56

I need to merge two tables, with the contents of the second overwriting contents in the first if a given item is in both. I looked but the standard libraries don't seem to offer this. Where can I get such a function?

  • 1
    There is no single way of doing this. Are you comparing the keys or the values in the table? Is it possible for the keys / values to be other tables?... – Karl Voigtland Aug 16 '09 at 3:30
  • i don't need any sort of comparison but i will be needing subtables... – RCIX Aug 16 '09 at 6:17
85
for k,v in pairs(second_table) do first_table[k] = v end
  • wait, does that catch string keys and such? – RCIX Aug 16 '09 at 3:30
  • yes, string keys are handled – Doug Currie Aug 16 '09 at 3:35
  • This should work with some tweaking for handling subtables. Thanks! – RCIX Aug 16 '09 at 6:17
  • 23
    Doesn't this overwrite what is currently in the table if the indices are the same, as would be in an array? If you had two tables with number keys [1],[2],[3] etc., one with data already in and you merely iterate over the second table's keys, also [1],[2],[3] etc. and add the data in the same positions with the same keys to table one, you'll overwrite whatever was originally there. You could solve this with first_table[#first_table + k] = v. Personally I'd go about this using tables.insert(), though not sure that was available in 2009! – Astridax Feb 22 '14 at 23:09
  • 1
    In 99% of the cases this will be the correct solution, but do keep in mind that in applications with tables that reference other tables, which is common in object-oriented patterns, you may need to do extra bookkeeping. For instance, if there's some reason why the given table might reference itself directly, you'd want to check for v==second_table and, if so, assign first_table instead. Tables can also reference themselves indirectly, but that's probably a book's worth of problems to solve. I just wanted to put this on the radar, so 'nuff said. – Aiken Drum Dec 22 '17 at 11:06
17

Here's what i came up with based on Doug Currie's answer:

function tableMerge(t1, t2)
    for k,v in pairs(t2) do
        if type(v) == "table" then
            if type(t1[k] or false) == "table" then
                tableMerge(t1[k] or {}, t2[k] or {})
            else
                t1[k] = v
            end
        else
            t1[k] = v
        end
    end
    return t1
end
  • 6
    Note that it is usually a bad idea to mess with standard Lua "namespaces" (like table.*). Better to make your own. – Alexander Gladysh Aug 16 '09 at 7:37
  • 4
    "if not t1[k] then t1[k] = {} end" contains a subtle bug (find it!) Better write it as "t1[k] = t1[k] or {}". Also, what happens if t2[k] is a table but t1[k] exists but is not a table? Finally, "table1[k] = v" should be "t1[k] = v". – lhf Aug 17 '09 at 18:08
  • All good points, i'll fix them immediately. – RCIX Aug 18 '09 at 6:50
11

Wouldn't this work properly?


function merge(t1, t2)
    for k, v in pairs(t2) do
        if (type(v) == "table") and (type(t1[k] or false) == "table") then
            merge(t1[k], t2[k])
        else
            t1[k] = v
        end
    end
    return t1
end
  • 2
    Yes, but if you look at RCIX's original post, there was some different logic in there that was later simplified to two identical else statements. It should have been further simplified into what you have here. – BMitch Sep 19 '11 at 13:17
  • I like the conciseness of your answer, thanks. – nicolas.leblanc Jul 3 '14 at 18:16
4

For numeric-index table merging:

for k,v in pairs(secondTable) do table.insert(firstTable, v) end
2

Here's iterative version for deep merge because I don't like potential stack overflows of recursive.

local merge_task = {}
function merge_to_left_o(orig, new)
   merge_task[orig] = new

   local left = orig
   while left ~= nil do
      local right = merge_task[left]
      for new_key, new_val in pairs(right) do
         local old_val = left[new_key]
         if old_val == nil then
            left[new_key] = new_val
         else
            local old_type = type(old_val)
            local new_type = type(new_val)
            if (old_type == "table" and new_type == "table") then
               merge_task[old_val] = new_val
            else
               left[new_key] = new_val
            end
         end
      end
      merge_task[left] = nil
      left = next(merge_task)
   end
end
  • 1
    You forgot to check whether merge_task overflows your available memory... – Irfy Sep 2 '13 at 12:55
  • 1
    @Irfy, you know you can't do that in Lua, right? – Oleg V. Volkov Sep 4 '13 at 6:54
  • 2
    My comment was meant as a sarcasm: if you escape the recursion because you fear/expect a stack overflow; and then don't check whether your task container overflows your memory, then it doesn't make much sense to escape recursion in the first place. – Irfy Sep 4 '13 at 12:46
  • 1
    @Irfy, "general" memory used for tables in Lua or similar structures in other languages is most often more abundant than call stack space. Of course one should consider which solution is appropriate for particular environment, not just blindly copy/paste one or another. – Oleg V. Volkov Sep 9 '13 at 18:53
2

Doug Currie's answer is the simplest for most cases. If you need more robust merging of tables, consider using the merge() method from the Penlight library.

require 'pl'
pretty.dump(tablex.merge({a=1,b=2}, {c=3,d=4}, true))

-- {
--   a = 1,
--   d = 4,
--   c = 3,
--   b = 2
-- }
0

I preferred James version for its simplicity and use it in my utils.lua - i did add a check for table type for error handling.

function merge(a, b)
    if type(a) == 'table' and type(b) == 'table' then
        for k,v in pairs(b) do if type(v)=='table' and type(a[k] or false)=='table' then merge(a[k],v) else a[k]=v end end
    end
    return a
end

Thanks for this nice function which should be part of the table class so you could call a:merge(b) but doing table.merge = function(a, b) ... did not work for me. Could even be compressed to a one liner for the real nerds :)

0
for k,v in pairs(t2) do t1[k] = v end

key for string solution

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.