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I'm translating the following Java code to Scala.

some_android_view.setLayoutParams(
    new TableLayout.LayoutParams(TableLayout.LayoutParams.WRAP_CONTENT,
                                 TableLayout.LayoutParams.WRAP_CONTENT));

But it gives me the following compile error:

value WRAP_CONTENT is not a member of object android.widget.TableLayout.LayoutParams

EDIT

replaced

TableLayout.LayoutParams.WRAP_CONTENT

for

android.view.ViewGroup.LayoutParams.WRAP_CONTENT
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1 Answer 1

up vote 0 down vote accepted

Use android.view.ViewGroup.LayoutParams.WRAP_CONTENT instead of TableLayout.LayoutParams.WRAP_CONTENT

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I have tried using '#', but is still not compiling. I'm using scala 2.9. I get the following error: object LayoutParams is not a value - ')' expected but '#' found. - ')' expected but '#' found. –  marbarfa Mar 18 '13 at 15:19
    
Sorry, that I'm confusing you, '#' it just link from my IDEA =) Please, use direct link to ViewGroup.LayoutParams.WRAP_CONTENT constant. –  aim Mar 18 '13 at 15:25
    
This worked: android.view.ViewGroup.LayoutParams.WRAP_CONTENT. Thanks!. Edited the question. –  marbarfa Mar 18 '13 at 15:25

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