Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

below is the a code snippet, which returns the object of a class. now the object is basially comparing to some parameter in loop.

my concern is what if there are thousands of objects in loop, in that case performance and scalability can be an issue. please suggest how to improve this code for performance part

public Widget get(String name,int major,int minor,boolean exact) {
   Widget widgetToReturn = null;
   if(exact) {
       Widget w = new Widget(name, major, minor);

       // for loop using JDK 1.5 version
       for(Widget wid : set) {
            if((w.getName().equals(wid.getName())) && (wid.getVersion()).equals(w.getVersion())) {
                widgetToReturn = w;
                break;
            } 
       }
   } else {
       Widget w = new Widget(name, major, minor);
       WidgetVersion widgetVersion = new WidgetVersion(major, minor);

       // for loop using JDK 1.5 version
       for(Widget wid : set) {
           WidgetVersion wv = wid.getVersion();
           if((w.getName().equals(wid.getName())) && major == wv.getMajor() && WidgetVersion.isCompatibleAndNewer(wv, widgetVersion)) {
                widgetToReturn = wid;
           } else if((w.getName().equals(wid.getName())) && wv.equals(widgetVersion.getMajor(), widgetVersion.getMinor())) {
                widgetToReturn = w;
           }
       }
   }
   return widgetToReturn;

}

share|improve this question
    
Remember the most important rule of optimizing--before you do it you must have performance requirements and you must have failed to meet those requirements--otherwise use the most readable code! How much do you have to improve to meet the requirements? –  Bill K Sep 19 '11 at 20:01
add comment

3 Answers

I think Will's question is the 1st question to ask - why are you holding the Widgets in a none efficient data structure?

If you use a structure like this:

Map<String, Map<WidgetVersion,Widget>> widgetMap;

You can write the following code:

public Widget get(String name,int major,int minor,boolean exact) 
{
   Widget widgetToReturn = null;

   Map<WidgetVersion,Widget> widgetVersionMap = widgetMap.get(name);
   WidgetVersion widgetVersion = new WidgetVersion(major, minor);
   widgetToReturn = widgetVersionMap.get(widgetVersion);
   if(widgetToReturn==null && exact==false) 
   {
       // for loop using JDK 1.5 version
       for(Entry<WidgetVersion,Widget> entry : widgetVersionMap.entrySet()) 
       {
           WidgetVersion wv = entry.getKey();
           if(major == wv.getMajor() && WidgetVersion.isCompatibleAndNewer(wv, widgetVersion)) 
           {
                widgetToReturn = entry.getValue();
           } 
       }
   }
   return widgetToReturn;
}

That way for exact searches you have an O(1) search time and for no-exact you have O(K) where K is the number of versions a widget has.

share|improve this answer
add comment

Rather than a simple "set" of Widgets, you probably need to maintain a Map<WidgetVersion, Widget>. This will give you O(1) (for a hash map) or O(logN) (for a tree map) lookup, compared with the O(N) lookup of the current version.

(You might actually need two maps, or a Map> or even something more complicated. I cannot quite figure out what your exact / inexact matching is supposed to do, and it also depends on how many versions of a given widget are likely in practice.)

In addition, the logic of your "exact" case looks broken. You are creating a widget, looking in the set of existing widgets, then:

  • if you find a match you return the widget you just created ... (so why bother with the lookup??)
  • if you didn't find a match you return null.
share|improve this answer
    
The Map would have to point to another collection to hold multiple Widgets of the same name. –  Chadwick Jun 13 '10 at 7:38
add comment

And these Widgets aren't in a map keyed by name...why?

Map<String, List<Widget>> widgetMap;
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.