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Hi I am pretty new in play framework and scala, continue I am reading the play documentation but I am facing problem while printing the index inside the map in the scala template file. I have tried below code but it was not working for me.

//Attempt 1: But not working

@(customer: Customer, orders: Seq[Order])
<h1>Welcome @customer.name!</h1>

<ul> 
@orders.map { case(index,order) =>
  <li>@index</li>
  <li>@order.title</li>
} 
</ul>

//Attempt 2: But not working

@(customer: Customer, orders: Seq[Order])
<h1>Welcome @customer.name!</h1>

<ul> 
@orders.map { order =>
  <li>@order.index</li>
  <li>@order.title</li>
} 
</ul>

Please give me some solution for this or give something other reference/resource link for play where I can explore more. You can find the above example from play documentation.

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1 Answer 1

up vote 3 down vote accepted

You can use zipWithIndex. It takes a list and creates a tuple from it where the first part is the element of the list and second is the index.

Example:

@orders.zipWithIndex.map { case (order, index) =>
  <li>@index</li>
  <li>@order.title</li>
} 
share|improve this answer
    
No, not working yet –  user2518430 Nov 21 '13 at 8:21
    
@user2518430 Can you provide an error message? –  Akos Krivachy Nov 21 '13 at 11:15
    
it shows on the top compile error: wrong number of parameters; expected = 1 –  user2518430 Nov 21 '13 at 11:25
    
actually what type of value has your zipWithIndex object? It has separate object named index like title ??? –  user2518430 Nov 21 '13 at 11:27
    
zipWithIndex takes a list and pairs it with and index. Meaning if you have a Seq[Order] then you will get a Seq[(Order, Int)] and then we do a case extractor on this to split them up: case (order, index) =>. Your error message seems to be something else. Are you calling your view correctly? I will be able to try this out when I get home. –  Akos Krivachy Nov 21 '13 at 11:40

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