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I have a List of object, List<Field> fieldList and a list of String List<String> fieldNameList. Each Field object in the fieldList consists of String filedName and various properties.

What is the best way to iterate over the fieldList and access their properties in the order of the fieldNameList?

For example,

fieldList: [name, color, size]

contains:

  [field1, red, 10]
  [field2, yellow, 8]
  [filed3, green, 9]
  [field4, blue, 10]

And the fieldNameList contains:

  [field2, field3, field1, field4]

I want to access the fieldList in order of the fieldNameList, i.e. color = yellow, green, red, blue

One way that I know is to iterate through the fieldList first and create a HashMap<String, Field> nameFieldMap and then iterate through the fieldNameList and access the required field properties by the fieldNames in order.

However, this involves 2 iterations and hence the time taken would be 2n.

Is there a better way to do this? Can this be achieved in one iteration?

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You can sort the fieldlist according to the fieldListName. –  Rohit Jain Feb 22 '14 at 7:27
    
Sort is n log n –  Dilum Ranatunga Feb 22 '14 at 7:28
2  
If you just want to access it once, and print it, then your approach seems fine. Note that despite requiring 2 iteration, the algorithm is still O(n). –  Rohit Jain Feb 22 '14 at 7:30
2  
Your solution is the best (and most readable) one, IMO. You only have 2 iterations if you transform the field list into a Map every time. Why don't you replace the field list by a Map from the start? A LinkedHashMap looks like the only data structure you need. –  JB Nizet Feb 22 '14 at 7:31
1  
The sort itself would be O(n * log(n)), and it would even be O(n^2 * log(n)) if every time you need to compare two fields, you have to get the index of their name in a list. Your map-based solution is both easier to implement, and faster (O(n)). –  JB Nizet Feb 22 '14 at 7:57

1 Answer 1

If fieldNameList and fieldList have the same (or similar) size, you simply cannot get better than 2n; One n for each list. You just have to pay O(n) for each list to inspect the contents... unless there is some interesting characteristic of at least one of the lists.

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