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If I have a file structure like this:

./main.lua
./mylib/mylib.lua
./mylib/mylib-utils.lua
./mylib/mylib-helpers.lua
./mylib/mylib-other-stuff.lua

From main.lua the file mylib.lua can be loaded with full path require('mylib.mylib'). But inside mylib.lua I would also like to load other necessary modules and I don't feel like always specifying the full path (e.g. mylib.mylib-utils). If I ever decide to move the folder I'm going to have a lot of search and replace. Is there a way to use just the relative part of the path?

UPD. I'm using Lua with Corona SDK, if that matters.

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2 Answers 2

up vote 12 down vote accepted

There is a way of deducing the "local path" of a file (more concretely, the string that was used to load the file).

If you are requiring a file inside lib.foo.bar, you might be doing something like this:

require 'lib.foo.bar'

Then you can get the path to the file as the first element (and only) ... variable, when you are outside all functions. In other words:

-- lib/foo/bar.lua
local pathOfThisFile = ... -- pathOfThisFile is now 'lib.foo.bar'

Now, to get the "folder" you need to remove the filename. Simplest way is using match:

local folderOfThisFile = (...):match("(.-)[^%.]+$") -- returns 'lib.foo.'

And there you have it. Now you can prepend that string to other file names and use that to require:

require(folderOfThisFile .. 'baz')     -- require('lib.foo.baz')
require(folderOfThisFile .. 'bazinga') -- require('lib.foo.bazinga')

If you move bar.lua around, folderOfThisFile will get automatically updated.

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Thanks, this worked for loading files. But when I access module's public properties I still need to specify the full path (e.g. lib.foo.bar.some_value). –  RocketR Feb 5 '12 at 11:05
2  
That has nothing to do with loading files; it simply reflects how you have chosen to structure your Lua. You can (for example) return a table on each require, and store it in a local var : local baz = require(folderOfThisFile .. 'baz') and then do baz.some_value –  kikito Feb 5 '12 at 14:09
    
Cool, I didn't know about the ... outside functions being the string that was used to require the file. –  Seth Carnegie Feb 5 '12 at 17:26
    
@kikito But it forces to use the full namespace-path even between the files of the same library. If I declare mylib.var1 then in mylib-utils I have to specify some.long.path.mylib.var1 which is very awkward. I think, I'll just stick with a single directory containing everything. It's unmaintainable but works. –  RocketR Feb 5 '12 at 21:55
    
@RockeR : are you sure you have read my comment correctly? It handles precisely that issue: it allows you to do baz.some_value instead of lib.foo.bar.some_value. –  kikito Feb 6 '12 at 0:55

You can do

package.path = './mylib/?.lua;' .. package.path

Or

local oldreq = require
local require = function(s) return oldreq('mylib.' .. s) end

Then

-- do all the requires
require('mylib-utils')
require('mylib-helpers')
require('mylib-other-stuff')

-- and optionally restore the old require, if you did it the second way
require = oldreq
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Strange. I tried changing package.path already and thought I was doing something wrong because it says no field package.preload['mylib-utils'], no file './mylib/mylib-utils.lua'. But I'm using Lua inside the Corona SDK, maybe it has some peculiarities with loading files. –  RocketR Feb 4 '12 at 23:57

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