Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have plotted the CCDF as mentioned in question part of the maximum plot points in R? post to get a plot(image1) with this code:

ccdf<-function(duration,density=FALSE)
{
freqs = table(duration)
  X = rev(as.numeric(names(freqs)))
  Y =cumsum(rev(as.list(freqs)));
  data.frame(x=X,count=Y)
}
qplot(x,count,data=ccdf(duration),log='xy')

Now, on the basis of answer by teucer on Howto Plot “Reverse” Cumulative Frequency Graph With ECDF I tried to plot a CCDF using the commands below:

f <- ecdf(duration)
plot(1-f(duration),duration)

I got a plot like image2.
Also I read in from the comments in one of the answers in Plotting CDF of a dataset in R? as CCDF is nothing but 1-ECDF.
I am totally confused about how to get the CCDF of my data.

Image1
enter image description here


Image2enter image description here

share|improve this question
add comment

2 Answers

I used ggplot to get desired ccdf plot of my data as shown below:

>>ecdf_x <- ecdf(x) 
>>dfr <- data.frame( ecdf = ecdf_x(x), 
>>ccdf = 1 - ecdf_x(x) ) 
>>p_ccdf <- ggplot(dfr, aes(x, ccdf)) + geom_line() + scale_x_log10() 
>>p_ccdf

Sorry for posting it so late. Thank you all!

share|improve this answer
add comment

Generate some data and find the ecdf function.

x <- rlnorm(1e5, 5)
ecdf_x <- ecdf(x)

Generate vector at regular intervals over range of x. (EDIT: you want them evenly spaced on a log scale in this case; if you have negative values, then use sample over a linear scale.)

xx <- seq(min(x), max(x), length.out = 1e4)
#or
log_x <- log(x)
xx <- exp(seq(min(log_x), max(log_x), length.out = 1e3))

Create data with x and y coordinates for plot.

dfr <- data.frame(
  x = xx,
  ecdf = ecdf_x(xx),
  ccdf = 1 - ecdf_x(xx)
)

Draw plot.

p_ccdf <- ggplot(dfr, aes(x, ccdf)) + 
  geom_line() +
  scale_x_log10()
p_ccdf

(Also take a look at aes(x, ecdf).)

share|improve this answer
    
At the fourth step while generating interval vector xx shows NaN in all the elements. This happens after executing this command xx <- exp(seq(min(log_x), max(log_x), length.out = 1e3)) Is it because of my data? A sample of my data stored in 'x' is given below<br/> [99988,] 0 [99989,] 132 [99990,] 19269015 [99991,] 724557277 [99992,] 86783 [99993,] 2407606 [99994,] 20955521 [99995,] 1337 [99996,] 172949 [99997,] 1179731 –  user744121 Jul 13 '11 at 18:36
    
data spans to row [623208,] –  user744121 Jul 13 '11 at 18:42
    
Moreover, it says: NAs introduced by coercion –  user744121 Jul 13 '11 at 18:44
    
If you have negative values, then taking logs makes no sense. In that case, use the simpler call to seq. It just made slightly more sense to define xx with even spacing on a log scale, since x came from a lognormal distribution. –  Richie Cotton Jul 13 '11 at 21:34
    
I do not have negative values in my data and also my data x has not come from lognormal distribution. Is it still possible that I can still take the log scale? the problem is when calculation xx, taking log(x) is fine. Any suggestions? –  user744121 Jul 14 '11 at 6:34
show 1 more comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.