221 lines
7.3 KiB
Python
221 lines
7.3 KiB
Python
import numpy as np
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import matplotlib.pyplot as plt
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import matplotlib as mpl
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from collections import Iterable
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from matplotlib.cbook import flatten
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from itertools import cycle
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def facet_plot(dframe, facets, props, ydata, layout=None, newfig=True, figsize=None,
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legend=True, individual_legends=False, hide_additional_axes=True, zorder='default', **kwargs):
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if newfig:
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nr_facets = len(dframe.groupby(facets))
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if layout is None:
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for i in range(2, nr_facets // 2):
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if nr_facets % i == 0:
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layout = (nr_facets // i, i)
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break
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if layout is None:
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n = int(np.ceil(nr_facets / 2))
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layout = (n, 2)
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fig, axs = plt.subplots(
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nrows=layout[0],
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ncols=layout[1],
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sharex=True, sharey=True, figsize=figsize
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)
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if hide_additional_axes:
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for ax in fig.axes[nr_facets:]:
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ax.set_axis_off()
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else:
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fig = plt.gcf()
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axs = fig.axes
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cycl = cycle(plt.rcParams['axes.prop_cycle'])
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prop_styles = {ps: next(cycl) for ps, _ in dframe.groupby(props)}
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if zorder is 'default':
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dz = 1
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zorder = 0
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elif zorder is 'reverse':
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dz = -1
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zorder = 0
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else:
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dz = 0
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if legend:
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ax0 = fig.add_subplot(111, frame_on=False, zorder=-9999)
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ax0.set_axis_off()
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plot_kwargs = kwargs.copy()
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for k in ['logx', 'logy', 'loglog']:
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plot_kwargs.pop(k, None)
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for l, p in prop_styles.items():
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ax0.plot([], label=str(l), **p, **plot_kwargs)
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ax0.legend(loc='center left', bbox_to_anchor=(1, 0.5), fontsize='x-small')
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for ax, (ps, df) in zip(flatten(axs), dframe.groupby(facets, squeeze=False)):
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for prop, df_prop in df.groupby(props):
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df_prop[ydata].plot(ax=ax, label=str(prop), zorder=zorder, **prop_styles[prop], **kwargs)
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zorder += dz
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# ax.title(0.5, 0.1, '{},{}'.format(*ps), transform=ax.transAxes, fontsize='small')
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ax.set_title('; '.join([str(x) for x in ps]) if isinstance(ps, tuple) else str(ps), fontsize='x-small')
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if individual_legends:
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ax.legend(fontsize='x-small')
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plt.sca(ax)
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rect = (0, 0, 0.85, 1) if legend else (0, 0, 1, 1)
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plt.tight_layout(rect=rect, pad=0.1)
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return fig, axs
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class CurvedText(mpl.text.Text):
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"""A text object that follows an arbitrary curve."""
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def __init__(self, x, y, text, axes, **kwargs):
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super(CurvedText, self).__init__(x[0],y[0],' ', axes, **kwargs)
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axes.add_artist(self)
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# # saving the curve:
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self.__x = x
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self.__y = y
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self.__zorder = self.get_zorder()
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# # creating the text objects
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self.__Characters = []
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for c in text:
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t = mpl.text.Text(0, 0, c, **kwargs)
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# resetting unnecessary arguments
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t.set_ha('center')
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t.set_rotation(0)
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t.set_zorder(self.__zorder +1)
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self.__Characters.append((c,t))
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axes.add_artist(t)
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# # overloading some member functions, to assure correct functionality
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# # on update
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def set_zorder(self, zorder):
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super(CurvedText, self).set_zorder(zorder)
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self.__zorder = self.get_zorder()
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for c,t in self.__Characters:
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t.set_zorder(self.__zorder+1)
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def draw(self, renderer, *args, **kwargs):
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"""
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Overload of the Text.draw() function. Do not do
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do any drawing, but update the positions and rotation
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angles of self.__Characters.
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"""
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self.update_positions(renderer)
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def update_positions(self,renderer):
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"""
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Update positions and rotations of the individual text elements.
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"""
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# preparations
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# # determining the aspect ratio:
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# # from https://stackoverflow.com/a/42014041/2454357
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# # data limits
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xlim = self.axes.get_xlim()
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ylim = self.axes.get_ylim()
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# # Axis size on figure
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figW, figH = self.axes.get_figure().get_size_inches()
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# # Ratio of display units
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_, _, w, h = self.axes.get_position().bounds
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# # final aspect ratio
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aspect = ((figW * w)/(figH * h))*(ylim[1]-ylim[0])/(xlim[1]-xlim[0])
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# points of the curve in figure coordinates:
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x_fig,y_fig = (
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np.array(l) for l in zip(*self.axes.transData.transform([
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(i,j) for i,j in zip(self.__x,self.__y)
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]))
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)
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# point distances in figure coordinates
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x_fig_dist = (x_fig[1:]-x_fig[:-1])
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y_fig_dist = (y_fig[1:]-y_fig[:-1])
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r_fig_dist = np.sqrt(x_fig_dist**2+y_fig_dist**2)
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# arc length in figure coordinates
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l_fig = np.insert(np.cumsum(r_fig_dist),0,0)
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# angles in figure coordinates
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rads = np.arctan2((y_fig[1:] - y_fig[:-1]),(x_fig[1:] - x_fig[:-1]))
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degs = np.rad2deg(rads)
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rel_pos = 10
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for c,t in self.__Characters:
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# finding the width of c:
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t.set_rotation(0)
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t.set_va('center')
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bbox1 = t.get_window_extent(renderer=renderer)
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w = bbox1.width
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h = bbox1.height
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# ignore all letters that don't fit:
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if rel_pos+w/2 > l_fig[-1]:
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t.set_alpha(0.0)
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rel_pos += w
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continue
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elif c != ' ':
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t.set_alpha(1.0)
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# finding the two data points between which the horizontal
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# center point of the character will be situated
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# left and right indices:
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il = np.where(rel_pos+w/2 >= l_fig)[0][-1]
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ir = np.where(rel_pos+w/2 <= l_fig)[0][0]
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# if we exactly hit a data point:
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if ir == il:
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ir += 1
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# how much of the letter width was needed to find il:
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used = l_fig[il]-rel_pos
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rel_pos = l_fig[il]
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# relative distance between il and ir where the center
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# of the character will be
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fraction = (w/2-used)/r_fig_dist[il]
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# # setting the character position in data coordinates:
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# # interpolate between the two points:
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x = self.__x[il]+fraction*(self.__x[ir]-self.__x[il])
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y = self.__y[il]+fraction*(self.__y[ir]-self.__y[il])
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# getting the offset when setting correct vertical alignment
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# in data coordinates
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t.set_va(self.get_va())
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bbox2 = t.get_window_extent(renderer=renderer)
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bbox1d = self.axes.transData.inverted().transform(bbox1)
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bbox2d = self.axes.transData.inverted().transform(bbox2)
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dr = np.array(bbox2d[0]-bbox1d[0])
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# the rotation/stretch matrix
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rad = rads[il]
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rot_mat = np.array([
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[np.cos(rad), np.sin(rad)*aspect],
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[-np.sin(rad)/aspect, np.cos(rad)]
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])
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# # computing the offset vector of the rotated character
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drp = np.dot(dr,rot_mat)
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# setting final position and rotation:
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t.set_position(np.array([x,y])+drp)
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t.set_rotation(degs[il])
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t.set_va('center')
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t.set_ha('center')
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# updating rel_pos to right edge of character
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rel_pos += w-used
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