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I want to sort the data inside ArrayList<HashMap<String,String>> by Unix time-stamp. I have 2 arraylists and I merge them: arraylist1.addall(arraylist2);. But I am unable to sort the data inside by Unix time-stamp descending (newest first).

Arraylist 1:

[{id=1, name=Aa, time=1394500000},
 {id=2, name=Ab, time=1394500001},
 {id=3, name=Ac, time=1394500002}]

Arraylist 2;

[{id=1, name=AA, time=1394500001},
 {id=2, name=AA, time=1394500000},
 {id=3, name=Ac, time=1394500005}]

I really appreciate any help. Thanks in Advance.

share|improve this question
    
First, if you have a List<Map<>> you are likely doing something wrong - use objects. Second, you're going to need to provide a little more detail than random string representations which don't make sense. –  Boris the Spider Mar 13 '14 at 15:36
    
@BoristheSpider Sorry adding entire code. –  jason Mar 13 '14 at 15:37

1 Answer 1

up vote 2 down vote accepted

Seems a better idea to create a class to hold these attributes.

class MyData {    
  private int id;
  private String name;
  private long time;

  //all other stuff
}

Then just use an ArrayList<MyData> and sort it using Collections.sort with a custom comparator.

Collections.sort(myList, new Comparator<MyData>(){
        @Override
        public int compare(MyData o1, MyData o2) {
            return Long.compare(o1.getTime(), o2.getTime());  
        }
};
share|improve this answer
    
Collections.sort(arraylist1, new Comparator<HashMap<String, String>>() { @Override public int compare(HashMap<String, String> o1, HashMap<String, String> o2) { String value1 = o1.get("time"); String value2 = o2.get("time"); return Long.compare(Long.valueOf(value1).longValue(), Long.valueOf(value2).longValue()); } }); –  jason Mar 13 '14 at 16:00
    
Will the above code work? –  jason Mar 13 '14 at 16:01
    
@jason Yes (assuming each map as a mapping "time" -> "value"), but I highly recommend you tu use a class to perform this task, as it is a far better OO approach. Also the last line can be simplified as return Long.valueOf(value1).compareTo(Long.valueOf(value2)); –  Alexis C. Mar 13 '14 at 16:05
    
@ZouZou or Long.compare(value1, value2). –  Boris the Spider Mar 13 '14 at 16:23
1  
@ZouZou gotcha - thought you were talking about your example code. –  Boris the Spider Mar 13 '14 at 16:51

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