Conversion from unix time string to uint64

Question

Hafiz Luqman il 20 Feb 2019

0
Link

Link diretto a questa domanda

https://it.mathworks.com/matlabcentral/answers/446084-conversion-from-unix-time-string-to-uint64

Commentato: Jan il 25 Feb 2019

I have lidar sensor data and every file is named on its timestamps. The file name 25 characters long (21 characters for time stamps and 4 characters for extension).

For example first file name is "1520944184833390730.pcd"

When I try to convert it to uint64

timeNum = uint64(str2num(fileNames(1:end-4)));

It gives

timeNum = 1520944184833390848

2 Commenti
Mostra NessunoNascondi Nessuno

Jan il 20 Feb 2019

Modificato: Jan il 20 Feb 2019

Correctly. What is your question? You cannot store 25 digits exactly in an uint64. 2^64 is about 10^19.26, so you can expect 19 valid digits only. But as long as you do not mention, what your question is, it is not clear, how to help you.

Maybe the first 16 digits are the seconds, and the last 9 the nanoseconds?

Geoff Hayes il 20 Feb 2019

Modificato: Geoff Hayes il 20 Feb 2019

Apri in MATLAB Online

Hafiz - what does

str2num(fileNames(1:end-4))

return? Perhaps you are losing some precision with str2num... What happens if you use str2double instead?

In your above example, there are 19 digits in the name (less the extension) but you say The file name 25 characters long (21 characters for time stamps and 4 characters for extension). Which is correct?

Accedi per commentare.

Accedi per rispondere a questa domanda.

Answer 1

Jan il 21 Feb 2019

0
Link

Link diretto a questa risposta

https://it.mathworks.com/matlabcentral/answers/446084-conversion-from-unix-time-string-to-uint64#answer_362051

Apri in MATLAB Online

The conversion by str2double creates a double, which uses 53 bits only. With sscanf you can get 64 significant bits to store the value:

format long g
a = uint64(str2num('123456789012345678'))
b = sscanf('123456789012345678', '%lu')
>> a = 123456789012345680  % Last 2 digits rounded as expected
>> b = 123456789012345678  % Accurate

With uint64 you can store 19 significant digits: log10(2^64 - 1) = 19.26

You did not mention yet, which problem you want to solve. What do you want to do with the string '1520944184833390730'?

1 Commento
Mostra -1 commenti meno recentiNascondi -1 commenti meno recenti

Hafiz Luqman il 25 Feb 2019

Thanks for helping :)

Accedi per commentare.

Answer 2

Peter Perkins il 21 Feb 2019

1
Link

Link diretto a questa risposta

https://it.mathworks.com/matlabcentral/answers/446084-conversion-from-unix-time-string-to-uint64#answer_362149

Apri in MATLAB Online

I'm gonna run with Jan's guess, which, in the absence of any description, seems plausible:

>> datetime(1520944184833390730/1e9,'convertFrom','posixtime')
ans = 
  datetime
   13-Mar-2018 12:29:44

Lets say you have that character string.

>> t = '1520944184833390730.pcd';
>> secs = str2num(t(1:10))
secs =
                1520944184
>> ns = str2num(t(11:19))
ns =
   833390730
>> d = datetime(secs,'ConvertFrom','posixtime','Format','dd-MMM-yyyy HH:mm:ss.SSSSSSSSS') + milliseconds(ns/1e6)
d = 
  datetime
   13-Mar-2018 12:29:44.833390730