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I have a matrix of asset prices

A,B
12.1,33.5
12.2,33.4
12.3,33.5
12.1,33.6

How can I get financial returns matrix using something like

RET(x) <- {(x-Previousx)/Previousx}  # My pseudocode

to give

A,B
0.0082,-0.0029
0.008197,0.0029
-0.0162,0.00298
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3 Answers 3

up vote 2 down vote accepted

Use diff() with apply():

dat <- read.csv(text="A,B
12.1,33.5
12.2,33.4
12.3,33.5
12.1,33.6", header=TRUE)
dat


apply(dat, 2, function(x)diff(x)/x[-length(x)])
                A            B
[1,]  0.008264463 -0.002985075
[2,]  0.008196721  0.002994012
[3,] -0.016260163  0.002985075

This works because:

  1. The function diff() returns lagged differences
  2. I then divide the results of diff(x) by x[-length(x)], i.e. x after removing the last element. This ensures you divide the difference by the previous element.
  3. Then simply wrap this into a apply that does this for each column.
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Perhaps 2. should be x[-length(x)] as I wish to divide by previous asset value? –  ManInMoon Dec 6 '12 at 12:22
    
@ManInMoon Good catch. You're right. I'll edit the answer. –  Andrie Dec 6 '12 at 12:37

Based on Andrie's answer but not need to use apply function

diff(as.matrix(dat)) / dat[-nrow(dat),]
             A            B
1  0.008264463 -0.002985075
2  0.008196721  0.002994012
3 -0.016260163  0.002985075

diff can be applied to a matrix, so simply converting dat into a matrix and applying diff will return the lagged differences for each column.

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For all we know the OP already had a matrix. ;) –  GSee Dec 6 '12 at 13:56
dat <- read.csv(text = "A,B
12.1,33.5
12.2,33.4
12.3,33.5
12.1,33.6", header = TRUE)

Here is an easy and efficient way to do it:

(tail(dat, -1) - head(dat, -1)) / head(dat, -1)


             A            B
2  0.008264463 -0.002985075
3  0.008196721  0.002994012
4 -0.016260163  0.002985075
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