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I have:

df1<-structure(list(name = structure(1:5, .Label = c("name1", "name2", 
"name3", "name4", "name5"), class = "factor"), x1 = c(1L, 2L, 
4L, 5L, 8L), x2 = c(1L, 2L, 4L, 5L, 8L), x3 = c(1L, 2L, 4L, 5L, 
8L), x4 = c(1L, 2L, 4L, 5L, 8L), x5 = c(NA, 3L, NA, 6L, NA), 
    x6 = c(NA, 3L, NA, 6L, NA), x7 = c(NA, 3L, NA, 6L, NA), x8 = c(NA, 
    3L, NA, 6L, NA), x9 = c(NA, NA, NA, 7L, NA), x10 = c(NA, 
    NA, NA, 7L, NA), x11 = c(NA, NA, NA, 7L, NA), x12 = c(NA, 
    NA, NA, 7L, NA)), .Names = c("name", "x1", "x2", "x3", "x4", 
"x5", "x6", "x7", "x8", "x9", "x10", "x11", "x12"), class = "data.frame", row.names = c(NA, 
-5L))

I want:

df2<-structure(list(name = structure(c(1L, 2L, 2L, 3L, 4L, 4L, 4L, 
5L), .Label = c("name1", "name2", "name3", "name4", "name5"), class = "factor"), 
    y1 = 1:8, y2 = 1:8, y3 = 1:8, y4 = 1:8), .Names = c("name", 
"y1", "y2", "y3", "y4"), class = "data.frame", row.names = c(NA, 
-8L))

Help!

df1 has rows of differing lengths, but all sequences are 4 cells (they are coordinates). Cant get it quite right by coding a function or plyr...

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2 Answers 2

up vote 2 down vote accepted

I am not sure if this is good answer, but works

df11<-df1[,1:5]
names(df11)<-c("name","y1","y2","y3","y4")

df12<-df1[,c(1,6:9)]
names(df12)<-c("name","y1","y2","y3","y4")


df13<-df1[,c(1,10:13)]
names(df13)<-c("name","y1","y2","y3","y4")

df12<-rbind(df11, df12,df13)
df2<-na.omit(df12)

if there are more than 13, you can always use loop to get every 4 until end, or by ncol So, with loop

n<-ncol(df1)
newdf=data.frame(name=as.character(), y1=as.integer(), y2=as.integer(), y3=as.integer(), y4=as.integer())
for (x in seq(2,n,by=4)){
  subdf<-df1[,c(1,as.integer(x):as.integer(x+3))]
  names(subdf)<-c("name","y1","y2","y3","y4")
  newdf<-rbind(newdf,subdf)
}
df2.loop<-na.omit(newdf)
share|improve this answer
    
OK! I prefer the loop, and I think the "subdf" is the key. thank you! –  Bernard Feb 7 '14 at 2:39

Shorter and more easily extended:

intm <- apply(df1[-1],1,function(x) data.frame(y=matrix(x,ncol=4,byrow=TRUE)))
na.omit(data.frame(name=rep(df1$name,sapply(intm,nrow)),do.call(rbind,intm)))

#   name y.1 y.2 y.3 y.4
#1 name1   1   1   1   1
#2 name2   2   2   2   2
#3 name2   3   3   3   3
#4 name3   4   4   4   4
#5 name4   5   5   5   5
#6 name4   6   6   6   6
#7 name4   7   7   7   7
#8 name5   8   8   8   8
share|improve this answer
    
Ahh yes... Apply not loops! Both give identical answers. Thank you. –  Bernard Feb 7 '14 at 3:31
    
You don't need to specify any names like y1,y2,y3 etc with this method either. –  thelatemail Feb 7 '14 at 3:35
    
great answer, the difference between "R veterans" vs newbie/intermediates...apply, if I see someone use apply family of functions I readily assume they are expert. –  Ananta Feb 7 '14 at 4:30
    
Ananta, should I rather mark this as correct? While both work, i guess this is more elegant!? –  Bernard Feb 7 '14 at 4:51
    
@Ananta - it's just a familiarity thing. I don't know any other real languages, so for(i in ...) doesn't come naturally to me. –  thelatemail Feb 7 '14 at 5:06

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