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.

I have two representations of the same function. The one shows it as a function of voltage, the other as a function of depth (a monotonous but complicated function). Depth can be expressed as a function of voltage. I would like to add something like a voltage axis to the depth representation but this does not seem to be possible.

How can I add vertical lines at increments of the voltage like -0.5, -1.0, -1.5, ... on the depth plot?

share|improve this question
    
have you checked the matplotlib gallery? –  Francesco Montesano Mar 21 '13 at 13:41
    
Could you post your code and also an representative image of what you'd like to achieve? –  David Zwicker Mar 21 '13 at 14:09
    
I checked the gallery. Here is link how it looks at the moment, I want to get rid of the upper graph and display the voltage information on the lower: dl.dropbox.com/u/226980/stackexchange.jpg –  sonium Mar 21 '13 at 14:24
    
And it should look like this: dl.dropbox.com/u/226980/enhanced.png or with a proper scale on top. –  sonium Mar 21 '13 at 14:39
add comment

1 Answer 1

I found that it is indeed possible to create a custom second axis on the top. The result looks like this: https://dl.dropbox.com/u/226980/solved.jpg

This works by using FixedLocator.

The whole code looks like this:

f = subplot(111)
p1 = plot(depth_samples,NtNdbulk, label = "relative concentration")
xlabel("depth [um]")
ylabel("N_trap/N_bulk")

twinx()
p2 = plot(depth_samples,Nt, color='r', label = "absolute concentration")   

p = p1 + p2
ylabel("N_trap")

labs = [l.get_label() for l in p]
legend(p, labs, loc=0)

ax2 = twiny()
p1 = plot(depth_samples,NtNdbulk, alpha = 0) #invisible

l = matplotlib.ticker.FixedLocator(tick_depth*1e4) # Positions of the ticks
ax2.get_xaxis().set_major_locator(l)
ax2.get_xaxis().set_ticklabels(ticks) # Voltages as displayed
xlabel("DLTS voltage during pulse")

show()
share|improve this answer
    
Please accept your own answer. –  tcaswell Mar 31 '13 at 0:02
add comment

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.