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proc foo {param} {
  namespace eval foo_ns {
     uplevel {set foo_ns::x $param }
  }
}

This just looks ugly.

[upvar] will not work, because it can't link to 'param'.

Thanks.

Code from answers does not work (tclsh8.4)

-------------------------------------------

% proc bar {param} {
    namespace eval foo_ns {
      uplevel [list set foo_ns::x $param]
    }
  }
% bar 123
can't read "param": no such variable

-------------------------------------------

% proc foo {param} {
    set ::foo_ns::x $param
}
% foo 123
can't set "::foo_ns::x": parent namespace doesn't exist
share|improve this question
    
Can you describe what it is you are trying to accomplish, rather than just showing code that does it? –  RHSeeger Oct 13 '09 at 17:59
    
uplevel [list set foo_ns::x $param] –  glenn jackman Oct 13 '09 at 17:59
    
it does not work for me (tclsh8.4). % proc bar {param} { namespace eval foo_ns { uplevel [list set foo_ns::x $param] } } % bar 123 can't read "param": no such variable –  name Oct 14 '09 at 11:16

3 Answers 3

up vote 2 down vote accepted

Namespaces and levels are two different things. You don't need uplevel for this problem.

Here's a simple solution that creates the namespace and sets the variable in one line:

proc foo {param} {
    namespace eval ::foo_ns [list set x $param]
}
share|improve this answer

What is wrong with:

proc foo {param} {
    set ::foo_ns::x $param
}

In my test, it seems to accomplish the same objective.

Update: Thanks To K0re for pointing this out. Before calling foo, you need to define the name space:

namespace eval ::foo_ns {}
share|improve this answer
    
# tclsh8.4 % proc foo {param} { set ::foo_ns::x $param } % foo 123 can't set "::foo_ns::x": parent namespace doesn't exist –  name Oct 14 '09 at 11:13
    
formatting looks ugly, however it ended up with: can't set "::foo_ns::x": parent namespace doesn't exist –  name Oct 14 '09 at 11:14
    
@K0re: You will have to define the namespace prior to to calling foo: namespace eval ::foo_ns {} –  Hai Vu Oct 14 '09 at 15:31

Ok, you have two different problems. The first is that the namespace doesn't already exist; the second is that you need to write the code so that the variable is created/written in that namespace. Overall, this require only a tiny modification of Hai's code:

proc foo {param} {
    # Create the namespace if it doesn't already exist
    namespace eval ::foo_ns {}
    # Set the variable in the namespace
    set ::foo_ns::x $param
}


As commentary on some of the problems you were having:

proc foo {param} {
  namespace eval foo_ns {
     uplevel {set foo_ns::x $param }
  }
}

This doesn't work because you are, effectively, saying the following: in the namespace "foo_ns", run the following code: at the top level of the stack, rung the following code: "set foo::x $param"

However, at the top level of the stack, the variable "param" has no value (its only defined within the procedure. You'll need to make sure it gets substitured beforehand. I'd include code that would work but, honestly, I'm afraid it will cause confusion with the actual answer to the question... so I'll leave it out.

share|improve this answer
    
2nd code (the one I wrote before) works good. I just didn't liked the syntax - it's ugly. 1st code looks better. Thanks. –  name Oct 14 '09 at 16:34
    
I can't follow which code it is you don't like... but as long as you can get it to work and understand WHY, then it's all good :) –  RHSeeger Oct 14 '09 at 16:40

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