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Ok this should be easy but I can NOT figure it out. I have data that is called avePrice (using diamond information in ggplot2):

Fair      Good Very Good   Premium     Ideal 
282.0    3050.5    2648.0    3181.0    1809.0

I want to plot, using the headings (the first row) on the x-axis as labels and the values (second row) on the y-axis.

This seems it should be easy in R but I cannot seem to figure it out!

I can do this

qplot(x=c("Fair", "Good", "Very Good", "Premium",  "Ideal"), y=avePrice, geom="bar", xlab="Diamond Cut", ylab="Average Price")

which works, but it would seem there HAS to be a simple way to do this without typing in the xlabels manually? Hopefully?

Thanks in advance... I'm expecting to feel dumb when someone points out how :)

Clarification: I know I can move the x=c("Fair...") stuff out of the qplot command and have it elsewhere, but I still am having to manually enter it at that point.

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2 Answers

up vote 3 down vote accepted

You can directly plot this using ggplot2 without having to calculate the average prices by cut. Here is a one-liner

qplot(cut, price, data = diamonds, stat = 'summary', fun.y = 'mean')
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hm, this is far better than what I was doing :-) –  enderland Feb 8 '12 at 18:09
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ggplot2 is amazingly flexible with handling data and plots. glad to be of help. –  Ramnath Feb 8 '12 at 18:13
    
Yep, I'm just learning R unfortunately :-) –  enderland Feb 8 '12 at 18:15
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ggplot generally wants data in columns of the data frame.

df <- data.frame(Fair=282.0, Good=3050.5, Very.Good=2648.0, Premium=3181.0, Ideal=1809.0)

df.fix <- data.frame(grades=names(df), avePrice=t(df), row.names=NULL)

qplot(grades, avePrice, data=df.fix, geom='bar', stat='identity')

But in one line:

qplot(x=names(df), y=t(df), geom='bar', stat='identity')
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But that doesn't solve my main problem - I don't want to have to type in the column names manually (you are simply moving that step from the plot command to a dataframe creation). –  enderland Feb 8 '12 at 18:00
    
if you dput your data or show me its structure, I can help more. Otherwise, I have to make data somehow. It wasn't meant as a work around, only to create some sample data to work with. –  Justin Feb 8 '12 at 18:02
    
It seems using "names(avePrice)" will do what I am trying - someone posted it as a comment, then deleted it? –  enderland Feb 8 '12 at 18:03
    
Yes, that should work nicely and is what I was trying to illustrate in my examples. –  Justin Feb 8 '12 at 18:05
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