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What is the most efficient way to create emtpy ListBuffer ?

  1. val l1 = new mutable.ListBuffer[String]
  2. val l2 = mutable.ListBuffer[String] ()
  3. val l3 = mutable.ListBuffer.empty[String]

There are any pros and cons in difference ?

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2 Answers 2

up vote 7 down vote accepted

Order by efficient:

  1. new mutable.ListBuffer[String]
  2. mutable.ListBuffer.empty[String]
  3. mutable.ListBuffer[String] ()

You can see the source code of ListBuffer & GenericCompanion

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new mutable.ListBuffer[String] creates only one object (the list buffer itself) so it should be the most efficient way. mutable.ListBuffer[String] () and mutable.ListBuffer.empty[String] both create an instanceof scala.collection.mutable.AddingBuilder first, which is then asked for a new instance of ListBuffer.

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I searched for some source code. 'object Map' has def empty[A, B]: Map[A, B] = new HashMap[A, B] buf 'object ListBuffer' doesn't def empty. :( ListBuffer.empty looks have overhead as you say. Thank you – drypot Apr 9 '10 at 23:48

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