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Reading about for comprehensions in scala I had a deja vu effect caused by .net's linq.
They both allow for a concise sequence definition.

Now - the question is how to concisely represent grouping using a for comprehension?

To be more specific. This in C#:

from entry in new[] {
    new { Name="Joe", ShoeSize="23" },
    new { Name="Alice", ShoeSize="23" },
    new { Name="Mary", ShoeSize="17" },
    new { Name="Yeti", ShoeSize="170" },
}
group entry by entry.ShoeSize into grouped
select grouped;

Produces:

Key=23, Items=(Joe, Alice)
Key=17, Items=(Mary)
Key=170, Items=(Yeti)

How to achieve the same concisely with scala for comprehensions?

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Note that the question is about the features of scala for comprehensions, and not how to implement the above example in scala. However, I understood from the responses (the reason for +1s), that despite my today's 'deja vu' feeling, for comprehensions is a completely different thing than linq. It is used for creating sequences with filtering/selecting with the heavy lifting left out, whereas linq encompasses both. Or am I getting that wrong? –  grzeg Apr 15 '11 at 13:31

4 Answers 4

up vote 4 down vote accepted

Scala's for comprehension have no grouping ability. It is just a combination of map, flatMap and filter (actually, withFilter, but filter is easier to understand), or foreach and filter.

The principle behind them is not completely different, but LINQ was modeled after SQL, while for comprehension is modeled after monadic transformations. For instance, your example might be modeled with the following for comprehension:

for {
    (shoeSize, groups) <- entry groupBy (_.shoeSize)
    names = for (group <- groups) yield group.name
    grouped = (shoeSize, names)
} 
yield grouped

I expect LINQ is doing pretty much the same thing, but it includes these transformations as part of its basic syntax because it is expected.

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There is no need of for comprehensions:

val entry = List(new { val name="Joe";   val shoeSize="23" },
                 new { val name="Alice"; val shoeSize="23" },
                 new { val name="Mary";  val shoeSize="17" },
                 new { val name="Yeti";  val shoeSize="170" })

val grouped = entry.groupBy(_.shoeSize)
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List("Joe"->"23",
     "Alice"->"23",
     "Mary"->"17",
     "Yeti"->"170").groupBy(_._2).mapValues(_.map(_._1))

//--> Map(23 -> List(Joe, Alice), 170 -> List(Yeti), 17 -> List(Mary))

Note that you can use case classes if you want named arguments (name and shoe size). The ugly mapValues part is only necessary to extract the name part from the tuple, elso you get Map(23 -> List((Joe,23), (Alice,23)), 170 -> List((Yeti,170)), 17 -> List((Mary,17))), which is often "good enough".

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You could use List#groupBy() to group it by a certain field.

case class Person(name: String, shoeSize: Int)

val persons = List(
    Person("Joe", 23),
    Person("Alice", 23),
    Person("Mary", 17),
    Person("Yeti", 170)
)

val groupByShoeSize = persons.groupBy(_.shoeSize)

// Now groupByShoeSize is a Map[Int, List[Person]]

println(groupByShoeSize)

// Map((17,List(Person(Mary,17))), (23,List(Person(Joe,23), Person(Alice,23))), (170,List(Person(Yeti,170))))
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