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.

The x-axis is time broken up into time intervals. There is an interval column in the data frame that specifies the time for each row. The column is a factor, where each interval is a different factor level.

Plotting a histogram or line using geom_histogram and geom_freqpoly works great, but I'd like to have a line, like that provided by geom_freqpoly, with the area filled.

Currently I'm using geom_freqpoly like this:

ggplot(quake.data, aes(interval, fill=tweet.type)) + geom_freqpoly(aes(group = tweet.type, colour = tweet.type)) + opts(axis.text.x=theme_text(angle=-60, hjust=0, size = 6))

alt text

I would prefer to have a filled area, such as provided by geom_density, but without smoothing the line: alt text

UPDATE:

The geom_area has been suggested, is there any way to use a ggplot2-generated statistic, such as ..count.., for the geom_area's y-values? Or, does the count aggregation need to occur prior to using ggplot2?

UPDATE 2:

As state in the answer, geom_area(..., stat = "bin") is the solution.

This:

ggplot(quake.data, aes(interval)) + geom_area(aes(y = ..count.., fill = tweet.type, group = tweet.type), stat = "bin") + opts(axis.text.x=theme_text(angle=-60, hjust=0, size = 6))

produces: alt text

share|improve this question
    
if you're already doing intervals are you sure you want a smooth curve? –  Dan May 3 '10 at 1:03
    
No, I was just exploring the ggplot2 geoms that would produce the filled area. I'd prefer the geom_freqpoly, but with a filled area. I'm guessing geom_area will get that but I'll have to manually aggregate the frequency count. –  mattrepl May 3 '10 at 1:16
    
Actually, is there a reason you're using a factor instead of a date time variable? –  hadley May 4 '10 at 14:16
    
No reason. I was having difficulty getting some of the time series packages to work and I ended up doing something similar to what was mentioned here: stackoverflow.com/questions/2441136/… Is there a benefit in converting them to datetimes? This project has been my first extensive use of R, hence the violation of idioms. –  mattrepl May 4 '10 at 17:53

4 Answers 4

up vote 6 down vote accepted

Perhaps you want:

geom_area(aes(y = ..count..), stat = "bin")

?

share|improve this answer
2  
Thank you, I've used 'stat = "bin"' before but forgot about it. I need to buy your book. =) –  mattrepl May 4 '10 at 1:46

I'm not entirely sure what you're aiming for. Do you want a line or bars. You should check out geom_bar for filled bars. Something like:

p <- ggplot(data, aes(x = time, y = count))
p + geom_bar(stat = "identity")

If you want a line filled in underneath then you should look at geom_area which I haven't personally used but it appears the construct will be almost the same.

p <- ggplot(data, aes(x = time, y = count))
p + geom_area()

Hope that helps. Give some more info and we can probably be more helpful.

Actually i would throw on an index, just the row of the data and use that as x, and then use

p <- ggplot(data, aes(x = index, y = count))
p + geom_bar(stat = "identity") + scale_x_continuous("Intervals", 
breaks = index, labels = intervals)
share|improve this answer
    
and the scale works for geom_area and geom_bar –  Dan May 2 '10 at 23:33

ggplot(quake.data, aes(interval, fill=tweet.type, group = 1)) + geom_density()

But I don't think this is a meaningful graphic.

share|improve this answer
    
After seeing it, I agree. I'll update my question to clarify that I'm looking for a geom_freqpoly plot with a filled area. It looks like geom_area would work, but is it possible to use ggplot2 provided statistics (e.g., ..count..) for y-axis values? –  mattrepl May 3 '10 at 13:39

Additional answer which may help: geom_ribbon can be used to produce a filled area between two lines without needing to explicitly construct a polygon. There is good documentation here: http://had.co.nz/ggplot2/geom_ribbon.html

share|improve this answer

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.