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Here's an example of what I mean:

import matplotlib.pyplot as plt

xdata = [5, 10, 15, 20, 25, 30, 35, 40]
ydata = [1, 3, 5, 7, 9, 11, 13, 15]
yerr_dat = 0.5

plt.figure()

plt.plot(xdata, ydata, 'go--', label='Data', zorder=1)

plt.errorbar(xdata, ydata, yerr = yerr_dat, zorder=2, fmt='ko')

plt.legend()

plt.show()

which will plot this:

enter image description here

I don't want the error points and the None label in the legend, how can I take those out?

I'm using Canopy in its version 1.0.1.1190.


Edit

After trying Joe's solution with this code:

import matplotlib.pyplot as plt

xdata = [5, 10, 15, 20, 25, 30, 35, 40]
ydata = [1, 3, 5, 7, 9, 11, 13, 15]
yerr_dat = 0.5
value = 20

plt.figure()

scatt = plt.plot(xdata, ydata, 'go--', label='Data', zorder=1)
hline = plt.hlines(y=5, xmin=0, xmax=40)
vline = plt.vlines(x=20, ymin=0, ymax=15)

plt.errorbar(xdata, ydata, yerr = yerr_dat, zorder=2, fmt='ko')

plt.legend([scatt, vline, hline], ['Data', 'Horiz line', 'Verti line = %d' % value], fontsize=12)

plt.show()

I get this warning:

/home/gabriel/Canopy/appdata/canopy-1.0.0.1160.rh5-x86/lib/python2.7/site-packages/matplotlib/legend.py:628: UserWarning: Legend does not support [<matplotlib.lines.Line2D object at 0xa09a28c>]
Use proxy artist instead.

http://matplotlib.sourceforge.net/users/legend_guide.html#using-proxy-artist

  (str(orig_handle),))

and this output:

plot2

where the first label is not showing for some reason. Ideas?


Edit 2

Turns out I was missing a comma in the line:

scatt, = plt.plot(xdata, ydata, 'go--', label='Data', zorder=1)

After adding it everything worked like a charm. Thanks Joe!

share|improve this question
    
For what it's worth, I cannot replicate this with Python 2.7.5, matplotlib 1.2.1 and IPython 0.13. Try to update your matplotlib. –  nordev Jun 7 '13 at 17:08
2  
@nordev - Matplotlib's legend behavior was changed in 1.1 or 1.2 (I can't remember which offhand). Prior to this, all plotted artists would be shown in the legend, regardless of whether or not a label was explicitly assigned. At any rate, updating mpl would fix it, but it's a design decision that was changed recently, rather than a bug. –  Joe Kington Jun 7 '13 at 17:12
1  
According to Canopy's own site (enthought.com/products/canopy/package-index) it uses matplotlib v 1.2.0, so this probably has been fixed starting from 1.2.1. –  Gabriel Jun 7 '13 at 17:21
1  
@Gabriel - Huh... I thought it was changed earlier than that. At any rate, it looks like that's when it was changed. I'm suprised it was slipped in in a point release. Must have been considered a bug, but it was definitely present in earlier versions (though it would have displayed "Errorbar 1" instead of "None"). There was a refactor of the Legend class awhile back. Probably related to that. –  Joe Kington Jun 7 '13 at 17:38
1  
@Gabriel - You're missing a comma. It should be scat, = plt.plot.... plot always returns a tuple, even when there's only one artist. (Which is dute to plot's overloaded functionality to make it behave like matlab's plot.) It's a common "gotcha". –  Joe Kington Jun 7 '13 at 17:55
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1 Answer 1

up vote 4 down vote accepted

On newer versions of matplotlib, what you're wanting is the default behavior. Only artists with an explicitly assigned label will appear in the legend.

However, it's easy to control what's displayed in the legend. Just pass in only the artists you'd like to label:

import matplotlib.pyplot as plt

xdata = [5, 10, 15, 20, 25, 30, 35, 40]
ydata = [1, 3, 5, 7, 9, 11, 13, 15]
yerr_dat = 0.5

plt.figure()

dens = plt.plot(xdata, ydata, 'go--', zorder=1)

plt.errorbar(xdata, ydata, yerr = yerr_dat, zorder=2, fmt='ko')

plt.legend(dens, ['Density Profile'])

plt.show()

enter image description here

Alternately, you could specify label='_nolegend_' for the errorbar plot, but I don't know what versions of matplotlib support that, and passing in explicit lists of artists and labels will work for any version.

If you'd like to add other artists:

import matplotlib.pyplot as plt

xdata = [5, 10, 15, 20, 25, 30, 35, 40]
ydata = [1, 3, 5, 7, 9, 11, 13, 15]
yerr_dat = 0.5

plt.figure()

# Note the comma! We're unpacking the tuple that `plot` returns...
dens, = plt.plot(xdata, ydata, 'go--', zorder=1)
hline = plt.axhline(5)

plt.errorbar(xdata, ydata, yerr = yerr_dat, zorder=2, fmt='ko')

plt.legend([dens, hline], ['Density Profile', 'Ceiling'], loc='upper left')

plt.show()

enter image description here

share|improve this answer
    
And what would I do if I have more than one legend to be displayed? Say that I'm also plotting an hline and I want a legend for it too? Sorry for extending the question. –  Gabriel Jun 7 '13 at 17:19
    
Just add it to the list of artists that you're passing in. As my example is written, dens is actually a tuple with a single Line2D artist (plot always returns a tuple). legend expects a sequence of artists and a sequence of labels. I'll update my example in a second to show this. –  Joe Kington Jun 7 '13 at 17:22
    
I'm getting a warning when I try this: UserWarning: Legend does not support [<matplotlib.lines.Line2D object at 0xa09a28c>] Use proxy artist instead. I'll update the question with the exact code that issues this warning. –  Gabriel Jun 7 '13 at 17:48
    
Oops I just noticed that sneaky comma! –  Gabriel Jun 7 '13 at 17:55
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