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Calculating moving average in R

I have written a rate of change function in R, defined as:

rateChange <- function(x) ((last(x)-first(x))/first(x))*100

It works wonderfully on various date ranges, such as the rate of change for 5 days, 10 days, 200 days, etc. However, I now have need to apply this function between every day. For example, to identify the rate of change for 5 days one would require the past 6 data observations.

Here is an example in Excel, and for clarity, I am trying to reproduce the "Rate of Change" column:

data

Thank you!

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marked as duplicate by Tim, Tyler Rinker, mnel, Chris Gerken, 一二三 Dec 7 '12 at 3:57

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.

    
I voted to close but I now believe that decision was incorrect. –  Tyler Rinker Dec 6 '12 at 19:18

3 Answers 3

up vote 4 down vote accepted

I would suggest using TTR::ROC:

library(TTR)
roc <- c(18.89, 18.93, 18.55, 18.77, 18.87, 18.91)
ROC(roc, type="discrete")*100
# [1]         NA  0.2117522 -2.0073957  1.1859838  0.5327651  0.2119767
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thank you! this is the solution. –  user1499626 Dec 6 '12 at 20:14
1  
@user1499626 - You mean "this is a solution". There is almost always more than one way to do things in R. –  Dason Dec 6 '12 at 20:22

This is close but the math (outcome) isn't exactly the same:

 roc <- c(18.89, 18.93, 18.55, 18.77, 18.87, 18.91)
 sapply(seq_along(roc)[-1], function(i) 100*(roc[i] - roc[i-1])/roc[i-1])
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x <- rnorm(5)
x
#[1] -0.48504744 -1.71843913  0.03890147 -2.11410329 -1.59765182
100*(tail(x, -1) - head(x, -1))/head(x, -1)
#[1]   254.28269  -102.26377 -5534.50754  -24.42887

If you need it to be the same length as the input vector you could just add an NA onto the end like this

c(100*(tail(x, -1) - head(x, -1))/head(x, -1), NA)
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