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Is it possible to convert Array having binary or hex values stored as each element into 64bit Double Mac Absolute Time? When I inspect array using p var_bytes console shows following output.

\000\000\000\000\000\000\000\000\000\000\000\234\225x\266A\000\000\000\345\005\230\264

Is it possible to convert above array elements in 64bit Double Mac Absolute Time as a string?

My code is following just a simple do..end

puts "\nClose off the page header#{y.unpack("n")}\n"
            z.scan(/(.{8})(.{8})(.{4})(.{4})(.{4})(.{4})(.{8})(.{8})(.{8})(.*\w)/m).each do |j,k,l,m,n,o,p,q,r,s|
                puts "\nContent1#{j.unpack("n")}\n"
                puts "\nContent2:#{k.unpack("n")}\n"
                puts "\nContent3:#{l.unpack("n")}\n"
                puts "\nContent4:#{m.unpack("n")}\n"
                puts "\nContent5:#{n.unpack("n")}\n"
                puts "\nContent6:#{o.unpack("n")}\n"
                puts "\nContent7:#{p.unpack("n")}\n"
                expdt = Time.at((q.unpack("L"))[0])
                createdt = Time.at((r.unpack("L"))[0])
                puts "Date1:\n#{expdt}\n"
                puts "\nDate2:\n#{createdt}\n"
                puts "\nCookie:\n"
                puts s.split(/\0/m)
            end
        end

what will the simple way to convert this negative values to positive so Time.at wont give error and then convert it according to MAC Epoch time?

share|improve this question
    
What's in the array (ie what do those bytes represent) ? –  Frederick Cheung Apr 7 '12 at 7:24
    
I am not even sure what 64bit Double Mac Absolute Time is. Can you also provide a link explaining what's that. Otherwise I agree with @FrederickCheung: we need explanaition of what is stored in the array. –  Boris Strandjev Apr 7 '12 at 7:35
1  
Most recent mac apis store dates as a double indicating number of seconds since the epoch (1st jan 2001 I think) –  Frederick Cheung Apr 7 '12 at 7:36
    
Bytes are in binary I can provide hex values 00 00 9C 95 78 B6 41 00 00 00 E5 05 98 B4 41 6E also link is here explaining what is MAC time . linuxsleuthing.blogspot.in/2011/02/… –  Akash Panchal Apr 7 '12 at 7:44
    
The number of bits you provide are a lot more than 64. You provide 16 bytes, which sums to 128 bits. What kind of representation is that for a 64 bit Mac time? Can you explain a bit further –  Boris Strandjev Apr 7 '12 at 8:11

1 Answer 1

Try this:

MAC_EPOCH = Time.gm(2001,1,1)

def bin2time(bin)
    return MAC_EPOCH + (bin.unpack "D")[0]
end

where bin is an 8-byte representation of a double precision float.

you may need to change "D" to "E" or "G" depending on where you are getting your data from. check the unpack docs for details.

share|improve this answer
    
I am getting this converted time but what I should do so I can get this time as per MAC epoch time which starts from 01/01/2001 00:00:00. Also I am not able to use this method provided I have tried to do this Time.at function directly but any idea how can I convert this negative value to positive that I receive from unpacking with D,E or G.I guess I need to convert this array to some single value or a[0] will work? I did like this for my first array chunk expdt = Time.at((q.unpack("G"))[0]) and it worked but for second chunk it gives me error time must be positive –  Akash Panchal Apr 7 '12 at 10:16
    
I am not using any class or methods at this moment, I am editing my question and my code is there for you –  Akash Panchal Apr 7 '12 at 10:34
    
answer amended. –  Michael Slade Apr 7 '12 at 15:02
    
It still causes trouble as I unpack it with D,E,G it unpacks with negative value sometimes so which would be the best option to convert addition of MAC_EPOCH + (bin.unpack "D")[0] time. I have tried with .to_i(16) but at some point time range exceeds so I get error. –  Akash Panchal Apr 7 '12 at 17:27
    
Negative time values are simply times before 01/01/2001. –  Michael Slade Jun 1 '12 at 12:11

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