Reputation
1,708
Top tag
Next privilege 2,000 Rep.
Edit questions and answers
Badges
8 18
Newest
 Tenacious
Impact
~73k people reached

Dec
21
comment Creating a secure Lua sandbox..?
Unless you're setting time limits at the OS level, another thing that should be removed or restricted is access to the string libraries' pattern matching functions (and remember the metatable on strings!). (debug.sethook for abort won't help, you'll need to stop long-running C functions.) Example: function slow(i) return ("a"):rep(i):match(("a+"):rep(i-1)..'a') endslow( 26 ) takes about 1.5s on my computer, and every increment by one doubles the time. (So slow(64) would already run for about 13k years…)
Dec
21
comment Creating a secure Lua sandbox..?
@NicolBolas You mean like this? corsix.org/content/malicious-luajit-bytecode ;-) No libraries loaded. (Except jit (for jit compilation), but it's not referenced/used in the code.) For any kind of sandboxing, make sure to avoid all bytecode loading.
Dec
17
answered How to build luasockets 3.0 for lua 5.3
Dec
17
comment Can't modify loop-variable in lua
@NicolBolas I'm not saying it's better, just that it exists and in some situations may be preferable. (E.g. if you need the diff/delta anyway, the while version will be clumsier.) If you care more about seeing at a glance that certain code can not do something rather than quickly understanding all it does, this version may also be preferable. (Check there's no assignment to the loop counter anywhere below the header vs. identifying all paths/exits and checking the increment for each path.) What's "more readable" depends on what you're doing and what you're used to.
Dec
16
answered Can't modify loop-variable in lua
Dec
16
comment How to build luasockets 3.0 for lua 5.3
Did you look at the makefile? It seems make clean all install LUAV=5.3 or something along those lines should work.
Dec
13
awarded  Tenacious
Dec
10
comment Function with Checksum Function Producing nACK Responses
@Pwrcdr87 Well, you usually don't need to know about that unless you're working on the C side. (And even then, only if you need to manually combine many strings – often, you can let asprintf and others to do the combining for you.)
Dec
10
comment String parameter to lua function suddenly goes null
scandate.sub(i,j)? Should that be scandate:sub(i,j)? (: instead of .)
Dec
10
comment Function with Checksum Function Producing nACK Responses
@Pwrcdr87 Every concatenation of strings requires allocating & copying both parts into a new string. Hence, repeated concatenation results in significant overhead and a lot of garbage that has to be freed by the garbage collector. Using table.concat to concatenate many pieces at once will avoid most of that overhead, same goes for using string.gsub & co and making them replace parts while traversing. (Low-level Info: These use a luaL_Buffer (lua.org/manual/5.3/manual.html#luaL_Buffer) that grows incrementally and avoids most of the copying.)
Dec
8
comment How to prove (n = n) = (m = m) in Coq?
Interesting question! I think this should fail because it need not be that n = m and so refl n <> refl m. I've spent the last hour trying to prove that (a=a)=(b=b) fails if a<>b but am still stuck. I've tried some interesting approaches and might post an "answer" later on detailing why the stuff I tried must fail. (But right now I just have a headache…)
Dec
6
answered Why won't __add work?
Dec
6
answered lua ffi functions sharing namespace
Dec
6
comment lua ffi functions sharing namespace
C = B, A doesn't make sense… or at least it assigns B to C and throws away A.
Dec
3
answered love2d - file doesnt exist but it does
Dec
3
comment love2d - file doesnt exist but it does
Ah, yes – running from a different directory means it fails.
Dec
3
comment love2d - file doesnt exist but it does
Can't reproduce this. Minimal code I tried: In main.lua: function love.load() dofile "foo.lua" dofile "foo/bar.lua" end; in foo.lua: print "foo works"; in foo/bar.lua: print "foo/bar works"; running this will print "foo works" and "foobar works". What version of love2d are you on?
Dec
3
comment Concatenating bits
@Maximillan Essentially x<<1 is x*2, and x<<2 is x*4 … or generally x<<k is x * 2^k (where ^ means exponentiation). x>>k is division by powers of two. For the computation byte2 << 8, byte2 is expanded ("promoted") to an int. If you store the result in a char, it will be truncated and you'll get 00000000. But if you assign the result to an int, the bits are preserved and you'll get 00000000 00000000 11001100 00000000. (Compare "integer promotions" / "usual arithmetic conversion" in the C standard for the gory details, what I wrote is probably still simplified.)
Dec
2
answered ASCII Representation of Hexadecimal
Dec
2
answered Catch-22 UNIX Shell Zsh