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Need to encode & decode byte-stream (containing non-ascii characters possibly), from/into uint16, uint32, uint64 (their typical C/C++ meaning), taking care of endianness. What is an efficient & hopefully cross-platform way to do such a thing in Lua ?

My target arch is 64-bit x86_64, but would like to keep it portable (if it doesn't cost me on performance front).

e.g.

decode (say currently in a Lua string) -- 0x00, 0x1d, 0xff, 0x23, 0x44, 0x32 (little endian) as - uint16: (0x1d00) = 7424 uint32: (0x324423ff) = 843326463

Would be great if someone can explain with an example.

share|improve this question
up vote 4 down vote accepted

Take a look at the struct and lpack libraries.

In this example, I use the struct.unpack to decode a Lua string into two integers with forced little-endian encoding:

require 'struct'
-- convert character codes to a Lua string - this may come from your source
local str = string.char(0x00, 0x1d, 0xff, 0x23, 0x44, 0x32)
-- format string: < = little endian, In = unsigned int (n bytes)
local u16, u32 = struct.unpack('<I2I4', str)
print(u16, u32) --> 7424    843326463
share|improve this answer
    
seems very simple and elegant, however I don't seem to have 'struct' extension module. luarocks fails building/installing it with error. Will try to solve that and try this. thanks! – mike.dinnone Mar 9 '11 at 20:24
    
@michal-kottman, tried the code after fixing luarocks and installing 'struct' but for lua cribs about second parameter to unpack (i.e. str) not being string. to debug I tried this little code (which doesn't crib, but doesn't seem to work as expected either -- > str = string.char(0x00, 0xff) > local u16 = struct.unpack('<I2', str) > print(u16) nil – mike.dinnone Mar 10 '11 at 14:30
    
@michal-kottman, sorry! fixed it. slight change was needed in Lua 5.1 (at least on my system). just had to do a: struct = require("struct") – mike.dinnone Mar 10 '11 at 15:35
    
Strange, I tested the code presented as-is in Lua 5.1, and it worked correctly (maybe I had an older version of struct), but I'm glad it works for you now, it's a very handy tool for binary data... – Michal Kottman Mar 10 '11 at 19:36

for converting from bytes to int (taking care of endianness at byte level, and signedness):

function bytes_to_int(str,endian,signed) -- use length of string to determine 8,16,32,64 bits
    local t={str:byte(1,-1)}
    if endian=="big" then --reverse bytes
        local tt={}
        for k=1,#t do
            tt[#t-k+1]=t[k]
        end
        t=tt
    end
    local n=0
    for k=1,#t do
        n=n+t[k]*2^((k-1)*8)
    end
    if signed then
        n = (n > 2^(#t*8-1) -1) and (n - 2^(#t*8)) or n -- if last bit set, negative.
    end
    return n
end

And while we're at it also the other direction:

function int_to_bytes(num,endian,signed)
    if num<0 and not signed then num=-num print"warning, dropping sign from number converting to unsigned" end
    local res={}
    local n = math.ceil(select(2,math.frexp(num))/8) -- number of bytes to be used.
    if signed and num < 0 then
        num = num + 2^n
    end
    for k=n,1,-1 do -- 256 = 2^8 bits per char.
        local mul=2^(8*(k-1))
        res[k]=math.floor(num/mul)
        num=num-res[k]*mul
    end
    assert(num==0)
    if endian == "big" then
        local t={}
        for k=1,n do
            t[k]=res[n-k+1]
        end
        res=t
    end
    return string.char(unpack(res))
end

Any remarks are welcome, it's tested, but not too thoroughly...

share|improve this answer
    
Very instructional. I seem to have learnt a load of Lua through your illustrative example, seriously. – mike.dinnone Mar 9 '11 at 19:43
1  
In function bytes_to_int, the line n = (n > 2^(#t-1) -1) and (n - 2^#t) or n I think It should be #t*8 instead or #t. Is the number of bits you want, not bytes. – Lilás Feb 10 '14 at 11:04
    
It seems you are right! Thanks for the suggestion, I've corrected it in my answer. – jpjacobs Feb 10 '14 at 15:22

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