[R] Vectorized expression to extrapolate matrix columns with columns of another matrix

[Gabor Grothendieck]

Yes, that is what it does.  Note that na.approx interpolates and does
not work precisely as you discussed but its easy, does use m[,2] and
may be good enough.   If you really do want something precisely as you
discussed try this.  It NAs out the rows of m for which column 1 is NA
and then uses na.locf to move the prior non-NA into it.  Then we apply
the formula:

> library(zoo)
> m <- zoo(cbind(c(1, 2, NA, NA, 5, NA, NA), seq(7)^2), as.Date(1:7))
>
> # mm will hold result; m.locf
> m.locf <- mm <- m
> ix <- is.na(mm[,1])
> m.locf[ix,] <- NA
> m.locf <- na.locf(m.locf)
> mm[ix, 1] <- m.locf[ix, 1] * mm[ix,2] / m.locf[ix,2]
> mm

1970-01-02 1.0  1
1970-01-03 2.0  4
1970-01-04 4.5  9
1970-01-05 8.0 16
1970-01-06 5.0 25
1970-01-07 7.2 36
1970-01-08 9.8 49

1970-01-02 1.0  1
1970-01-03 2.0  4
1970-01-04 4.5  9
1970-01-05 8.0 16
1970-01-06 5.0 25
1970-01-07 7.2 36
1970-01-08 9.8 49





Yes, that is what it does. Please read the help file for na.approx and
approx.  If you want something different you will have to special case
the end values.

On Wed, May 12, 2010 at 11:11 AM, Abiel X Reinhart
<abiel.x.reinhart at jpmchase.com> wrote:
> Gabor,
>
> Maybe I am doing this wrong, but rule=2 does not look like it is growing the series out, but rather just carrying the last value forward. It looks like na.approx() followed by na.locf(). For instance:
>
> m <- zoo(cbind(c(1, 2, NA, NA, 5, NA, NA), seq(7)^2), as.Date(1:7))
> na.approx(m[, 1], x = m[, 2], rule=2)
>
> 1970-01-02 1970-01-03 1970-01-04 1970-01-05 1970-01-06 1970-01-07 1970-01-08
>       1.0        2.0        2.7        3.7        5.0        5.0        5.0
>
> Abiel Reinhart
>
> -----Original Message-----
> From: Gabor Grothendieck [mailto:ggrothendieck at gmail.com]
> Sent: Wednesday, May 12, 2010 10:40 AM
> To: Abiel X Reinhart
> Cc: r-help at r-project.org
> Subject: Re: [R] Vectorized expression to extrapolate matrix columns with columns of another matrix
>
> Use rule = 2 as in the extrapolation examples in the na.approx help file.
>
> On Wed, May 12, 2010 at 10:10 AM, Abiel X Reinhart
> <abiel.x.reinhart at jpmchase.com> wrote:
>> Gabor,
>>
>> This comes close to solving my problem, but I am still left with the problem of how I can extrapolate, not just interpolate. In our example, if I define m as,
>>
>> m <- zoo(cbind(c(1, 2, NA, NA, 5, NA, NA), seq(7)^2), as.Date(1:7))
>>
>> instead of
>>
>> m <- zoo(cbind(c(1, 2, NA, NA, 5, NA, 7), seq(7)^2), as.Date(1:7))
>>
>> then I will only get five values back, when I really want m[,1] to be fully extrapolated so that there are seven values. Is there a workaround?
>>
>> Abiel Reinhart
>>
>> -----Original Message-----
>> From: Gabor Grothendieck [mailto:ggrothendieck at gmail.com]
>> Sent: Wednesday, May 12, 2010 8:37 AM
>> To: Abiel X Reinhart
>> Cc: r-help at r-project.org
>> Subject: Re: [R] Vectorized expression to extrapolate matrix columns with columns of another matrix
>>
>> Try this using the zoo package.  See ?na.approx for more and note that
>> this functionality requires zoo 1.6-3 or later.
>>
>> .> m <- zoo(cbind(c(1, 2, NA, NA, 5, NA, 7), seq(7)^2), as.Date(1:7))
>>> na.approx(m[, 1], x = m[, 2])
>> 1970-01-02 1970-01-03 1970-01-04 1970-01-05 1970-01-06 1970-01-07 1970-01-08
>>  1.000000   2.000000   2.714286   3.714286   5.000000   5.916667   7.000000
>>> na.approx(m[, 1])
>> 1970-01-02 1970-01-03 1970-01-04 1970-01-05 1970-01-06 1970-01-07 1970-01-08
>>         1          2          3          4          5          6          7
>>
>>
>> On Tue, May 11, 2010 at 4:48 PM, Abiel X Reinhart
>> <abiel.x.reinhart at jpmchase.com> wrote:
>>> I have two identically sized matrices of data that represent time series (I am storing the data in zoo objects, but the idea should apply to any matrix of data). The time series in the second matrix extend further than in the first matrix, and I would like to use the data in matrix 2 to extrapolate the data in matrix 1. In other words, if mat1[i,j] == NA, then mat1[i,j] <- mat1[i-1, j]*mat2[i,j]/mat2[i-1,j]. Of course, before we can calculate mat1[i,j] we may need to calculate mat1[i-1,j], and that in turn may require the computation of mat1[i-2,j], etc. This could all clearly be done with loops, but I am wondering if anyone can think of a vectorized expression or other efficient method that would work.
>>>
>>> Thanks very much.
>>>
>>> Abiel Reinhart
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>