[R] generating a vector of y_t = \sum_{i = 1}^t (alpha^i * x_{t - i + 1})

Sun Nov 27 21:25:30 CET 2011

You can write a function to do so and then there are all sorts of options of what to do with it - mostly they degenerate into putting it in a personal package or into your .Rprofile for convenient use. If you want to use compiled code, that's slightly trickier but good facilities exist to do so from C, C++, and Fortran. 

Any follow-up, after reading the R extensions manual and the documentation to ?package.skeleton, ?STARTUP, and ?function, probably deserves its own thread. 

Michael

On Nov 27, 2011, at 12:34 PM, "Yen, Steven T" <syen at utk.edu> wrote:

> Hi
> Is there a way to link a frequently-used sub-routine (in binary form or preferably in ascii form) in a program, similar to the following in Gauss? Thanks.
> 
> #include c:\programs\mylib1.g;
> 
> --
> Steven T. Yen, Professor of Agricultural Economics
> The University of Tennessee
> http://web.utk.edu/~syen/
> 
> ________________________________________
> From: r-help-bounces at r-project.org [r-help-bounces at r-project.org] on behalf of David Winsemius [dwinsemius at comcast.net]
> Sent: Sunday, November 27, 2011 11:46 AM
> To: R. Michael Weylandt <michael.weylandt at gmail.com>
> Cc: r-help at r-project.org
> Subject: Re: [R] generating a vector of y_t = \sum_{i = 1}^t (alpha^i * x_{t    - i + 1})
> 
> On Nov 27, 2011, at 9:25 AM, R. Michael Weylandt wrote:
> 
>> You also might look at EMA() in the TTR package for a C
>> implementation. (I think it matches your problem but can't promise)
>> 
> 
> It's pretty close for EMA(1:1000, n=1,  ratio=0.5) and 7 times faster.
> 
>> EMA(1:10, n=1,  ratio=0.5)
>  [1] 1.000000 1.500000 2.250000 3.125000 4.062500 5.031250 6.015625
> 7.007812 8.003906
> [10] 9.001953
>> loopRec3(1:10, 0.5)
>  [1] 0.500000 1.250000 2.125000 3.062500 4.031250 5.015625 6.007812
> 7.003906 8.001953
> [10] 9.000977
> 
> This series converges very quickly to n-1 when the ratio = 0.5 and to
> n-3 when ratio = 0.25. It's already within 1% at the fifth iteration.
> There may be a simple analytical approximation that makes the process
> even more efficient. The asymptotic result appears to be:  n-(1-ratio)/
> ratio
> 
>> tail(EMA(1:1000, n=1,  ratio=0.5))
> [1] 994 995 996 997 998 999
>> tail(loopRec3(1:1000, 0.5))
> [1] 994 995 996 997 998 999
> 
>> EMA(1:1000, n=1,  ratio=0.1)[491:500]
>  [1] 482 483 484 485 486 487 488 489 490 491
> --
> David.
> 
> 
>> Michael
>> 
>> On Nov 27, 2011, at 9:05 AM, Michael Kao <mkao006rmail at gmail.com>
>> wrote:
>> 
>>> Hi Florent,
>>> 
>>> That is great, I was working on solving the recurrence equation and
>>> this was part of that equation. Now I know how to put everything
>>> together, thanks for all the help e everybody!
>>> 
>>> Cheers,
>>> 
>>> On 27/11/2011 2:05 p.m., Florent D. wrote:
>>>> You can make things a lot faster by using the recurrence equation
>>>> 
>>>> y[n] = alpha * (y[n-1]+x[n])
>>>> 
>>>> loopRec<- function(x, alpha){
>>>>  n<- length(x)
>>>>  y<- numeric(n)
>>>>  if (n == 0) return(y)
>>>>  y[1]<- alpha * x[1]
>>>>  for(i in seq_len(n)[-1]){
>>>>     y[i]<- alpha * (y[i-1] + x[i])
>>>>  }
>>>>  return(y)
>>>> }
>>>> 
>>>> 
>>>> 
>>>> On Sun, Nov 27, 2011 at 5:17 AM, Michael
>>>> Kao<mkao006rmail at gmail.com>  wrote:
>>>>> Dear Enrico,
>>>>> 
>>>>> Brilliant! Thank you for the improvements, not sure what I was
>>>>> thinking using rev. I will test it out to see whether it is fast
>>>>> enough for our implementation, but your help has been
>>>>> SIGNIFICANT!!!
>>>>> 
>>>>> Thanks heaps!
>>>>> Michael
>>>>> 
>>>>> On 27/11/2011 10:43 a.m., Enrico Schumann wrote:
>>>>>> Hi Michael
>>>>>> 
>>>>>> here are two variations of your loop, and both seem faster than
>>>>>> the original loop (on my computer).
>>>>>> 
>>>>>> 
>>>>>> require("rbenchmark")
>>>>>> 
>>>>>> ## your function
>>>>>> loopRec<- function(x, alpha){
>>>>>>  n<- length(x)
>>>>>>  y<- double(n)
>>>>>>  for(i in 1:n){
>>>>>>      y[i]<- sum(cumprod(rep(alpha, i)) * rev(x[1:i]))
>>>>>>  }
>>>>>>  y
>>>>>> }
>>>>>> loopRec(c(1, 2, 3), 0.5)
>>>>>> 
>>>>>> loopRec2<- function(x, alpha){
>>>>>>  n<- length(x)
>>>>>>  y<- numeric(n)
>>>>>>  for(i in seq_len(n)){
>>>>>>      y[i]<- sum(cumprod(rep.int(alpha, i)) * x[i:1])
>>>>>>  }
>>>>>>  y
>>>>>> }
>>>>>> loopRec2(c(1, 2, 3), 0.5)
>>>>>> 
>>>>>> loopRec3<- function(x, alpha){
>>>>>>  n<- length(x)
>>>>>>  y<- numeric(n)
>>>>>>  aa<- cumprod(rep.int(alpha, n))
>>>>>>  for(i in seq_len(n)){
>>>>>>      y[i]<- sum(aa[seq_len(i)] * x[i:1])
>>>>>>  }
>>>>>>  y
>>>>>> }
>>>>>> loopRec3(c(1, 2, 3), 0.5)
>>>>>> 
>>>>>> 
>>>>>> ## Check whether value is correct
>>>>>> all.equal(loopRec(1:1000, 0.5), loopRec2(1:1000, 0.5))
>>>>>> all.equal(loopRec(1:1000, 0.5), loopRec3(1:1000, 0.5))
>>>>>> 
>>>>>> 
>>>>>> ## benchmark the functions.
>>>>>> benchmark(loopRec(1:1000, 0.5), loopRec2(1:1000, 0.5),
>>>>>> loopRec3(1:1000, 0.5),
>>>>>> replications = 50, order = "relative")
>>>>>> 
>>>>>> 
>>>>>> ... I get
>>>>>>                 test replications elapsed relative user.self
>>>>>> sys.self
>>>>>> 2 loopRec2(1:1000, 0.5)           50    0.77 1.000000
>>>>>> 0.76     0.00
>>>>>> 3 loopRec3(1:1000, 0.5)           50    0.86 1.116883
>>>>>> 0.85     0.00
>>>>>> 1  loopRec(1:1000, 0.5)           50    1.84 2.389610
>>>>>> 1.79     0.01
>>>>>> 
>>>>>> 
>>>>>> Regards,
>>>>>> Enrico
>>>>>> 
>>>>>> 
>>>>>> Am 27.11.2011 01:20, schrieb Michael Kao:
>>>>>>> Dear R-help,
>>>>>>> 
>>>>>>> I have been trying really hard to generate the following vector
>>>>>>> given
>>>>>>> the data (x) and parameter (alpha) efficiently.
>>>>>>> 
>>>>>>> Let y be the output list, the aim is to produce the the following
>>>>>>> vector(y) with at least half the time used by the loop example
>>>>>>> below.
>>>>>>> 
>>>>>>> y[1] = alpha * x[1]
>>>>>>> y[2] = alpha^2 * x[1] + alpha * x[2]
>>>>>>> y[3] = alpha^3 * x[1] + alpha^2 * x[2] + alpha * x[3]
>>>>>>> .....
>>>>>>> 
>>>>>>> below are the methods I have tried and failed miserably, some
>>>>>>> are just
>>>>>>> totally ridiculous so feel free to have a laugh but would
>>>>>>> appreciate if
>>>>>>> someone can give me a hint. Otherwise I guess I'll have to give
>>>>>>> RCpp a
>>>>>>> try.....
>>>>>>> 
>>>>>>> 
>>>>>>> ## Bench mark the recursion functions
>>>>>>> loopRec<- function(x, alpha){
>>>>>>> n<- length(x)
>>>>>>> y<- double(n)
>>>>>>> for(i in 1:n){
>>>>>>> y[i]<- sum(cumprod(rep(alpha, i)) * rev(x[1:i]))
>>>>>>> }
>>>>>>> y
>>>>>>> }
>>>>>>> 
>>>>>>> loopRec(c(1, 2, 3), 0.5)
>>>>>>> 
>>>>>>> ## This is a crazy solution, but worth giving it a try.
>>>>>>> charRec<- function(x, alpha){
>>>>>>> n<- length(x)
>>>>>>> exp.mat<- matrix(rep(x, each = n), nc = n, byrow = TRUE)
>>>>>>> up.mat<- matrix(eval(parse(text = paste("c(",
>>>>>>> paste(paste(paste("rep(0,
>>>>>>> ", 0:(n - 1), ")", sep = ""),
>>>>>>> paste("cumprod(rep(", alpha, ",", n:1, "))", sep = "") , sep =
>>>>>>> ","),
>>>>>>> collapse = ","), ")", sep = ""))), nc = n, byrow = TRUE)
>>>>>>> colSums(up.mat * exp.mat)
>>>>>>> }
>>>>>>> vecRec(c(1, 2, 3), 0.5)
>>>>>>> 
>>>>>>> ## Sweep is slow, shouldn't use it.
>>>>>>> matRec<- function(x, alpha){
>>>>>>> n<- length(x)
>>>>>>> exp.mat<- matrix(rep(x, each = n), nc = n, byrow = TRUE)
>>>>>>> up.mat<- sweep(matrix(cumprod(rep(alpha, n)), nc = n, nr = n,
>>>>>>> byrow = TRUE), 1,
>>>>>>> c(1, cumprod(rep(1/alpha, n - 1))), FUN = "*")
>>>>>>> up.mat[lower.tri(up.mat)]<- 0
>>>>>>> colSums(up.mat * exp.mat)
>>>>>>> }
>>>>>>> matRec(c(1, 2, 3), 0.5)
>>>>>>> 
>>>>>>> matRec2<- function(x, alpha){
>>>>>>> n<- length(x)
>>>>>>> exp.mat<- matrix(rep(x, each = n), nc = n, byrow = TRUE)
>>>>>>> up.mat1<- matrix(cumprod(rep(alpha, n)), nc = n, nr = n, byrow
>>>>>>> = TRUE)
>>>>>>> up.mat2<- matrix(c(1, cumprod(rep(1/alpha, n - 1))), nc = n, nr
>>>>>>> = n)
>>>>>>> up.mat<- up.mat1 * up.mat2
>>>>>>> up.mat[lower.tri(up.mat)]<- 0
>>>>>>> colSums(up.mat * exp.mat)
>>>>>>> }
>>>>>>> 
>>>>>>> matRec2(c(1, 2, 3), 0.5)
>>>>>>> 
>>>>>>> ## Check whether value is correct
>>>>>>> all.equal(loopRec(1:1000, 0.5), vecRec(1:1000, 0.5))
>>>>>>> all.equal(loopRec(1:1000, 0.5), matRec(1:1000, 0.5))
>>>>>>> all.equal(loopRec(1:1000, 0.5), matRec2(1:1000, 0.5))
>>>>>>> 
>>>>>>> ## benchmark the functions.
>>>>>>> benchmark(loopRec(1:1000, 0.5), vecRec(1:1000, 0.5),
>>>>>>> matRec(1:1000, 0.5),
>>>>>>> matRec2(1:1000, 0.5), replications = 50,
>>>>>>> order = "relative")
>>>>>>> 
>>>>>>> Thank you very much for your help.
>>>>>>> 
>>>>>>> ______________________________________________
>>>>>>> R-help at r-project.org mailing list
>>>>>>> https://stat.ethz.ch/mailman/listinfo/r-help
>>>>>>> PLEASE do read the posting guide
>>>>>>> http://www.R-project.org/posting-guide.html
>>>>>>> and provide commented, minimal, self-contained, reproducible
>>>>>>> code.
>>>>>>> 
>>>>> ______________________________________________
>>>>> R-help at r-project.org mailing list
>>>>> https://stat.ethz.ch/mailman/listinfo/r-help
>>>>> PLEASE do read the posting guide http://www.R-project.org/posting-guide.html
>>>>> and provide commented, minimal, self-contained, reproducible code.
>>> 
>>> ______________________________________________
>>> R-help at r-project.org mailing list
>>> https://stat.ethz.ch/mailman/listinfo/r-help
>>> PLEASE do read the posting guide http://www.R-project.org/posting-guide.html
>>> and provide commented, minimal, self-contained, reproducible code.
>> 
>> ______________________________________________
>> R-help at r-project.org mailing list
>> https://stat.ethz.ch/mailman/listinfo/r-help
>> PLEASE do read the posting guide http://www.R-project.org/posting-guide.html
>> and provide commented, minimal, self-contained, reproducible code.
> 
> David Winsemius, MD
> West Hartford, CT
> 
> ______________________________________________
> R-help at r-project.org mailing list
> https://stat.ethz.ch/mailman/listinfo/r-help
> PLEASE do read the posting guide http://www.R-project.org/posting-guide.html
> and provide commented, minimal, self-contained, reproducible code.