

for(var i=0 ; i < Apeople.length; i++){
   Apeople[i] = map[Abdays[i]];
}

console.log(Apeople, Abdays);
share|improve this answer
    
Yes. That is the best way to do it. Then you can sort array easily like this maintaining name-date relation. –  tracevipin Aug 14 '12 at 17:46
    
Yes. This works perfect, however how would I sort Apeople according to the sorted Abdays? –  Tomjr260 Aug 14 '12 at 17:48
    
See updated answer –  tracevipin Aug 14 '12 at 17:53
    
This is great. Thank you! –  Tomjr260 Aug 14 '12 at 18:00

An alternative way of doing it. This makes use of a custom sort function.

​
var birthdays = [];

​birthdays[0] = { "name": "Bob", "month": 8, "day": 1 };
birthdays[1] = { "name": "John", "month": 4, "day": 2 };
birthdays[2] = { "name": "Jane", "month": 1, "day": 15 };

birthdays.sort( function( a, b ) { 

    if(a["month"] < b["month"] ) return -1;
    if(a["month"] > b["month"] ) return 1;
    if( a["day"] < b["day"] ) return -1;
    if( a["day"] > b["day"] ) return 1;

    return 0; //they are the same
});

The added advantage is that you can modify the sort function to suit your needs.

share|improve this answer
    
This also looks great. Between the two answers, I should be able to work something out. Thanks! –  Tomjr260 Aug 14 '12 at 18:07

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