Added comparison plotting in seperate script.
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0afd12eaed
commit
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4 changed files with 214 additions and 11 deletions
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@ -72,37 +72,37 @@ for tri in COLOR_CYCLE_LIST:
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figures_directory='figures'
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figures_directory='figures'
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def figAnnotateCorner(hfig, msg, corner=1, clear=True):
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def figAnnotateCorner(hfig, msg, corner=1, ratio=0.01, clear=True):
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if clear:
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if clear:
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figAnnotateClear(hfig)
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figAnnotateClear(hfig)
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if corner in [1,2]:
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if corner in [1,2]:
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loc_x = 0.01
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loc_x = ratio
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algn_h = 'left'
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algn_h = 'left'
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else:
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else:
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loc_x = 0.99
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loc_x = 1-ratio
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algn_h = 'right'
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algn_h = 'right'
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if corner in [1,4]:
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if corner in [1,4]:
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loc_y = 0.01
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loc_y = ratio
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algn_v = 'bottom'
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algn_v = 'bottom'
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else:
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else:
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loc_y = 0.99
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loc_y = 1-ratio
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algn_v = 'top'
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algn_v = 'top'
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ax = hfig.get_axes()[0]
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ax = hfig.get_axes()[0]
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hfig.text(loc_x, loc_y, msg, transform=ax.transAxes,
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hfig.text(loc_x, loc_y, msg, transform=ax.transAxes,
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va=algn_v, ha=algn_h)
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va=algn_v, ha=algn_h)
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def axAnnotateCorner(ha, msg, corner=1):
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def axAnnotateCorner(ha, msg, corner=1, ratio=0.01):
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if corner in [1,2]:
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if corner in [1,2]:
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loc_x = 0.01
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loc_x = ratio
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algn_h = 'left'
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algn_h = 'left'
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else:
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else:
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loc_x = 0.99
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loc_x = 1-ratio
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algn_h = 'right'
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algn_h = 'right'
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if corner in [1,4]:
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if corner in [1,4]:
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loc_y = 0.01
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loc_y = ratio
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algn_v = 'bottom'
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algn_v = 'bottom'
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else:
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else:
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loc_y = 0.99
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loc_y = 1-ratio
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algn_v = 'top'
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algn_v = 'top'
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#ax = ha.get_axes()[0]
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#ax = ha.get_axes()[0]
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ha.text(loc_x, loc_y, msg, transform=ha.transAxes,
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ha.text(loc_x, loc_y, msg, transform=ha.transAxes,
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197
comparisonPlots.py
Executable file
197
comparisonPlots.py
Executable file
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@ -0,0 +1,197 @@
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#!/usr/bin/env python3
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import numpy as np
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import matplotlib
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import argparse
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import os
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import code
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import pdb
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import copy
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################################################################################
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args_parser = argparse.ArgumentParser()
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args_parser.add_argument('-n', type=int, default=1,
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help='plot testing number')
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args_parser.add_argument('--save','-s', action='store_true',
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help='save to files')
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args_parser.add_argument('--raster','-r', action='store_true',
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help='save as raster')
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args_parser.add_argument('--debug','-d', action='store_true',
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help='hold for debugging')
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args_parser.add_argument('--subplot', action='store_true',
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help='use subplots when available')
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args_parser.add_argument('--headless','-q', action='store_true',
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help='Remain neadless even if we aren\'t saving fileS1.')
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args = args_parser.parse_args()
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#exit()
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HEADLESS = not 'DISPLAY' in os.environ.keys()
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if args.headless: HEADLESS = True # Override Manually if request
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if HEADLESS: matplotlib.use('Agg')
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################################################################################
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from matplotlib import rcParams, pyplot as pp
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import LPRDefaultPlotting
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figdir = LPRDefaultPlotting.figures_directory
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if args.save: os.makedirs(figdir, exist_ok=True)
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import sys
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sys.path.append("./pySmithPlot")
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import smithplot
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from smithplot import SmithAxes
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SmithAxes.update_scParams(axes_normalize=False,
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grid_minor_fancy_threshold=50, axes_radius=0.5)
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plot_list = [args.n]
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if args.raster:
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args.save = True
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fig_ext = 'png'
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else:
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fig_ext = 'pdf'
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################################################################################
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# Override the defaults for this script
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figScaleSize = 1.0 if args.save else 1.6
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rcParams['figure.figsize'] = [3.4*figScaleSize,2*figScaleSize]
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default_window_position=['+20+80', '+120+80']
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################################################################################
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# Operating Enviornment (i.e. circuit parameters)
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import TankGlobals
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from FreqClass import FreqClass
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from tankComputers import *
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freq_pts = 501
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S1=TankGlobals.ampSystem()
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B=TankGlobals.bufferSystem()
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f=FreqClass(freq_pts, S1.f0, S1.bw_plt)
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S1.q1_L = 15
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S2 = copy.deepcopy(S1)
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gain_variation = +4 # dB
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################################################################################
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# We want a smooth transition out to alpha. So For now assume a squares
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# weighting out to the maximum alpha at the edgeS1.
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# This gain variation function is the default function baked into the method.
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#gain_variation = 0 # dB
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S2.alpha_min = dB2Vlt(gain_variation)
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################################################################################
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# Extract the computed tank conductanec, and the transfer functionS1.
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(_, tf1) = S1.compute_block(f)
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(_, tf_ref1) = S1.compute_ref(f)
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(_, tf2) = S2.compute_block(f)
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(_, tf_ref2) = S2.compute_ref(f)
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# To produce full 360 dgree plots, double the two transfer functions by
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# considering inversion.
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# double to describe with perfect inversion stage
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tf1 = np.column_stack((tf1,-tf1))
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tf2 = np.column_stack((tf2,-tf2))
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# compute the relative transfer function thus giving us flat phase, and
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# flat (ideally) gain response if our system perfectly matches the reference
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tf_r1 = tf1 / (tf_ref1*np.ones((tf1.shape[1],1))).T
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tf_r2 = tf2 / (tf_ref2*np.ones((tf2.shape[1],1))).T
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# We will also do a direct angle comparison
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tf_r_ang_ideal1 = wrap_rads(np.concatenate((-S1.phase_swp, -np.pi - S1.phase_swp)))
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tf_r_ang_ideal2 = wrap_rads(np.concatenate((-S2.phase_swp, -np.pi - S2.phase_swp)))
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tf_r_ang1 = np.angle(tf_r1)
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tf_r_ang2 = np.angle(tf_r2)
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tf_r_ang_rms1 = np.sqrt(np.mean(np.power(tf_r_ang1-tf_r_ang_ideal1,2),0))
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tf_r_ang_rms2 = np.sqrt(np.mean(np.power(tf_r_ang2-tf_r_ang_ideal2,2),0))
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################################################################################
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# Compute RMS phase error relative to ideal reference across plotting bandwidth
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(bw_ang1, rms_ang_swp1)=rms_v_bw(tf_r_ang1-tf_r_ang_ideal1, S1.bw_plt)
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(bw_mag1, rms_gain_swp1)=rms_v_bw(tf_r1, S1.bw_plt)
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(bw_ang2, rms_ang_swp2)=rms_v_bw(tf_r_ang2-tf_r_ang_ideal2, S2.bw_plt)
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(bw_mag2, rms_gain_swp2)=rms_v_bw(tf_r2, S2.bw_plt)
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(y_buf, tf_buf) = B.compute_ref(f)
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################################################################################
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################################################################################
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################################################################################
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#mgr = pp.get_current_fig_manager()
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################################################################################
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if 3 in plot_list or 13 in plot_list:
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h3 = [pp.figure() for x in range(2)]
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ax3a = h3[0].subplots(1,2)
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ax3b = h3[1].subplots(1,2)
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ax3 = np.concatenate((ax3a, ax3b))
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ax3[0].plot(bw_mag1,dB20(rms_gain_swp1))
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ax3[1].plot(bw_mag2,dB20(rms_gain_swp2))
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ax3[2].plot(bw_ang1,rms_ang_swp1*180/np.pi)
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ax3[3].plot(bw_ang2,rms_ang_swp2*180/np.pi)
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h3[0].suptitle('RMS Gain Error')
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h3[1].suptitle('RMS Phase Error')
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#ax3[0].set_title('RMS Gain Error')
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ax3[0].set_ylabel('Gain Error (dB)')
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#ax3[2].set_title('RMS Phase Error')
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ax3[2].set_ylabel('Phase Error (deg)')
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#ax3[1].set_title('RMS Gain Error w/GV')
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ax3[1].set_ylabel('Gain Error (dB)')
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#ax3[3].set_title('RMS Phase Error w/GV')
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ax3[3].set_ylabel('Phase Error (deg)')
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# Match Axes
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limSetGain = [axT.get_ylim() for axT in ax3[:2]]
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limSetPhase = [axT.get_ylim() for axT in ax3[2:]]
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limSetGain = (np.min(limSetGain), np.max(limSetGain))
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limSetPhase = (np.min(limSetPhase), np.max(limSetPhase))
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for axT in ax3[:2]:
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axT.set_ylim(limSetGain)
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for axT in ax3[2:]:
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axT.set_ylim(limSetPhase)
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for axT in ax3[[1,3]]:
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LPRDefaultPlotting.axAnnotateCorner(axT,
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'%g dB gain variation' % (gain_variation), corner=2, ratio=0.04)
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axT.yaxis.tick_right()
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axT.yaxis.label_position='right'
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axT.yaxis.labelpad = axT.yaxis.labelpad + axT.yaxis.label.get_size()
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for axT in ax3[[0,2]]:
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LPRDefaultPlotting.axAnnotateCorner(axT,
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'%g dB gain variation' % (0), corner=2, ratio=0.04)
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for axT in ax3:
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axT.grid()
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axT.set_xlim((0,S1.bw_plt))
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axT.set_xlabel('Bandwidth (GHz)')
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[hT.tight_layout() for hT in h3]
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[hT.tight_layout() for hT in h3]
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# Make XY mirror positions
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for i in [0,2]:
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p0 = ax3[i].get_position()
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p1 = ax3[i+1].get_position()
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p1.x1 = 1 - p0.x0
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p1.x0 = 1 - p0.x1
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ax3[i+1].set_position(p1)
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for axT in ax3:
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p=axT.get_position()
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p.y1=0.88
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axT.set_position(p)
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if args.save:
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h3[0].savefig('%s/%s.%s' % (figdir, 'dual_030-RMSGain', fig_ext))
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h3[1].savefig('%s/%s.%s' % (figdir, 'dual_031-RMSPhase', fig_ext))
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if HEADLESS:
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pp.close()
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else:
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#mgr.window.geometry(default_window_position[0])
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[hT.show() for hT in h3]
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@ -3,6 +3,13 @@
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MAX_JOBS=4
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MAX_JOBS=4
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echo "Starting:"
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echo "Starting:"
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# First run brute force misc jobs
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(
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echo " start odd jobs.... →"
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./comparisonPlots.py --subplot -n 3 -sq 1>/dev/null
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echo " 止 end odd jobs."
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) &
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for n in 5 6; do
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for n in 5 6; do
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while [[ $MAX_JOBS -le $(jobs -l | wc -l) ]]; do sleep 0.1; done
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while [[ $MAX_JOBS -le $(jobs -l | wc -l) ]]; do sleep 0.1; done
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(
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(
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@ -68,7 +68,6 @@ from tankComputers import *
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freq_pts = 501
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freq_pts = 501
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S=TankGlobals.ampSystem()
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S=TankGlobals.ampSystem()
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Sgv=TankGlobals.ampSystem()
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B=TankGlobals.bufferSystem()
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B=TankGlobals.bufferSystem()
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S.q1_L = 15
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S.q1_L = 15
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