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Feb
17
comment Eigenvalues vs PVE (percent variance explained)
Maybe this post in addition helps. I don't think there's anything to worry about.
Feb
17
comment Eigenvalues vs PVE (percent variance explained)
First, your first eigen vector is 54.33 NOT 5.433. Second, so what if its 24.27 an 51.00%? the 51% is 24.27/sum(...). Why does this concern you?
Feb
17
comment Eigenvalues vs PVE (percent variance explained)
does my answer clear the confusion? The variation (or variance) in each direction is given by each eigen value. And proportion of variance is just the ratio of each eigen value to the sum. Not sure what you're looking for if this doesn't help.
Feb
17
comment Eigenvalues vs PVE (percent variance explained)
You should share your data that gives this result. What do you mean by an alternate representation of the PVE itself?
Feb
17
comment Apply indexed function to each value in row of matrix
(+1) that's a solution! :)
Feb
17
comment Apply indexed function to each value in row of matrix
I still think this is definitely the way to go. But I was just trying to answer OP's question (or what I thought his question was) (about knowing an equivalent using apply).
Feb
17
comment Apply indexed function to each value in row of matrix
@user1790121, since your question was framed as an equivalent of for-loop, I thought you wanted to know how to use this in apply (as it is internally a for-loop). Of course you could construct a matrix directly. I just realise that that's what juba has provided.
Feb
17
comment Apply indexed function to each value in row of matrix
you mean each column i should be multiplied by exp(-r*i/500)?
Feb
15
comment How can I key by a column of lists in data.table
hmmm, I'll frame my answer as a question (just so that I don't repeat myself). Given a list of vectors, say, list(1:2, 1:2, 3:5), how do you group them? By group, I mean something similar to factor for vectors. If I were to do factor(c(1,1,2,3,3,4,4)) I'd get its levels as 1,2,3,4. How to do this on the list and in addition, store the levels as another column (without using DT$x)?
Feb
15
comment Get average value for only columns that fit a specific criteria
(+1) juba, sub is sufficient.
Feb
15
comment How can I key by a column of lists in data.table
something like this, maybe? DT[, grp:=lapply(x, function(u) which(DT$x %in% list(u))[1])]
Feb
15
comment How can I key by a column of lists in data.table
I guess it comes down to: how do you use lapply to find identical elements in a list and assign them all a unique value? In this case, the first two can get say 1 and the 3rd element of x would get a unique value of 2. I can't think of an easier way than which(.) using lapply...
Feb
15
comment How can I key by a column of lists in data.table
What I mean is, if you want to take each element of x one by one, that is, (1,2), then the next 1,2 and then 3,4,5 and perform an operation (and there is no key set), like here using which(..), how would you do it without using 1:nrow(dt) in by?
Feb
15
comment Get average value for only columns that fit a specific criteria
Do you want to calculate this mean for every month and within every month per day or just all Mondays mean, Tuesdays mean etc..?
Feb
15
comment How can I key by a column of lists in data.table
@MatthewDowle, Is it possible to select row-by-row without doing 1:nrow(DT)?
Feb
15
comment Install an R package temporarily, only for the current session
yes, but the packages remain installed in the dev_mode, iiuc?
Feb
15
comment Install an R package temporarily, only for the current session
(+1) I find it useful. I wish you had posted this before I installed like a million packages! :)
Feb
15
comment Why won't my column name change work in R?
Sorry about that! I dint quite get what the problem was from your code.
Feb
15
comment Why won't my column name change work in R?
it won't work. you should do colnames(dat)[1] <- "newname" or if you dint know the column number but the name, colnames(dat)[colnames(dat) == "oldname"] <- "newname"
Feb
15
comment How can I key by a column of lists in data.table
yes, list is not allowed (currently) as a key column. You get this message when you do `setkey(DT, "x")