35

I want to check, if a number is divisible by another number:

for i = 1, 100 do
    if i % 2 == 0 then
        print( i .. " is divisible.")
    end
end

This should work without any problems, but with the Lua in my server the script doesn't run if there is a % in the script... I dont know whats the reason, so is there any "replacement" for that? So I could check the number divsibility?

Thank you.

  • 1
    What version of Lua is the server running? – Nicol Bolas Mar 14 '12 at 4:02
  • I think its 5.0 or later :S. – Cyclone Mar 14 '12 at 4:09
  • 6
    sounds like you have some encoding problems; maybe if you find what encoding is it, you might be able to sneak a % through. try '%%' or '\%' or '%25' – Javier Mar 14 '12 at 4:19
  • I am downvoting this question because I believe it is asking the wrong question: The real question here is "Why is % not working for me in Lua"? According to the Lua Documentation Lua supports the usual arithmetic operators: the binary + (addition), - (subtraction), * (multiplication), / (division), % (modulo), and ^ (exponentiation); and unary - (negation). – Simon Forsberg Jan 7 '18 at 20:48
  • 1
    @Javier Lua 5.0 did not support the % operator. 5.1 and later however, does. See my answer. – Simon Forsberg Jan 7 '18 at 20:52
29

It's not ideal, but according to the Lua 5.2 Reference Manual:

a % b == a - math.floor(a/b)*b

| improve this answer | |
  • 8
    This seems a workaround for older versions of Lua. At least % works fine in Lua 5.2 and later. – Henrik Erlandsson Aug 27 '13 at 7:14
  • 2
    @HenrikErlandsson % was added as an operator in Lua 5.1. – Simon Forsberg Jan 7 '18 at 21:01
56

Use math.fmod(x,y) which does what you want:

Returns the remainder of the division of x by y that rounds the quotient towards zero.

http://www.lua.org/manual/5.2/manual.html#pdf-math.fmod

| improve this answer | |
  • 2
    math.fmod did not exist in Lua 5.0, it was renamed from math.mod to math.fmod in Lua 5.1. However, Lua 5.1 also added the % operator, so if the OP is running Lua 5.0, fmod is the wrong function to use. – Simon Forsberg Jan 7 '18 at 21:01
3
for i = 1, 100 do
    if (math.mod(i,2) == 0) then
        print( i .. " is divisible.")
    end
end
| improve this answer | |
  • Strange that it's undocumented in recent documentation. (At least with a simple test, it seems to work like fmod.) – Henrik Erlandsson Aug 27 '13 at 7:16
  • @HenrikErlandsson It's not undocumented in recent documentation, the function was called mod in 5.0 and renamed to fmod in 5.1. – Simon Forsberg Jan 7 '18 at 20:57
3

Use math.fmod, accroding lua manual math.mod was renamed to math.fmod in lua 5.1.

| improve this answer | |
3
function mod(a, b)
    return a - (math.floor(a/b)*b)
end
| improve this answer | |
3

Lua 5.0 did not support the % operator.

Lua supports the usual arithmetic operators: the binary + (addition), - (subtraction), * (multiplication), / (division), and ^ (exponentiation); and unary - (negation).

https://www.lua.org/manual/5.0/manual.html

Lua 5.1 however, does support the % operator.

Lua supports the usual arithmetic operators: the binary + (addition), - (subtraction), * (multiplication), / (division), % (modulo), and ^ (exponentiation); and unary - (negation).

https://www.lua.org/manual/5.1/manual.html

If possible, I would recommend that you upgrade. If that is not possible, use math.mod which is listed as one of the Mathematical Functions in 5.0 (It was renamed to math.fmod in Lua 5.1)

| improve this answer | |

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