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EDIT: I have made a mistake in my previous code that I shared. I replaced the "bins" with "b" but missed one...

I also use the correct data.frame now (y instead of the original df.score)

NEW code:

# some data
x <- runif(1000)
x2 <- rnorm(1000)
y <- data.frame(x,x2)
# we want to bin the dataframe y acording to values in x into b bins
b = 10
bins=10

# we create breaks in several ways
breaks=unique(quantile(x, probs=seq.int(0,1, by=1/b)))
breaks=unique(quantile(y$x, probs=seq.int(0,1, length.out=b+1)))

# now to the question
# this wokrs
y$b <- with(y, cut(x, breaks=unique(quantile(x, probs=seq.int(0,1, length.out=11))), include.lowest=TRUE))
table(y$b)
# this works too
y$b2 <- with(y, cut(x, breaks=unique(quantile(x, probs=seq.int(0,1, length.out=(bins+1)))), include.lowest=TRUE))
table(y$b2)
# this does not work
y$b3 <- with(y, cut(x, breaks=unique(quantile(x, probs=seq.int(0,1, length.out=(b+1)))), include.lowest=TRUE))

Error in seq.int(0, 1, length.out = (b + 1)) : 'length.out' must be a non-negative number In addition: Warning message: In Ops.factor(b, 1) : + not meaningful for factors

Now if I split the code up there is no issue !!!

brks=unique(quantile(x, probs=seq.int(0,1, length.out=(b + 1))))
y$b3 <- with(y, cut(x, breaks=brks, include.lowest=TRUE))

I am lost here...

This is part of more dynamic code, knitred together based on details in the data set.

So I want to create bins on the fly and report on them. The code works now but I do not understand why when I use the word "bins" the code works and when using the "b" it fails...?


OLD from here I need to add bins dynamically to a dataframe so I can report on them later.

# some data
x <- runif(1000)
x2 <- rnorm(1000)
y <- data.frame(x,x2)
# we want to bin the dataframe y acording to values in x into b bins
b = 10

# we create breaks in several ways
breaks=unique(quantile(x, probs=seq.int(0,1, by=1/b)))
breaks=unique(quantile(y$x, probs=seq.int(0,1, length.out=b+1)))

# now to question
# this works

y$bins <- with(df.score, cut(x, breaks=unique(quantile(Pchurn, probs=seq.int(0,1, length.out=11))), include.lowest=TRUE))
table(y$bins)

So if I want to do the exact same using the bin var directly it fails:

# this does not work
y$bins <- with(df.score, cut(x, breaks=unique(quantile(Pchurn, probs=seq.int(0,1, length.out=bins+1))), include.lowest=TRUE))


Error in seq.int(0, 1, length.out = (bins + 1)) : 
  'length.out' must be a non-negative number
In addition: Warning message:
In Ops.factor(bins, 1) : + not meaningful for factors

What am I missing here?

share|improve this question
1  
Example's not reproducible. –  Ari B. Friedman Sep 27 '13 at 15:32
    
Do you have a column bins in your df.score? IMHO you want to use length.out=b+1 instead of length.out=bins+1. –  sgibb Sep 27 '13 at 15:41

1 Answer 1

up vote 2 down vote accepted

I think you want this (substituting b for bins in the length parameter calc just below "#this does not work":

y$bins <- with(df.score, cut(x, 
                    breaks=unique(quantile(Pchurn, 
                                         probs=seq.int(0,1, length.out=b+1))), 
                    include.lowest=TRUE))

Hard to test without a score variable and a more complete description of the goals, but at least the code does not throw an error with this in the workspace.

 df.score=data.frame(Pchurn=rnorm(100), x=rnorm(100))
share|improve this answer
    
Hi, thank you for replies, I see there was a mistake in my example. I did not replace all "bins" with "b" and this seems to solve the problem.Strange the word bins seems to mean something else then the number I asigned to it? –  Hugo Koopmans Sep 28 '13 at 18:36
    
See new code on the top of the question –  Hugo Koopmans Sep 28 '13 at 18:56
    
You did not have a an object named 'bins' when I looked at the question earlier. You are probably confusing yourself by having column names that are the same as are being used as object names. That will cause confusion similar to the problems with using the attach function. –  BondedDust Sep 28 '13 at 18:56
    
I are right I confused myself, but now I restarted R session cleared the workspace but still the above throws the error. Only on example b3... –  Hugo Koopmans Sep 28 '13 at 19:07
1  
Right. Now you have a column named 'b' and an object named 'b' and because you are using with(y, ...) the R interpreter finds a vector value for the length.out parameter before it finds the length-1 object in the workspace and throws an error. STOP USING THE SAME NAMES FOR OBJECTS AND COLUMNS! –  BondedDust Sep 29 '13 at 3:47

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