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I have following type of data:

Person <- c("A", "B", "C", "AB", "BC", "AC",  "D", "E")
Father <- c(NA,  NA,  NA,   "A", "B", "C",    NA, "D")
Mother <- c(NA,  NA,  NA, "B",   "C", "A", "C",    NA)
var1 <- c(  1,   2,   3,     4,   2,   1,     6, 9)
var2 <- c(1.4, 2.3, 4.3,  3.4, 4.2, 6.1,   2.6, 8.2)
myd <- data.frame (Person, Father, Mother, var1, var2)

 Person Father Mother var1 var2
1      A   <NA>   <NA>    1  1.4
2      B   <NA>   <NA>    2  2.3
3      C   <NA>   <NA>    3  4.3
4     AB      A      B    4  3.4
5     BC      B      C    2  4.2
6     AC      C      A    1  6.1
7      D   <NA>      C    6  2.6
8      E      D   <NA>    9  8.2

Here is for missing (unknown). I want re-organize data in to trio (an Individual and its Father and Mother). For example trio for AB individual will include data from from its father A and mother B.

 Person Father Mother var1 var2
1      A   <NA>   <NA>    1  1.4
2      B   <NA>   <NA>    2  2.3
4     AB      A      B    4  3.4

A, B, C can not make trio as they do not have parents. Somecases as E has only one parent father known that is D. In this case there will just two members in the trio.

  7      D   <NA>      C    6  2.6
  3      C   <NA>   <NA>    3  4.3

In case where mother and fathers are repeated in two trios the same value will be recycled.

Thus expected complete output would be:

    Person Father Mother var1 var2  Trio 
1      A   <NA>   <NA>    1  1.4     1
2      B   <NA>   <NA>    2  2.3     1
4     AB      A      B    4  3.4     1

2      B   <NA>   <NA>    2  2.3     2
3      C   <NA>   <NA>    3  4.3     2
5     BC      B      C    2  4.2     2

1      A   <NA>   <NA>    1  1.4     3
3      C   <NA>   <NA>    3  4.3     3
6     AC      C      A    1  6.1     3

NA       <NA> <NA>    <NA>  NA  NA     4
3      C   <NA>   <NA>    3  4.3      4
7      D   <NA>      C    6  2.6      4

NA       <NA> <NA>    <NA>  NA  NA     5
7      D   <NA>      C      6  2.6     5
8      E      D   <NA>      9  8.2     5     
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2 Answers 2

up vote 2 down vote accepted

This maybe roughly what you want

Person <- c("A", "B", "C", "AB", "BC", "AC",  "D", "E")
Father <- c(NA,  NA,  NA,   "A", "B", "C",    NA, "D")
Mother <- c(NA,  NA,  NA, "B",   "C", "A", "C",    NA)
var1 <- c(  1,   2,   3,     4,   2,   1,     6, 9)
var2 <- c(1.4, 2.3, 4.3,  3.4, 4.2, 6.1,   2.6, 8.2)
myd <- data.frame (Person, Father, Mother, var1, var2,stringsAsFactors=F)

note the slight change in definition of myd using stringsAsFactors=F

parentage<-function(x,myd){
    y<-myd[x,]
    p1<-as.character(y['Father'])
    p2<-as.character(y['Mother'])
    out<-y
    if(!is.na(p1)){
        out<-rbind(out,myd[myd$Person==p1,])
    }
    if(!is.na(p2)){
        out<-rbind(out,myd[myd$Person==p2,])
    }
    out$Trio=x
    out
}

ans<-lapply(seq_along(myd$Person),parentage,myd)

 > ans
[[1]]
  Person Father Mother var1 var2 Trio
1      A   <NA>   <NA>    1  1.4    1

[[2]]
  Person Father Mother var1 var2 Trio
2      B   <NA>   <NA>    2  2.3    2

[[3]]
  Person Father Mother var1 var2 Trio
3      C   <NA>   <NA>    3  4.3    3

[[4]]
   Person Father Mother var1 var2 Trio
4      AB      A      B    4  3.4    4
2       A   <NA>   <NA>    1  1.4    4
21      B   <NA>   <NA>    2  2.3    4

[[5]]
  Person Father Mother var1 var2 Trio
5     BC      B      C    2  4.2    5
2      B   <NA>   <NA>    2  2.3    5
3      C   <NA>   <NA>    3  4.3    5

[[6]]
   Person Father Mother var1 var2 Trio
6      AC      C      A    1  6.1    6
3       C   <NA>   <NA>    3  4.3    6
31      A   <NA>   <NA>    1  1.4    6

[[7]]
  Person Father Mother var1 var2 Trio
7      D   <NA>      C    6  2.6    7
3      C   <NA>   <NA>    3  4.3    7

[[8]]
  Person Father Mother var1 var2 Trio
8      E      D   <NA>    9  8.2    8
7      D   <NA>      C    6  2.6    8

if you want to have a dataframe you can use the plyr package

library(plyr)
ans<-adply(seq_along(myd$Person),1,parentage,myd)
share|improve this answer
    
+1 This solution might be not so efficient as using a graph when the number of persons is large, since it needs to traverse all the persons for every person that is passed to function parentage. But it is a much simpler solution than the one I proposed and it will have a similar efficiency when the number of persons to process is not very high. –  betabandido Jul 16 '12 at 23:56

I would represent your problem as a graph and then design a graph traversal algorithm to collect all the trios that you are looking for.

For instance, here you have a subset of the trios in your problem:

A    B    C
 \  / \  /
  vv   vv
  AB   BC 

You could start by the vertices without any edge going out (AB and BC), and create a trio with their parents. Then move to their parents and repeat the process. You will need a way to keep track of which vertices (persons) you have already visited in order to avoid exploring the same vertices more than once.

R has several packages for using graphs. For instance, you may have a look at igraph.

share|improve this answer
    
@betabandido, sounds interesting theoritically but do not know to implement practically ...thanks –  shNIL Jul 17 '12 at 0:56

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