{ "cells": [ { "cell_type": "markdown", "metadata": {}, "source": [ "\n# Simple axis pad\n" ] }, { "cell_type": "code", "execution_count": null, "metadata": { "collapsed": false }, "outputs": [], "source": [ "import matplotlib.pyplot as plt\nimport numpy as np\n\nfrom matplotlib.projections import PolarAxes\nfrom matplotlib.transforms import Affine2D\nimport mpl_toolkits.axisartist as axisartist\nfrom mpl_toolkits.axisartist import angle_helper, grid_finder\nfrom mpl_toolkits.axisartist.grid_helper_curvelinear import GridHelperCurveLinear\n\n\ndef setup_axes(fig, rect):\n \"\"\"Polar projection, but in a rectangular box.\"\"\"\n # see demo_curvelinear_grid.py for details\n grid_helper = GridHelperCurveLinear(\n Affine2D().scale(np.pi/180., 1.) + PolarAxes.PolarTransform(),\n extreme_finder=angle_helper.ExtremeFinderCycle(\n 20, 20,\n lon_cycle=360, lat_cycle=None,\n lon_minmax=None, lat_minmax=(0, np.inf),\n ),\n grid_locator1=angle_helper.LocatorDMS(12),\n grid_locator2=grid_finder.MaxNLocator(5),\n tick_formatter1=angle_helper.FormatterDMS(),\n )\n ax = fig.add_subplot(\n rect, axes_class=axisartist.Axes, grid_helper=grid_helper,\n aspect=1, xlim=(-5, 12), ylim=(-5, 10))\n ax.axis[:].set_visible(False)\n return ax\n\n\ndef add_floating_axis1(ax1):\n ax1.axis[\"lat\"] = axis = ax1.new_floating_axis(0, 30)\n axis.label.set_text(r\"$\\theta = 30^{\\circ}$\")\n axis.label.set_visible(True)\n\n return axis\n\n\ndef add_floating_axis2(ax1):\n ax1.axis[\"lon\"] = axis = ax1.new_floating_axis(1, 6)\n axis.label.set_text(r\"$r = 6$\")\n axis.label.set_visible(True)\n\n return axis\n\n\nfig = plt.figure(figsize=(9, 3.))\nfig.subplots_adjust(left=0.01, right=0.99, bottom=0.01, top=0.99,\n wspace=0.01, hspace=0.01)\n\n\ndef ann(ax1, d):\n ax1.annotate(d, (0.5, 1), (5, -5),\n xycoords=\"axes fraction\", textcoords=\"offset points\",\n va=\"top\", ha=\"center\")\n\n\nax1 = setup_axes(fig, rect=231)\naxis = add_floating_axis1(ax1)\nann(ax1, \"default\")\n\nax1 = setup_axes(fig, rect=232)\naxis = add_floating_axis1(ax1)\naxis.major_ticklabels.set_pad(10)\nann(ax1, \"ticklabels.set_pad(10)\")\n\nax1 = setup_axes(fig, rect=233)\naxis = add_floating_axis1(ax1)\naxis.label.set_pad(20)\nann(ax1, \"label.set_pad(20)\")\n\nax1 = setup_axes(fig, rect=234)\naxis = add_floating_axis1(ax1)\naxis.major_ticks.set_tick_direction(\"in\")\nann(ax1, 'ticks.set_tick_direction(\"in\")')\n\nax1 = setup_axes(fig, rect=235)\naxis = add_floating_axis1(ax1)\naxis.major_ticks.set_tick_direction(\"out\")\nann(ax1, 'ticks.set_tick_direction(\"out\")')\n\nax1 = setup_axes(fig, rect=236)\naxis = add_floating_axis1(ax1)\naxis.major_ticks.set_tick_direction(\"inout\")\nann(ax1, 'ticks.set_tick_direction(\"inout\")')\n\nplt.show()" ] } ], "metadata": { "kernelspec": { "display_name": "Python 3", "language": "python", "name": "python3" }, "language_info": { "codemirror_mode": { "name": "ipython", "version": 3 }, "file_extension": ".py", "mimetype": "text/x-python", "name": "python", "nbconvert_exporter": "python", "pygments_lexer": "ipython3", "version": "3.12.15" } }, "nbformat": 4, "nbformat_minor": 0 }