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Is there a possibility to get the full path of the currently executing TCL script?

In PHP it would be: __FILE__

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5 Answers 5

up vote 6 down vote accepted

You want $argv0

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if accessing from a procedure, either define argv0 as global, or fully qualify it as $::argv0 –  Bryan Oakley Oct 1 '10 at 20:26
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Note that the global argv0 variable is a feature of tclsh and wish (and tclkit too) and not of Tcl in general. It's very common though; the support function Tcl_Main implements it for you… –  Donal Fellows Oct 1 '10 at 20:56

Depending on what you mean by "currently executing TCL script", you might actually seek info script, or possibly even info nameofexecutable or something more esoteric.

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You can use [file normalize] to get the fully normalized name, too.

file normalize $argv0
file normalize [info nameofexecutable]
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The correct way to retrieve the name of the file that the current statement resides in, is this (a true equivalent to PHP/C++'s __FILE__):

set thisFile [ dict get [ info frame [ info frame ] ] file ]

Psuedocode (how it works):

  1. set thisFile <value> : sets variable thisFile to value
  2. dict get <dict> file : returns the file value from a dict
  3. info frame <#> : returns a dict with information about the frame at the specified stack level (#)
  4. info frame : returns the stack level of the frame that the command is in

In this case, the file value returned from info frame is already normalized, so file normalize <path> in not needed.

The difference between info script and info frame is mainly for use with Tcl Packages. If info script was used in a Tcl file that was provided durring a package require (require package <name>), then info script would return the path to the currently executing Tcl script and would not provide the actual name of the Tcl file that contained the info script command; However, the info frame example provided here would correctly return the file name of the file that contains the command.

If you want the name of the script currently being evaluated, then:

set sourcedScript [ info script ]

If you want the name of the script (or interpreter) that was initially invoked, then:

set scriptAtInvocation $::argv0

If you want the name of the executable that was initially invoked, then:

set exeAtInvocation [ info nameofexecutable ]
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seconds after I've posted my question ... lindex $argv 0 is a good starting point ;-)

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I think you'll be disappointed with that. You'll get the first argument after the filename. If you do "tclsh foo.tcl one two" argv will be a list like ["one" "two"] –  Bryan Oakley Oct 1 '10 at 20:25

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