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I have some data that I'm parsing in a set of files. The files contain the year, month, day, hour, minute, and seconds demarcations for a number of data points.

Here is an example of the stream:

> 2010/01/01,00:00:00.979131, 27.4485,  51.9362, 14.8,  6
> 2010/01/01,00:00:01.021977, 27.5149,  51.9375, 16.0,  6
> 2010/01/01,00:00:01.074032, 27.4797,  51.9446, 14.5, 10
> 2010/01/01,00:00:01.663689, 25.8441,-152.8141, 14.6,  6

So far, I can do this to obtain seconds:

raw = textscan(fid, '%d/%d/%d %d:%d:%f %f %f %f %d', 'delimiter', ',');
m = cellfun(@double, raw, 'UniformOutput', false); %convert to doubles
seconds = ((m{:,4} *  3600.0) + (m{:,5} * 60.0) + m{:,6});

Discarding the year, how can I use what I have, plus some special magic involving the month and day to create a monotonically increasing number that represents days in the year as a float?

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Why do you discard the year? Is it that the data is always for only one year? If there is several years involved, then should ie 01.01.2012 and 01.01.2013 (same month and day but different year) result in the same float value? Oh, and are you looking for a general algorithm or do you want to know how to implement it in octave/matlab? –  ain Feb 4 '13 at 0:51
@ain yes, the data is always for one year. –  jml Feb 4 '13 at 1:03
@ain if you have a general algorithm, this would also help me immensely. thanks! –  jml Feb 4 '13 at 1:17
I were going to recommend something that would have worked like datenum() but it now looks like you do have requirement that the value must be in the 0..1 range? –  ain Feb 4 '13 at 1:27

1 Answer 1

up vote 2 down vote accepted

use datenum , for example:

 datenum(Y, M, D, H, MN, S)

returns the serial date numbers for corresponding elements of the Y, M, D, H, MN, and S (year, month, day, hour, minute, and second) array values. datenum does not accept milliseconds in a separate input, but as a fractional part of the seconds (DateString) input. Inputs Y, M, D, H, MN, and S must be arrays of the same size (or any can be a scalar) of type double. You can also specify the input arguments as a date vector, [Y M D H MN S].

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How can I subtract/do math regarding the Y portion of the value so that I get a float from 0-1? Do I simply subtract 734139? –  jml Feb 4 '13 at 1:16
Why do you need a float between 0-1 ? what exactly do you want to do? You can normalize any vector v between 0 and 1 useing: vn=(v-min(v))./(max(v)-min(v)) –  bla Feb 4 '13 at 2:10
Thanks. I want to represent the date as a stream of values throughout the year from the beginning (0) to the end (1). –  jml Feb 4 '13 at 19:56

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