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I have a data.frame with sample data from multiple sites and years. I would like to create a new "pairwise" data.frame that takes creates three columns, Site_Year, Value_2008, Value_Year, where Value_Year is the value for any other year in the dataset. For example, in my sample dataset the site "Anjan" is visited in 2008, 2009, 2010. The new data.frame to have two records for this site:

Site_Year Value_2008 Value_Year
Anjan.2009 0.11 0.96
Anjan.2010 0.11 -0.25

If there is a site that was sampled before 2008 the results would look like:

Site_Year Value_2008 Value_Year
Ljungdalen.2005 0.09 -0.40
Ljungdalen.2009 0.09 0.32
Ljungdalen.2011 0.09 -0.00

Ultimately, I am going to plot these results so that I can look at changes in these (mean) values between years and test them to see if they are significantly different.

Sample data:

WW_Site_Year_Data <- structure(list(Site_Year = c("Anjan.2008", "Anjan.2009", "Anjan.2010",
"Fittjebodarna.2008", "Fittjebodarna.2009", "Flatruet.2008",
"Flatruet.2009", "Flatruet.2010", "Flatruet.2011", "Fotingen.2008",
"Fotingen.2009", "Gestvallen.2008", "Gestvallen.2009", "Glen.2008",
"Glen.2009", "Glen.2010", "Gräftåvallen.2008", "Gräftåvallen.2009",
"Hallbodarna.2008", "Hallbodarna.2009", "Ljungdalen.2005", "Ljungdalen.2008",
"Ljungdalen.2009", "Ljungdalen.2011", "Ljungris.2008", "Ljungris.2009",
"Ljungris.2010", "Mårdsund.2008", "Mårdsund.2009", "Mårdsund.2010",
"Öster_Galåbodarna.2008", "Öster_Galåbodarna.2009", "Ramundberget.2008",
"Ramundberget.2009", "Rätan.2008", "Rätan.2009", "Rätan.2010",
"Särvfjället.2008", "Särvfjället.2009", "Storulvån.2008", "Storulvån.2009",
"Storulvån.2010", "Tångböle.2005", "Tångböle.2008", "Tångböle.2009",
"Tossåsen.2008", "Tossåsen.2009", "Vålådalen.2008", "Vålådalen.2009",
"Vålådalen.2010", "Vemdalsskalet.2002", "Vemdalsskalet.2008",
"Vemdalsskalet.2009"), Site_Name = c("Anjan", "Anjan", "Anjan",
"Fittjebodarna", "Fittjebodarna", "Flatruet", "Flatruet", "Flatruet",
"Flatruet", "Fotingen", "Fotingen", "Gestvallen", "Gestvallen",
"Glen", "Glen", "Glen", "Gräftåvallen", "Gräftåvallen", "Hallbodarna",
"Hallbodarna", "Ljungdalen", "Ljungdalen", "Ljungdalen", "Ljungdalen",
"Ljungris", "Ljungris", "Ljungris", "Mårdsund", "Mårdsund", "Mårdsund",
"Öster_Galåbodarna", "Öster_Galåbodarna", "Ramundberget", "Ramundberget",
"Rätan", "Rätan", "Rätan", "Särvfjället", "Särvfjället", "Storulvån",
"Storulvån", "Storulvån", "Tångböle", "Tångböle", "Tångböle",
"Tossåsen", "Tossåsen", "Vålådalen", "Vålådalen", "Vålådalen",
"Vemdalsskalet", "Vemdalsskalet", "Vemdalsskalet"), Year = c("2008",
"2009", "2010", "2008", "2009", "2008", "2009", "2010", "2011",
"2008", "2009", "2008", "2009", "2008", "2009", "2010", "2008",
"2009", "2008", "2009", "2005", "2008", "2009", "2011", "2008",
"2009", "2010", "2008", "2009", "2010", "2008", "2009", "2008",
"2009", "2008", "2009", "2010", "2008", "2009", "2008", "2009",
"2010", "2005", "2008", "2009", "2008", "2009", "2008", "2009",
"2010", "2002", "2008", "2009"), Value = c(0.112816109860291,
0.960290707474735, -0.257326331130005, 0.216427465038733, 0.956767099330118,
0.0526510364211729, 0.588996350906268, -0.465285757216318, -0.0437472490447301,
0.535560060909972, 0.389645985829418, 0.89391173396597, 0.240894790643034,
0.469695915206932, 0.251017199176266, -0.208323019946377, 0.0849050148677196,
0.184296870311739, -0.107309010266098, 0.36349491505071, -0.396608387512831,
0.0931374765423872, 0.32514153209616, -0.00466699456138238, 0.336789804880864,
0.806764888899387, -0.13955949253251, 0.108716189818012, 0.0978498660969545,
-0.160915801270199, 0.623151244760041, 0.713080174849265, -0.279733235253308,
0.427277452192635, 0.296839613563375, 0.659552054627706, 0.356154916318252,
0.659219370597927, 0.825734934055685, 0.183577169158829, 1.31979282562961,
0.0574714990570691, -0.517636804796056, 0.478950613513035, 0.504156229919797,
0.915335741962761, 1.11129338570452, 0.205145037964442, 0.829430613619136,
-0.187573312149385, -0.646545555669656, -0.034670665219269, 1.68156971430668
)), .Names = c("Site_Year", "Site_Name", "Year", "Value"), row.names = c(1L,
2L, 3L, 4L, 5L, 6L, 7L, 8L, 9L, 10L, 11L, 12L, 13L, 14L, 15L,
16L, 17L, 18L, 19L, 20L, 21L, 22L, 23L, 24L, 25L, 26L, 27L, 28L,
29L, 30L, 31L, 32L, 33L, 34L, 35L, 36L, 37L, 38L, 39L, 40L, 41L,
42L, 43L, 44L, 45L, 48L, 49L, 50L, 51L, 52L, 53L, 54L, 55L), class = "data.frame")
share|improve this question
    
What do you want for Value_2008 for a site like Tänndalen which has no entry for 2008? –  seancarmody Aug 20 '12 at 12:19
    
I will just remove it from the dataset. I meant to do that already, I apologize. –  Keith Larson Aug 20 '12 at 12:22
    
Edited the answer to handle that case: no need for the if statement. –  seancarmody Aug 20 '12 at 13:03

1 Answer 1

up vote 1 down vote accepted

A very useful package in this situation is plyr:

ddply(WW_Site_Year_Data, .(Site_Name), transform,
      Value_2008 = if (2008 %in% Year) Value[Year==2008] else NA)

If records with no Value for 2008 are excluded from the data frame you could use

ddply(WW_Site_Year_Data, .(Site_Name), transform,
      Value_2008 = Value[Year==2008])

It you want to use base R, it's uglier:

unsplit(lapply(split(WW_Site_Year_Data, WW_Site_Year_Data$Site_Name),
        transform, Value_2008 = if (2008 %in% Year) Value[Year==2008] else NA),
        WW_Site_Year_Data$Site_Name)
share|improve this answer
    
works nice, it would be nice to know how to do it in the base package though! –  Keith Larson Aug 20 '12 at 12:50
1  
I've added the base R version: split, apply, combine. The plyr package is built on the idea of combining these three common steps in a single function. –  seancarmody Aug 20 '12 at 13:23

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