Lua 字符串反编译器
Lua string decompiler
是否可以对这个字符串进行反混淆以使其可读?
我试过 unluac 和 luadec,但是不行。
local data =('1B4C7561520000040404080019930D0A1A0A00000000000000000001120000038700000025800000080000402580800008000080010000C041000080818000802100410106000141410100411D7FFEC020004180060041C007000200410200008B000080C100024101000281410002C181020040A4008000C3000001030400014B00034181000381C10003C2010004024100044281000482C10004C301000503410400416486014008004301460001418B8B45C18A8C46418A8D46C18A8E47418A8F40818A8A81814A004301460001C18B8B47C18A8C46418A8D46C18A9040818A004181C603C881C79081C18..{other bunch of codes}')
local chunk = data:gsub('..', function (c) return string.char(tonumber(c, 16)) end)
local func = load(chunk)
func()
您的代码几乎 lua 字节码,只是混淆了一点:每个字符都编码为十六进制。获取字节码的简单方法是
local data = 'your lovely data'
local f = assert(io.open('bytecode.luac', 'wb'))
for c in data:gmatch('..') do
f:write(string.char(tonumber(c, 16)))
end
f:flush()
f:close()
这会将字节码写入bytecode.luac。现在你需要真正的反编译:https://github.com/viruscamp/luadec 看起来是个很棒的工具。
希望对您有所帮助。
是否可以对这个字符串进行反混淆以使其可读?
我试过 unluac 和 luadec,但是不行。
local data =('1B4C7561520000040404080019930D0A1A0A00000000000000000001120000038700000025800000080000402580800008000080010000C041000080818000802100410106000141410100411D7FFEC020004180060041C007000200410200008B000080C100024101000281410002C181020040A4008000C3000001030400014B00034181000381C10003C2010004024100044281000482C10004C301000503410400416486014008004301460001418B8B45C18A8C46418A8D46C18A8E47418A8F40818A8A81814A004301460001C18B8B47C18A8C46418A8D46C18A9040818A004181C603C881C79081C18..{other bunch of codes}')
local chunk = data:gsub('..', function (c) return string.char(tonumber(c, 16)) end)
local func = load(chunk)
func()
您的代码几乎 lua 字节码,只是混淆了一点:每个字符都编码为十六进制。获取字节码的简单方法是
local data = 'your lovely data'
local f = assert(io.open('bytecode.luac', 'wb'))
for c in data:gmatch('..') do
f:write(string.char(tonumber(c, 16)))
end
f:flush()
f:close()
这会将字节码写入bytecode.luac。现在你需要真正的反编译:https://github.com/viruscamp/luadec 看起来是个很棒的工具。
希望对您有所帮助。