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Here is my .csv file :

dateval,links
18/03/2013,100
19/03/2013,200
20/03/2013,300
21/03/2013,400
22/03/2013,500

This file is read into an object named date1 and this is the code I'm using to graph the data :

g_range <- range(0, date1$links)
plot(date1$links, type="o", col="blue", ylim=g_range,
    axes=FALSE, ann=FALSE)
axis(1, xlab=date1$links)
box()
title(main="Additions", col.main="red", font.main=4)
axis(2, las=1, at=50*0:g_range[2])
title(xlab="Date", col.lab=rgb(0,0.5,0))
title(ylab="# Links", col.lab=rgb(0,0.5,0))

Here is the generated graph :

enter image description here

The date values are not being outputted, instead the numbers 1 - 5 are displayed. How can I modify the code so that it generates the date values contained in the .csv file ? I think the problem is with this line : axis(1, xlab=date1$links) ?

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1 Answer 1

up vote 1 down vote accepted

Try this instead:

axis(1,at=1:5,labels = date1$dateval)

So, you'll note that if you look carefully at ?axis you'll see that there is no xlab argument at all, but the second and third arguments are:

at - the points at which tick-marks are to be drawn. Non-finite (infinite, NaN or NA) values are omitted. By default (when NULL) tickmark locations are computed, see ‘Details’ below.

labels - this can either be a logical value specifying whether (numerical) annotations are to be made at the tickmarks, or a character or expression vector of labels to be placed at the tickpoints. (Other objects are coerced by as.graphicsAnnot.) If this is not logical, at should also be supplied and of the same length. If labels is of length zero after coercion, it has the same effect as supplying TRUE.

But really maybe you should be doing something more like this:

date1$dateval <- as.Date(date1$dateval,format = "%d/%m/%Y")
plot(date1$dateval,date1$links, type="o", col="blue", ylim=g_range, ann=FALSE,axes = FALSE)
axis(1,at=date1$dateval,labels = date1$dateval)

But even that is kind of a crude way to handle plotting dates compared to using packages/functions specifically designed for that purpose.

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Beat me to the punch. I would also add that the OP might want to avoid future problems when dealing with unevenly spaced dates by converting date1$dateval to a Date object. E.g. - using as.Date(date1$dateval,format="%d/%m/%Y") –  thelatemail Mar 19 '13 at 22:04
    
@joran the amount of dates is dynamic, so the date1 object in above example contains 5 dates & values, but in but it could contain 10 dates etc... instead of using 1:5 is there a parameter value that accommodates this ? –  blue-sky Mar 19 '13 at 22:06
    
@user470184 (1) Calculate the number of rows in your data frame. (2) pass to at a sequence from 1 to the number of rows in your data frame. –  joran Mar 19 '13 at 22:08
    
@joran - or even just do at=seq_along(date1$dateval), assuming the dates are evenly spaced as noted above. –  thelatemail Mar 19 '13 at 22:11
    
@thelatemail i used at=1:nrow(date1) this is ok ? –  blue-sky Mar 19 '13 at 22:14

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