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I can query an xts time range by using two time strings separated by "/":

library(xts)
set.seed(1234)
a = xts(1:10, as.POSIXlt(1366039619, tz="", origin="1970-01-01") + rnorm(10, 0, 3))
                           [,1]
2013-04-15 11:26:51.962906    4
2013-04-15 11:26:55.378802    1
2013-04-15 11:26:56.329886   10
2013-04-15 11:26:57.275780    7
2013-04-15 11:26:57.306643    9
2013-04-15 11:26:57.360104    8
2013-04-15 11:26:59.832287    2
2013-04-15 11:27:00.287374    5
2013-04-15 11:27:00.518167    6
2013-04-15 11:27:02.253323    3

> a['2013-04-15 11:26:57/2013-04-15 11:26:58']
                           [,1]
2013-04-15 11:26:57.275780    7
2013-04-15 11:26:57.306643    9
2013-04-15 11:26:57.360104    8

How can I run the same range query on a different xts object using the POSIXlt objects index(a[4]) and index(a[7])? Do I have to convert the indexes to strings or there is a faster way using integer values, like the number of secs since the epoch embedded in POSIXlt?

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marked as duplicate by GSee, Arun, Joshua Ulrich, Brian Diggs, Ari B. Friedman Apr 26 '13 at 19:45

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
you can just do a[4:7, ] –  Chinmay Patil Apr 26 '13 at 15:30
    
@geektrader I used 4,7 as an example of what I want to achieve, but my input must be two POSIXlt objects. I'm trying to understand if I have to use strings (costing more time) or I can go with the indexes directly. –  Robert Kubrick Apr 26 '13 at 15:41
    
I think you can subset with indexes directly, no penalty there. –  Chinmay Patil Apr 26 '13 at 15:44
    
@geektrader How? a[index(a[4]):index(a[7])] does not work. –  Robert Kubrick Apr 26 '13 at 15:49
1  
Don't use POSIXlt. Don't use POSIXlt. Don't use POSIXlt –  GSee Apr 26 '13 at 15:59
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2 Answers 2

up vote 0 down vote accepted

ISO-style character subsetting by range (i.e. a length 1 vector containing : or /) is very fast. So you should use something like this :

a[paste(index(a)[4],index(a)[7],sep='::')]
                    [,1]
2013-04-15 17:26:57    7
2013-04-15 17:26:57    9
2013-04-15 17:26:57    8
2013-04-15 17:26:59    2
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1  
Right. So basically build a string. –  Robert Kubrick Apr 26 '13 at 16:02
    
@RobertKubrick yes. –  agstudy Apr 26 '13 at 16:03
    
That's what I was trying to avoid to save some time (building the string), but if it's the only solution... –  Robert Kubrick Apr 26 '13 at 16:05
    
@RobertKubrick it is not the only solution but it is the fastest way to subset an xts object. –  agstudy Apr 26 '13 at 16:25
    
I'm not worry about the subsetting, I'm worried about building query strings millions of times in my program when I already have the indexes. –  Robert Kubrick Apr 26 '13 at 16:34
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a[1:10] would extract the first 10 rows, and you don't even have to tell it which columns you want a[30:32] would give you the 30th through the 32 rows.

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