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day <- c(seq(1, 10592, by = 1))

How to change 'day' into Julian date format from 1st January 1982 to 31st December 2010).

Thanks in advance.

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Is this what you want? day = seq(as.Date("1982-01-01"), as.Date("2010-12-31"), by = "day") – Gregor Nov 19 '13 at 19:25
have a look at ?as.Date – Ricardo Saporta Nov 19 '13 at 19:27
...and seq.Date, which is suggested on ?seq. Well, basically do some research before you post your question. And show what you have tried. – Henrik Nov 19 '13 at 19:28
Thanks a lot @shujaa and Ricardo Saporta. That is exactly what I need. Actually my dataset consist of two columns. The first column appear as number 1 to 10592. The second column is the rainfall values. Just wondering if r could convert the first column into Julian date without having to produce another new column. – Eddie Nov 19 '13 at 19:34

1 Answer 1

up vote 7 down vote accepted

Try"Julian") -- there is a function julian.

So given your date sequence (and replace the length=... with by="1 day" for all dates)

R> seq(as.Date("1982-01-01"), as.Date("2010-12-31"), length=5)
[1] "1982-01-01" "1989-04-01" "1996-07-01" "2003-10-01" "2010-12-31"

you compute Julian dates just by calling the function:

R> julian(seq(as.Date("1982-01-01"), as.Date("2010-12-31"), length=5))
[1]  4383.00  7030.75  9678.50 12326.25 14974.00
[1] "1970-01-01"
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thanks @Dirk Eddelbuettel. – Eddie Nov 19 '13 at 19:35

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