23

I'm trying to create a parallelogram in PyPlot. I'm not up to drawing the parallelogram--first I'm putting in the vector arrows--using the following code:

fig = plt.figure()
ax = fig.add_subplot(111)
ax.spines['left'].set_position('zero')
ax.spines['right'].set_color('none')
ax.spines['bottom'].set_position('zero')
ax.spines['top'].set_color('none')
plt.axis([-5,5,-5,5])
ax.xaxis.set_ticks_position('bottom')
ax.yaxis.set_ticks_position('left')
plt.grid()
plt.arrow(0,0, 3,1, head_width=0.2, color='r', length_includes_head=True, label='u')
plt.arrow(0,0, 1,3, head_width=0.2, color='r', length_includes_head=True, label='v')
plt.arrow(0,0, 4,4, head_width=0.2, color='r', length_includes_head=True, label='u+v')
plt.legend()

This returns the following error:

No handles with labels found to put in legend.

I'm not sure why, because, based on the documentation for plt.arrow(), label is an acceptable kwarg, and plt.legend() should ostensibly be reading that. The rest of the figure draws fine; it's just missing the legend.

2
  • I have the same issue with a simple plt.plot ; which version of matplotlib did you use back then? 3.2.2 for me... – Vincent Feb 18 at 10:45
  • It isn't an error though. Its just a warning. – Black Thunder Jun 7 at 11:36
23

It might be late but for anyone with the same issue the solution is using the method legend() for the corresponding ax not as for plt

fig = plt.figure()
ax = fig.add_subplot(111)
ax.spines['left'].set_position('zero')
ax.spines['right'].set_color('none')
ax.spines['bottom'].set_position('zero')
ax.spines['top'].set_color('none')
plt.axis([-5,5,-5,5])
ax.xaxis.set_ticks_position('bottom')
ax.yaxis.set_ticks_position('left')
plt.grid()
plt.arrow(0,0, 3,1, head_width=0.2, color='r', length_includes_head=True, label='u')
plt.arrow(0,0, 1,3, head_width=0.2, color='r', length_includes_head=True, label='v')
plt.arrow(0,0, 4,4, head_width=0.2, color='r', length_includes_head=True, label='u+v')
ax.legend()
1
  • 1
    Its very easy to forget that you have subplots. Thanks for this. Really helped me out. – preetam Dec 15 '20 at 21:59
19

You can explicitly define the elements in the legend.

For full control of which artists have a legend entry, it is possible to pass an iterable of legend artists followed by an iterable of legend labels respectively. Reference

Example:

arr1 = plt.arrow(0,0, 3,1, head_width=0.2, color='r', length_includes_head=True)
arr2 = plt.arrow(0,0, 1,3, head_width=0.2, color='g', length_includes_head=True)
arr3 = plt.arrow(0,0, 4,4, head_width=0.2, color='b', length_includes_head=True)

plt.xlim(0,5)
plt.ylim(0,5)

plt.legend([arr1, arr2, arr3], ['u','v','u+v'])

enter image description here

3
  • 12
    That being said, shouldn't the legend be working with the labels provided in the plt.arrow()s? – Yehuda Dec 16 '19 at 0:52
  • @Yehuda Yes, plt.arrow() works like plt.plot(), and that is being asked for. It is strange why this solution is upvoted so much since it does not explain why plt.legend() does not understand the setting of the label in plt.arrow(), although it should. If it is the same way as in plt.plot(), see stackoverflow.com/questions/66862848/… or stackoverflow.com/questions/64555759/…. – questionto42 Jul 11 at 19:57
  • 1
    @questionto42 1. Thanks for the links and the answers 2. This was the only answer available for almost a year, hence the upvotes ;) – Yehuda Jul 12 at 20:22
3

The error is thrown because you haven't specified the label text

Either do something like this

plt.hist([x01, x02,x03], color=["lightcoral","lightskyblue","slategrey"], stacked=True, 
             label=['Supressed','Active','Resolved'])
plt.legend()

Or

Do not use plt.legend() if you haven't specified the label text as in the following WRONG example:

plt.hist([x01])
plt.legend()

The above will throw the same error, so either remove legend function or provide what it needs -> label. Side note: Here x01 is just a list of number for which I am creating a histogram, in the first example they are three list of numbers to create stacked bar chart

The bottom line is this error is thrown because of not specifying legend text and calling/initializing a legend

1
  • Each arrow has a specified label though. – Yehuda Dec 8 '20 at 16:02

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