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My question is a bit similar to this question that draws line with width given in data coordinates. What makes my question a bit more challenging is that unlike the linked question, the segment that I wish to expand is of a random orientation.

Let's say if the line segment goes from (0, 10) to (10, 10), and I wish to expand it to a width of 6. Then it is simply

x = [0, 10]
y = [10, 10]
ax.fill_between(x, y - 3, y + 3)

However, my line segment is of random orientation. That is, it is not necessarily along x-axis or y-axis. It has a certain slope.

A line segment s is defined as a list of its starting and ending points: [(x1, y1), (x2, y2)].

Now I wish to expand the line segment to a certain width w. The solution is expected to work for a line segment in any orientation. How to do this?

UPDATE: plt.plot(x, y, linewidth=6.0) cannot do the trick, because I want my width to be in the same unit as my data.

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Why can't you use the line width parameter? plt.plot(x, y, linewidth=6.0) –  beroe Oct 16 '13 at 3:10
    
@beroe Because I want the width to be in the same unit as the data. Say my data is in meter. Then I want my line width to be 6m. –  mavErick Oct 16 '13 at 3:11
    
I suspect you really want to be drawing rectangles. –  tcaswell Oct 16 '13 at 3:27
1  
This looks very similar to this question stackoverflow.com/q/15670973/2870069 –  Jakob Oct 16 '13 at 10:53
1  
@Jakob, not totally the same, if your target is the saved figure, then zoom support is not necessary. mavErick, I think I got it working below, but you would have to adjust the scaling factor if you want multiple subplots. –  beroe Oct 16 '13 at 18:06
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1 Answer

EDIT: Revised completely to get the proper result...

Explanation:

  • Set up the figure with a known height and make the scale of the two axes equal (or else the idea of "data coordinates" does not apply). Make sure the proportions of the figure match the expected proportions of the x and y axes.

  • Compute the height of the whole figure point_hei (including margins) in units of points by multiplying inches by 72

  • Manually assign the y-axis range yrange (You could do this by plotting a "dummy" series first and then querying the plot axis to get the lower and upper y limits.)

  • Provide the width of the line that you would like in data units linewid

  • Calculate what those units would be in points pointlinewid while adjusting for the margins. In a single-frame plot, the plot is 80% of the full image height.

  • Plot the lines, using a capstyle that does not pad the ends of the line (has a big effect at these large line sizes)

Voilà? (Note: this should generate the proper image in the saved file, but no guarantees if you resize a plot window.)

import matplotlib.pyplot as plt
rez=600
wid=8.0 # Must be proportional to x and y limits below
hei=6.0
fig = plt.figure(1, figsize=(wid, hei))
sp = fig.add_subplot(111)
# # plt.figure.tight_layout() 
# fig.set_autoscaley_on(False)
sp.set_xlim([0,4000])
sp.set_ylim([0,3000])
plt.axes().set_aspect('equal')

# line is in points: 72 points per inch
point_hei=hei*72 

xval=[100,1300,2200,3000,3900]
yval=[10,200,2500,1750,1750]
x1,x2,y1,y2 = plt.axis()
yrange =   y2 - y1
# print yrange

linewid = 500     # in data units

# For the calculation below, you have to adjust width by 0.8
# because the top and bottom 10% of the figure are labels & axis
pointlinewid = (linewid * (point_hei/yrange)) * 0.8  # corresponding width in pts

plt.plot(xval,yval,linewidth = pointlinewid,color="blue",solid_capstyle="butt")
# just for fun, plot the half-width line on top of it
plt.plot(xval,yval,linewidth = pointlinewid/2,color="red",solid_capstyle="butt")

plt.savefig('mymatplot2.png',dpi=rez)

enter image description here

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