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I am using iGraph to plot graphs. I have just two columns in my matrix- A and B. I need to color my nodes with just 2 colors – that indicates nodes that belong to A and those that belong to B. eg:

# k is a df with 2 columns – A and B
k_mx <- as.matrix(k)
k_mx_g <- graph.edgelist(k_mx, directed = FALSE)
V(k_mx_g)$color = ?? ( want blue for A and red for B)

Please let me know how to do this.

Thanks, PD

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1 Answer

up vote 2 down vote accepted

Assuming this dataframe:

k <-     structure(list(A = 1:4, B = 5:8), 
                 .Names = c("A", "B"), row.names = c(NA, -4L),
                  class = "data.frame")

... you could use rep with an each argument. Otherwise they will be sequentially labelled with c("blue," "red", "blue", "red", "blue", "red", "blue", "red") due to argument recycling:

V(k_mx_g)$color <- rep(c("blue", "red"), each=4)

Gabor's comment leads me to offer this option, which seems more general:

V(k_mx_g)[k$A]$color <- "blue"
V(k_mx_g)[k$B]$color <- "red"
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Unfortunately if this works, then it only works by chance, because you have 1:4 in the first column and 5:8 in the second. –  Gabor Csardi Jul 12 '13 at 21:42
    
This did start out as a data.frame on its way to a matrix. We were led to believe the all of the first column was "A" and needed to be assigned to "blue" and all of the second column was to be assigned "red". How much chance is involved in that procedure? –  BondedDust Jul 12 '13 at 22:42
    
Hmmm, the "another option" is correct I think, but you must be careful to have numbers in the data frame, otherwise you would index with a factor. Also, obviously, this only works if the graph is bipartite, i.e. vertices in column A do not show up in column B, but I guess the poster has such a graph, otherwise the question does not make sense. –  Gabor Csardi Jul 13 '13 at 0:25
    
DWin: a comment is not a very convenient way to answer this properly, but how can you be sure that vertices 1:4 are in his first column? Maybe I am missing something here, unfortunately the poster did not provide any data to be sure. –  Gabor Csardi Jul 13 '13 at 14:39
    
I must be missing something, since I thought using the dataframe column values would cure any ambiguity. –  BondedDust Jul 13 '13 at 16:24
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