724 lines
30 KiB
Python
724 lines
30 KiB
Python
import matplotlib.pyplot as plt
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import os
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import numpy as np
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import math
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import json
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def log_facto(k):
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"""
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Using the Stirling's approximation
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"""
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k = int(k)
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if k > 1e6:
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return k * np.log(k) - k + np.log(2*math.pi*k)/2
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val = 0
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for i in range(2, k+1):
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val += np.log(i)
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return val
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def parse_stwp_theta_file(stwp_theta_file, breaks, mu, tgen, relative_theta_scale = False):
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with open(stwp_theta_file, "r") as swp_file:
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# Read the first line
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line = swp_file.readline()
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L = float(line.split()[2])
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rands = swp_file.readline()
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line = swp_file.readline()
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# skip empty lines before SFS
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while line == "\n":
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line = swp_file.readline()
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sfs = np.array(line.split()).astype(float)
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# Process lines until the end of the file
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while line:
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# check at each line
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if line.startswith("dim") :
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dim = int(line.split()[1])
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if dim == breaks+1:
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likelihood = line.split()[5]
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groups = line.split()[6:6+dim]
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theta_site = line.split()[6+dim:6+dim+1+dim]
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elif dim < breaks+1:
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line = swp_file.readline()
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continue
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elif dim > breaks+1:
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break
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#return 0,0,0
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# Read the next line
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line = swp_file.readline()
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#### END of parsing
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# quit this file if the number of dimensions is incorrect
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if dim < breaks+1:
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return 0,0,0,0,0,0
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# get n, the last bin of the last group
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# revert the list of groups as the most recent times correspond
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# to the closest and last leafs of the coal. tree.
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groups = groups[::-1]
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theta_site = theta_site[::-1]
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# store thetas for later use
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grps = groups.copy()
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thetas = {}
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for i in range(len(groups)):
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grps[i] = grps[i].split(',')
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thetas[i] = [float(theta_site[i]), grps[i], likelihood]
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# initiate the dict of times
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t = {}
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# list of thetas
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theta_L = []
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sum_t = 0
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for group_nb, group in enumerate(groups):
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###print(group_nb, group, theta_site[group_nb], len(theta_site))
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# store all the thetas one by one, with one theta per group
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theta_L.append(float(theta_site[group_nb]))
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# if the group is of size 1
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if len(group.split(',')) == 1:
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i = int(group)
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# if the group size is >1, take the first elem of the group
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# i is the first bin of each group, straight after a breakpoint
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else:
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i = int(group.split(",")[0])
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j = int(group.split(",")[-1])
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t[i] = 0
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#t =
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if len(group.split(',')) == 1:
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k = i
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if relative_theta_scale:
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t[i] += ((theta_L[group_nb] ) / (k*(k-1)))
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else:
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t[i] += ((theta_L[group_nb] ) / (k*(k-1)) * tgen) / mu
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else:
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for k in range(j, i-1, -1 ):
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if relative_theta_scale:
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t[i] += ((theta_L[group_nb] ) / (k*(k-1)))
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else:
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t[i] += ((theta_L[group_nb] ) / (k*(k-1)) * tgen) / mu
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# we add the cumulative times at the end
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t[i] += sum_t
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sum_t = t[i]
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# build the y axis (sizes)
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y = []
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for theta in theta_L:
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if relative_theta_scale:
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size = theta
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else:
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# with size N = theta/4mu
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size = theta / (4*mu)
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y.append(size)
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y.append(size)
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# build the time x axis
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x = [0]
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for time in range(0, len(t.values())-1):
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x.append(list(t.values())[time])
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x.append(list(t.values())[time])
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x.append(list(t.values())[len(t.values())-1])
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return x,y,likelihood,thetas,sfs,L
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def plot_straight_x_y(x,y):
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x_1 = [x[0]]
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y_1 = []
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for i in range(0, len(y)-1):
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x_1.append(x[i])
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x_1.append(x[i])
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y_1.append(y[i])
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y_1.append(y[i])
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y_1 = y_1+[y[-1],y[-1]]
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x_1.append(x[-1])
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return x_1, y_1
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def plot_all_epochs_thetafolder(full_dict, mu, tgen, title = "Title",
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theta_scale = True, ax = None, input = None, output = None):
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my_dpi = 500
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L = full_dict["L"]
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if ax is None:
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# intialize figure
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#my_dpi = 300
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fnt_size = 18
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# plt.rcParams['font.size'] = fnt_size
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fig, ax1 = plt.subplots(figsize=(5000/my_dpi, 2800/my_dpi), dpi=my_dpi)
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else:
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fnt_size = 12
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# plt.rcParams['font.size'] = fnt_size
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ax1 = ax[1][0,0]
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ax1.set_yscale('log')
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ax1.set_xscale('log')
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plot_handles = []
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best_plot = full_dict['all_epochs']['best']
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p0, = ax1.plot(best_plot[0], best_plot[1], linestyle = "-",
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alpha=1, lw=2, label = str(best_plot[2])+' brks | Lik='+best_plot[3])
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plot_handles.append(p0)
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#ax1.grid(True,which="both", linestyle='--', alpha = 0.3)
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for k, plot_Lk in enumerate(full_dict['all_epochs']['plots']):
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plot_Lk = str(full_dict['all_epochs']['plots'][k][3])
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# plt.rcParams['font.size'] = fnt_size
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p, = ax1.plot(full_dict['all_epochs']['plots'][k][0], full_dict['all_epochs']['plots'][k][1], linestyle = "-",
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alpha=1/(k+1), lw=1.5, label = str(full_dict['all_epochs']['plots'][k][2])+' brks | Lik='+plot_Lk)
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plot_handles.append(p)
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if theta_scale:
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ax1.set_xlabel("Coal. time", fontsize=fnt_size)
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ax1.set_ylabel("Pop. size scaled by N0", fontsize=fnt_size)
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# recent_scale_lower_bound = 0.01
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# recent_scale_upper_bound = 0.1
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# ax1.axvline(x=recent_scale_lower_bound)
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# ax1.axvline(x=recent_scale_upper_bound)
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else:
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# years
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if ax is not None:
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plt.set_xlabel("Time (years)", fontsize=fnt_size)
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plt.set_ylabel("Effective pop. size (Ne)", fontsize=fnt_size)
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else:
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plt.xlabel("Time (years)", fontsize=fnt_size)
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plt.ylabel("Effective pop. size (Ne)", fontsize=fnt_size)
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# x_ticks = ax1.get_xticks()
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# ax1.set_xticklabels([f'{k:.0e}\n{k/(mu):.0e}\n{k/(mu)*tgen:.0e}' for k in x_ticks], fontsize = fnt_size*0.5)
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# ax1.set_xticklabels([f'{k}\n{k/(mu)}\n{k/(mu)*tgen}' for k in x_ticks], fontsize = fnt_size*0.8)
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# plt.rcParams['font.size'] = fnt_size
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# print(fnt_size, "rcParam font.size=", plt.rcParams['font.size'])
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ax1.legend(handles = plot_handles, loc='best', fontsize = fnt_size*0.5)
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ax1.set_title(title)
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breaks = len(full_dict['all_epochs']['plots'])
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if ax is None:
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plt.savefig(title+'_'+str(breaks+1)+'_epochs.pdf')
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# plot likelihood against nb of breakpoints
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if ax is None:
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fig, ax2 = plt.subplots(figsize=(5000/my_dpi, 2800/my_dpi), dpi=my_dpi)
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# plt.rcParams['font.size'] = fnt_size
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else:
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#plt.rcParams['font.size'] = fnt_size
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ax2 = ax[0][0,1]
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# Retrieve the default color cycle from rcParams
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default_colors = plt.rcParams['axes.prop_cycle'].by_key()['color']
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# Create an array of colors from the default color cycle
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colors = [default_colors[i % len(default_colors)] for i in range(len(full_dict['Ln_Brks'][0]))]
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ax2.plot(full_dict['Ln_Brks'][0], full_dict['Ln_Brks'][1], "--", lw=1, color="black", zorder=1)
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ax2.scatter(full_dict['Ln_Brks'][0], full_dict['Ln_Brks'][1], s=50, c=colors, marker='o', zorder=2)
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ax2.axhline(y=full_dict['best_Ln'], linestyle = "-.", color = "red", label = "$-\log\mathcal{L}$ = "+str(round(full_dict['best_Ln'], 2)))
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ax2.set_yscale('log')
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ax2.set_xlabel("# breakpoints", fontsize=fnt_size)
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ax2.set_ylabel("$-\log\mathcal{L}$", fontsize=fnt_size)
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ax2.legend(loc='best', fontsize = fnt_size*0.5)
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ax2.set_title(title+" Likelihood gain from # breakpoints")
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if ax is None:
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plt.savefig(title+'_Breakpts_Likelihood.pdf')
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# AIC
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if ax is None:
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fig, ax3 = plt.subplots(figsize=(5000/my_dpi, 2800/my_dpi), dpi=my_dpi)
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# plt.rcParams['font.size'] = '18'
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else:
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#plt.rcParams['font.size'] = fnt_size
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ax3 = ax[1][0,1]
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AIC = full_dict['AIC_Brks']
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# ax3.plot(AIC[0], AIC[1], 'o', linestyle = "dotted", lw=2)
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ax3.plot(AIC[0], AIC[1], "--", lw=1, color="black", zorder=1)
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ax3.scatter(AIC[0], AIC[1], s=50, c=colors, marker='o', zorder=2)
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ax3.axhline(y=full_dict['best_AIC'], linestyle = "-.", color = "red",
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label = "Min. AIC = "+str(round(full_dict['best_AIC'], 2)))
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ax3.set_yscale('log')
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ax3.set_xlabel("# breakpoints", fontsize=fnt_size)
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ax3.set_ylabel("AIC")
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ax3.legend(loc='best', fontsize = fnt_size*0.5)
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ax3.set_title(title+" AIC")
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if ax is None:
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plt.savefig(title+'_Breakpts_Likelihood_AIC.pdf')
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else:
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# return plots
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return ax[0], ax[1]
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def save_all_epochs_thetafolder(folder_path, mu, tgen, title = "Title", theta_scale = True, input = None, output = None):
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#scenari = {}
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cpt = 0
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epochs = {}
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plots = {}
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# store ['best'], and [0] for epoch 0 etc...
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for file_name in os.listdir(folder_path):
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breaks = 0
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cpt +=1
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if os.path.isfile(os.path.join(folder_path, file_name)):
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x, y, likelihood, theta, sfs, L = parse_stwp_theta_file(folder_path+file_name, breaks = breaks,
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tgen = tgen,
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mu = mu, relative_theta_scale = theta_scale)
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SFS_stored = sfs
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L_stored = L
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while not (x == 0 and y == 0):
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if breaks not in epochs.keys():
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epochs[breaks] = {}
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epochs[breaks][likelihood] = x,y
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breaks += 1
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x,y,likelihood,theta,sfs,L = parse_stwp_theta_file(folder_path+file_name, breaks = breaks,
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tgen = tgen,
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mu = mu, relative_theta_scale = theta_scale)
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if x == 0:
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# last break did not work, then breaks = breaks-1
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breaks -= 1
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print("\n*******\n"+title+"\n--------\n"+"mu="+str(mu)+"\ntgen="+str(tgen)+"\nbreaks="+str(breaks)+"\n*******\n")
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print(cpt, "theta file(s) have been scanned.")
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brkpt_lik = []
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top_plots = {}
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for epoch, scenari in epochs.items():
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# sort starting by the smallest -log(Likelihood)
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best10_scenari = (sorted(list(scenari.keys())))[:10]
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greatest_likelihood = best10_scenari[0]
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# store the tuple breakpoints and likelihood for later plot
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brkpt_lik.append((epoch, greatest_likelihood))
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x, y = scenari[greatest_likelihood]
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#without breakpoint
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if epoch == 0:
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# do something with the theta without bp and skip the plotting
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N0 = y[0]
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#continue
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if theta_scale:
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for i in range(len(y)):
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# divide by N0
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y[i] = y[i]/N0
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x[i] = x[i]/N0
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top_plots[greatest_likelihood] = x,y,epoch
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plots_likelihoods = list(top_plots.keys())
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for i in range(len(plots_likelihoods)):
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plots_likelihoods[i] = float(plots_likelihoods[i])
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best10_plots = sorted(plots_likelihoods)[:10]
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top_plot_lik = str(best10_plots[0])
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# store x,y,brks,likelihood
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plots['best'] = (top_plots[top_plot_lik][0], top_plots[top_plot_lik][1], str(top_plots[top_plot_lik][2]), top_plot_lik)
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plots['plots'] = []
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for k, plot_Lk in enumerate(best10_plots[1:]):
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plot_Lk = str(plot_Lk)
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plots['plots'].append([top_plots[plot_Lk][0], top_plots[plot_Lk][1], str(top_plots[plot_Lk][2]), plot_Lk])
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# plot likelihood against nb of breakpoints
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# best possible likelihood from SFS
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# Segregating sites
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S = sum(SFS_stored)
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# Number of kept sites from which the SFS is computed
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L = L_stored
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# number of monomorphic sites
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S0 = L-S
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# print("SFS", SFS_stored)
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# print("S", S, "L", L, "S0=", S0)
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# compute Ln
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Ln = log_facto(S+S0) - log_facto(S0) + np.log(float(S0)/(S+S0)) * S0
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for xi in range(0, len(SFS_stored)):
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p_i = SFS_stored[xi] / float(S+S0)
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Ln += np.log(p_i) * SFS_stored[xi] - log_facto(SFS_stored[xi])
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# basic plot likelihood
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Ln_Brks = [list(np.array(brkpt_lik)[:, 0]), list(np.array(brkpt_lik)[:, 1].astype(float))]
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best_Ln = -Ln
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AIC = []
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for brk in np.array(brkpt_lik)[:, 0]:
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brk = int(brk)
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AIC.append((2*brk+1)+2*np.array(brkpt_lik)[brk, 1].astype(float))
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AIC_Brks = [list(np.array(brkpt_lik)[:, 0]), AIC]
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# AIC = 2*k - 2ln(L) ; where k is the number of parameters, here brks+1
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AIC_ln = 2*(len(brkpt_lik)+1) - 2*Ln
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best_AIC = AIC_ln
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selected_brks_nb = AIC.index(min(AIC))
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# to return : plots ; Ln_Brks ; AIC_Brks ; best_Ln ; best_AIC
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# 'plots' dict keys: 'best', {epochs}('0', '1',...)
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if input == None:
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saved_plots = {"S":S, "S0":S0, "L":L, "mu":mu, "tgen":tgen,
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"all_epochs":plots, "Ln_Brks":Ln_Brks,
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"AIC_Brks":AIC_Brks, "best_Ln":best_Ln,
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"best_AIC":best_AIC, "best_epoch_by_AIC":selected_brks_nb}
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else:
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# if the dict has to be loaded from input
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with open(input, 'r') as json_file:
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saved_plots = json.load(json_file)
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saved_plots["S"] = S
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saved_plots["S0"] = S0
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saved_plots["L"] = L
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saved_plots["mu"] = mu
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saved_plots["tgen"] = tgen
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saved_plots["all_epochs"] = plots
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saved_plots["Ln_Brks"] = Ln_Brks
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saved_plots["AIC_Brks"] = AIC_Brks
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saved_plots["best_Ln"] = best_Ln
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saved_plots["best_AIC"] = best_AIC
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saved_plots["best_epoch_by_AIC"] = selected_brks_nb
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if output == None:
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output = title+"_plotdata.json"
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with open(output, 'w') as json_file:
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json.dump(saved_plots, json_file)
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return saved_plots
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def save_k_theta(folder_path, mu, tgen, title = "Title", theta_scale = True,
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breaks_max = 10, input = None, output = None):
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"""
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Save theta values as is to do basic plots.
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"""
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cpt = 0
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epochs = {}
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len_sfs = 0
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for file_name in os.listdir(folder_path):
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cpt +=1
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if os.path.isfile(os.path.join(folder_path, file_name)):
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for k in range(breaks_max+1):
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x,y,likelihood,thetas,sfs,L = parse_stwp_theta_file(folder_path+file_name, breaks = k,
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tgen = tgen,
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mu = mu, relative_theta_scale = theta_scale)
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if thetas == 0:
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continue
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if len(thetas)-1 != k:
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continue
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if k not in epochs.keys():
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epochs[k] = {}
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likelihood = str(eval(thetas[k][2]))
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epochs[k][likelihood] = thetas
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#epochs[k] = thetas
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print("\n*******\n"+title+"\n--------\n"+"mu="+str(mu)+"\ntgen="+str(tgen)+"\nbreaks="+str(k)+"\n*******\n")
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print(cpt, "theta file(s) have been scanned.")
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plots = []
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best_epochs = {}
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for epoch in epochs:
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likelihoods = []
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for key in epochs[epoch].keys():
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likelihoods.append(key)
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likelihoods.sort()
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minLogLn = str(likelihoods[0])
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best_epochs[epoch] = epochs[epoch][minLogLn]
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for epoch, theta in best_epochs.items():
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groups = np.array(list(theta.values()), dtype=object)[:, 1].tolist()
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x = []
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y = []
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thetas = np.array(list(theta.values()), dtype=object)[:, 0]
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for i,group in enumerate(groups):
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x += group[::-1]
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y += list(np.repeat(thetas[i], len(group)))
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if epoch == 0:
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N0 = y[0]
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# compute the proportion of information used at each bin of the SFS
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sum_theta_i = 0
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for i in range(2, len(y)+2):
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sum_theta_i+=y[i-2] / (i-1)
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prop = []
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for k in range(2, len(y)+2):
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prop.append(y[k-2] / (k - 1) / sum_theta_i)
|
|
prop = prop[::-1]
|
|
if theta_scale :
|
|
# normalise to N0 (N0 of epoch1)
|
|
for i in range(len(y)):
|
|
y[i] = y[i]/N0
|
|
# x_plot, y_plot = plot_straight_x_y(x, y)
|
|
p = x, y
|
|
# add plot to the list of all plots to superimpose
|
|
plots.append(p)
|
|
cumul = 0
|
|
prop_cumul = []
|
|
for val in prop:
|
|
prop_cumul.append(val+cumul)
|
|
cumul = val+cumul
|
|
prop = prop_cumul
|
|
|
|
lines_fig2 = []
|
|
for epoch, theta in best_epochs.items():
|
|
groups = np.array(list(theta.values()), dtype=object)[:, 1].tolist()
|
|
x = []
|
|
y = []
|
|
thetas = np.array(list(theta.values()), dtype=object)[:, 0]
|
|
for i,group in enumerate(groups):
|
|
x += group[::-1]
|
|
y += list(np.repeat(thetas[i], len(group)))
|
|
if epoch == 0:
|
|
N0 = y[0]
|
|
if theta_scale :
|
|
for i in range(len(y)):
|
|
y[i] = y[i]/N0
|
|
x_2 = []
|
|
T = 0
|
|
for i in range(len(x)):
|
|
x[i] = int(x[i])
|
|
# compute the times as: theta_k / (k*(k-1))
|
|
for i in range(0, len(x)):
|
|
T += y[i] / (x[i]*(x[i]-1))
|
|
x_2.append(T)
|
|
# Save plotting (fig 2)
|
|
x_2 = [0]+x_2
|
|
y = [y[0]]+y
|
|
# x2_plot, y2_plot = plot_straight_x_y(x_2, y)
|
|
p2 = x_2, y
|
|
lines_fig2.append(p2)
|
|
if input == None:
|
|
saved_plots = {"raw_stairs":plots, "scaled_stairs":lines_fig2,
|
|
"prop":prop}
|
|
else:
|
|
# if the dict has to be loaded from input
|
|
with open(input, 'r') as json_file:
|
|
saved_plots = json.load(json_file)
|
|
saved_plots["raw_stairs"] = plots
|
|
saved_plots["scaled_stairs"] = lines_fig2
|
|
saved_plots["prop"] = prop
|
|
if output == None:
|
|
output = title+"_plotdata.json"
|
|
with open(output, 'w') as json_file:
|
|
json.dump(saved_plots, json_file)
|
|
return saved_plots
|
|
|
|
def plot_scaled_theta(plot_lines, prop, title, mu, tgen, swp2_lines = None, ax = None, n_ticks = 10, subset = None, theta_scale = False):
|
|
# nb of plot_lines represent the number of epochs stored (len(plot_lines) = #breaks+1)
|
|
nb_epochs = len(plot_lines)
|
|
# fig 2 & 3
|
|
if ax is None:
|
|
my_dpi = 500
|
|
fnt_size = 18
|
|
fig2, ax2 = plt.subplots(figsize=(5000/my_dpi, 2800/my_dpi), dpi=my_dpi)
|
|
fig3, ax3 = plt.subplots(figsize=(5000/my_dpi, 2800/my_dpi), dpi=my_dpi)
|
|
else:
|
|
# plt.rcParams['font.size'] = fnt_size
|
|
fnt_size = 12
|
|
# place of plots on the grid
|
|
ax2 = ax[1,0]
|
|
ax3 = ax[1,1]
|
|
lines_fig2 = []
|
|
lines_fig3 = []
|
|
#plt.figure(figsize=(5000/my_dpi, 2800/my_dpi), dpi=my_dpi)
|
|
if swp2_lines:
|
|
for k in range(len(swp2_lines[0])):
|
|
swp2_lines[0][k] = swp2_lines[0][k]/tgen*mu
|
|
for k in range(len(swp2_lines[1])):
|
|
swp2_lines[1][k] = swp2_lines[1][k]*4*mu
|
|
x2_plot, y2_plot = plot_straight_x_y(swp2_lines[0],swp2_lines[1])
|
|
p2, = ax2.plot(x2_plot, y2_plot, linestyle="-", alpha=0.75, lw=2, label = 'swp2', color="black")
|
|
lines_fig2.append(p2)
|
|
# Plotting (fig 3) which is the same but log scale for x
|
|
p3, = ax3.plot(x2_plot, y2_plot, linestyle="-", alpha=0.75, lw=2, label = 'swp2', color="black")
|
|
lines_fig3.append(p3)
|
|
for breaks, plot in enumerate(plot_lines):
|
|
x,y=plot
|
|
x2_plot, y2_plot = plot_straight_x_y(x,y)
|
|
if subset is not None:
|
|
if breaks in subset:
|
|
masking_alpha = 0.75
|
|
autoscale = True
|
|
else:
|
|
masking_alpha = 0
|
|
autoscale = False
|
|
ax2.set_autoscale_on(autoscale)
|
|
ax3.set_autoscale_on(autoscale)
|
|
p2, = ax2.plot(x2_plot, y2_plot, 'o', linestyle="-", alpha=masking_alpha, lw=2, label = str(breaks)+' brks')
|
|
# Plotting (fig 3) which is the same but log scale for x
|
|
p3, = ax3.plot(x2_plot, y2_plot, 'o', linestyle="-", alpha=masking_alpha, lw=2, label = str(breaks)+' brks')
|
|
if subset is not None and breaks in subset:
|
|
# store for legend
|
|
lines_fig2.append(p2)
|
|
lines_fig3.append(p3)
|
|
ax3.axvline(x=500/tgen*mu, linestyle="--")
|
|
if theta_scale:
|
|
xlabel = "Theta scaled by N0"
|
|
ylabel = "Theta scaled by N0"
|
|
else:
|
|
xlabel = "time"
|
|
ylabel = "Effective pop. size (Ne)"
|
|
if ax is None:
|
|
# if not ax, then use the plt syntax, not ax...
|
|
plt.xlabel(xlabel, fontsize=fnt_size)
|
|
plt.ylabel(ylabel, fontsize=fnt_size)
|
|
plt.xlim(left=0)
|
|
xlim_val = plt.gca().get_xlim()
|
|
x_ticks = list(plt.xticks())[0]
|
|
plt.gca().set_xticks(x_ticks)
|
|
plt.gca().set_xlim(xlim_val)
|
|
plt.gca().set_xticklabels([f'{k:.0e}\n{k/(mu):.0e}\n{k/(mu)*tgen:.0e}' for k in x_ticks], fontsize = fnt_size*0.5)
|
|
# rescale y to effective pop size
|
|
ylim_val = plt.gca().get_ylim()
|
|
y_ticks = list(plt.yticks())[0]
|
|
plt.gca().set_yticks(y_ticks)
|
|
plt.gca().set_ylim(ylim_val)
|
|
plt.gca().set_yticklabels([f'{k/(4*mu):.0e}' for k in y_ticks], fontsize = fnt_size*0.5)
|
|
plt.title(title, fontsize=fnt_size)
|
|
plt.legend(handles=lines_fig2, loc='best', fontsize = fnt_size*0.5)
|
|
plt.text(-0.13, -0.135, 'Coal. time\nGen. time\nYears', ha='left', va='bottom', transform=ax3.transAxes)
|
|
plt.subplots_adjust(bottom=0.2) # Adjust the value as needed
|
|
plt.savefig(title+'_plotB_'+str(nb_epochs)+'_epochs.pdf')
|
|
# close fig2 to save memory
|
|
plt.close(fig2)
|
|
else:
|
|
# when ax subplotting is used
|
|
ax2.set_xlabel(xlabel, fontsize=fnt_size)
|
|
ax2.set_ylabel(ylabel, fontsize=fnt_size)
|
|
ax2.set_title(title, fontsize=fnt_size)
|
|
ax2.legend(handles=lines_fig2, loc='best', fontsize = fnt_size*0.5)
|
|
ax3.set_xscale('log')
|
|
ax3.set_yscale('log')
|
|
ax3.set_xlabel(xlabel, fontsize=fnt_size)
|
|
ax3.set_ylabel(ylabel, fontsize=fnt_size)
|
|
ax3.set_title(title, fontsize=fnt_size)
|
|
ax3.legend(handles=lines_fig3, loc='best', fontsize = fnt_size*0.5)
|
|
xlim_val = ax3.get_xlim()
|
|
x_ticks = list(ax3.get_xticks())
|
|
ax3.set_xticks(x_ticks)
|
|
ax3.set_xlim(xlim_val)
|
|
ax3.set_xticklabels([f'{k:.0e}\n{k/(mu):.0e}\n{k/(mu)*tgen:.0e}' for k in x_ticks], fontsize = fnt_size*0.5)
|
|
ylim_val = ax3.get_ylim()
|
|
# rescale y to effective pop size
|
|
y_ticks = list(ax3.get_yticks())
|
|
ax3.set_yticks(y_ticks)
|
|
ax3.set_ylim(ylim_val)
|
|
ax3.set_yticklabels([f'{k/(4*mu):.0e}' for k in y_ticks], fontsize = fnt_size*0.5)
|
|
plt.text(-0.13, -0.135, 'Coal. time\nGen. time\nYears', ha='left', va='bottom', transform=ax3.transAxes)
|
|
plt.subplots_adjust(bottom=0.2) # Adjust the value as needed
|
|
if ax is None:
|
|
# nb of plot_lines represent the number of epochs stored (len(plot_lines) = #breaks+1)
|
|
plt.savefig(title+'_plotC_'+str(nb_epochs)+'_epochs_log.pdf')
|
|
# close fig3 to save memory
|
|
plt.close(fig3)
|
|
return ax
|
|
|
|
def plot_raw_stairs(plot_lines, prop, title, ax = None, n_ticks = 10, rescale = False, subset = None, max_breaks = None):
|
|
if max_breaks:
|
|
nb_breaks = max_breaks
|
|
else:
|
|
nb_breaks = len(plot_lines)+1
|
|
# multiple fig
|
|
if ax is None:
|
|
# intialize figure 1
|
|
my_dpi = 500
|
|
fnt_size = 18
|
|
# plt.rcParams['font.size'] = fnt_size
|
|
fig, ax1 = plt.subplots(figsize=(5000/my_dpi, 2800/my_dpi), dpi=my_dpi)
|
|
plt.subplots_adjust(bottom=0.2) # Adjust the value as needed
|
|
else:
|
|
fnt_size = 12
|
|
# plt.rcParams['font.size'] = fnt_size
|
|
ax1 = ax[0, 0]
|
|
plt.subplots_adjust(wspace=0.3, hspace=0.3)
|
|
plots = []
|
|
for breaks, plot in enumerate(plot_lines):
|
|
if max_breaks and breaks > max_breaks:
|
|
# stop plotting if it exceeds the limit
|
|
continue
|
|
x,y = plot
|
|
x_plot, y_plot = plot_straight_x_y(x,y)
|
|
p, = ax1.plot(x_plot, y_plot, 'o', linestyle="-", alpha=0.75, lw=2, label = str(breaks)+' brks')
|
|
|
|
# add plot to the list of all plots to superimpose
|
|
plots.append(p)
|
|
x_ticks = x
|
|
# print(x_ticks)
|
|
#print(prop, "\n", sum(prop))
|
|
#ax.legend(handles=[p0]+plots)
|
|
ax1.set_xlabel("# bin & cumul. prop. of sites", fontsize=fnt_size)
|
|
# Set the x-axis locator to reduce the number of ticks to 10
|
|
ax1.set_ylabel(r'$\theta_k$', fontsize=fnt_size, rotation = 90)
|
|
ax1.set_title(title, fontsize=fnt_size)
|
|
ax1.legend(handles=plots, loc='best', fontsize = fnt_size*0.5)
|
|
ax1.set_xticks(x_ticks)
|
|
step = len(x_ticks)//(n_ticks-1)
|
|
values = x_ticks[::step]
|
|
new_prop = []
|
|
for val in values:
|
|
new_prop.append(prop[int(val)-2])
|
|
new_prop = new_prop[::-1]
|
|
ax1.set_xticks(values)
|
|
ax1.set_xticklabels([f'{values[k]}\n{val:.2f}' for k, val in enumerate(new_prop)], fontsize = fnt_size*0.8)
|
|
if ax is None:
|
|
# nb of plot_lines represent the number of epochs stored (len(plot_lines) = #breaks+1)
|
|
plt.savefig(title+'_raw_'+str(nb_breaks)+'_breaks.pdf')
|
|
plt.close(fig)
|
|
# return plots
|
|
return ax
|
|
|
|
def combined_plot(folder_path, mu, tgen, breaks, title = "Title", theta_scale = False, selected_breaks = []):
|
|
my_dpi = 300
|
|
saved_plots_dict = save_all_epochs_thetafolder(folder_path, mu, tgen, title, theta_scale, output = title+"_plotdata.json")
|
|
nb_of_epochs = len(saved_plots_dict["all_epochs"]["plots"])
|
|
best_epoch = saved_plots_dict["best_epoch_by_AIC"]
|
|
print("Best epoch based on AIC =", best_epoch)
|
|
save_k_theta(folder_path, mu, tgen, title, theta_scale, breaks_max = nb_of_epochs, input = title+"_plotdata.json", output = title+"_plotdata.json")
|
|
|
|
with open(title+"_plotdata.json", 'r') as json_file:
|
|
loaded_data = json.load(json_file)
|
|
|
|
# START OF COMBINED PLOT CODE
|
|
|
|
# # plot page 1 of summary
|
|
# fig1, ax1 = plt.subplots(2, 2, figsize=(5000/my_dpi, 2970/my_dpi), dpi=my_dpi)
|
|
# # fig1.tight_layout()
|
|
# # Adjust absolute space between the top and bottom rows
|
|
# fig1.subplots_adjust(hspace=0.35) # Adjust this value based on your requirement
|
|
# # plot page 2 of summary
|
|
# fig2, ax2 = plt.subplots(2, 2, figsize=(5000/my_dpi, 2970/my_dpi), dpi=my_dpi)
|
|
# # fig2.tight_layout()
|
|
# ax1 = plot_raw_stairs(plot_lines = loaded_data['raw_stairs'],
|
|
# prop = loaded_data['prop'], title = title, ax = ax1)
|
|
# ax1 = plot_scaled_theta(plot_lines = loaded_data['scaled_stairs'],
|
|
# prop = loaded_data['prop'], title = title, ax = ax1, subset=[loaded_data['best_epoch_by_AIC']]+selected_breaks)
|
|
# ax2 = plot_scaled_theta(plot_lines = loaded_data['scaled_stairs'],
|
|
# prop = loaded_data['prop'], title = title, ax = ax2)
|
|
# ax1, ax2 = plot_all_epochs_thetafolder(loaded_data, mu, tgen, title, theta_scale, ax = [ax1, ax2])
|
|
|
|
# fig1.savefig(title+'_combined_p1.pdf')
|
|
# print("Wrote", title+'_combined_p1.pdf')
|
|
# fig2.savefig(title+'_combined_p2.pdf')
|
|
# print("Wrote", title+'_combined_p2.pdf')
|
|
|
|
# END OF COMBINED PLOT CODE
|
|
|
|
|
|
# Start of Parsing real swp2 output
|
|
folder_splitted = folder_path.split("/")
|
|
swp2_summary = "/".join(folder_splitted[:-2])+'/'+folder_splitted[-3]+".final.summary"
|
|
swp2_vals = parse_stairwayplot_output_summary(stwplt_out = swp2_summary)
|
|
swp2_x, swp2_y = swp2_vals[0], swp2_vals[1]
|
|
# End of Parsing real swp2 output
|
|
plot_raw_stairs(plot_lines = loaded_data['raw_stairs'],
|
|
prop = loaded_data['prop'], title = title, ax = None, max_breaks = breaks)
|
|
plot_scaled_theta(plot_lines = loaded_data['scaled_stairs'], mu = mu, tgen = tgen, subset=[loaded_data['best_epoch_by_AIC']]+selected_breaks,
|
|
# plot_scaled_theta(plot_lines = loaded_data['scaled_stairs'], subset=list(range(0,3))+[loaded_data['best_epoch_by_AIC']]+selected_breaks,
|
|
prop = loaded_data['prop'], title = title, swp2_lines = [swp2_x, swp2_y], ax = None)
|
|
plot_all_epochs_thetafolder(loaded_data, mu, tgen, title, theta_scale, ax = None)
|
|
|
|
# plt.close(fig1)
|
|
# plt.close(fig2)
|
|
def parse_stairwayplot_output_summary(stwplt_out, xlim = None, ylim = None, title = "default title", plot = False):
|
|
#col 5
|
|
year = []
|
|
# col 6
|
|
ne_median = []
|
|
ne_2_5 = []
|
|
ne_97_5 = []
|
|
ne_12_5 = []
|
|
# col 10
|
|
ne_87_5 = []
|
|
with open(stwplt_out, "r") as stwplt_stream:
|
|
for line in stwplt_stream:
|
|
## Line format
|
|
# mutation_per_site n_estimation theta_per_site_median theta_per_site_2.5% theta_per_site_97.5% year Ne_median Ne_2.5% Ne_97.5% Ne_12.5% Ne_87.5%
|
|
if not line.startswith("mutation_per_site"):
|
|
#not header
|
|
values = line.strip().split()
|
|
year.append(float(values[5]))
|
|
ne_median.append(float(values[6]))
|
|
ne_2_5.append(float(values[7]))
|
|
ne_97_5.append(float(values[8]))
|
|
ne_12_5.append(float(values[9]))
|
|
ne_87_5.append(float(values[10]))
|
|
|
|
vals = [year, ne_median, ne_2_5, ne_97_5, ne_12_5, ne_87_5]
|
|
if plot :
|
|
# plot parsed data
|
|
label = ["Ne median", "Ne 2.5%", "Ne 97.5%", "Ne 12.5%", "Ne 87.5%"]
|
|
for i in range(1, 5):
|
|
fig, = plt.plot(year, vals[i], '--', alpha = 0.4)
|
|
fig.set_label(label[i])
|
|
# # last plot is median
|
|
fig, = plt.plot(year, ne_median, 'r-', lw=2)
|
|
fig.set_label(label[0])
|
|
plt.legend()
|
|
plt.ylabel("Individuals (Ne)")
|
|
plt.xlabel("Time (years)")
|
|
if xlim:
|
|
plt.xlim(xlim)
|
|
if ylim:
|
|
plt.ylim(ylim)
|
|
plt.title(title)
|
|
plt.show()
|
|
plt.close()
|
|
return vals
|
|
|
|
if __name__ == "__main__":
|
|
|
|
if len(sys.argv) != 4:
|
|
print("Need 3 args: ThetaFolder MutationRate GenerationTime")
|
|
exit(0)
|
|
|
|
folder_path = sys.argv[1]
|
|
mu = sys.argv[2]
|
|
tgen = sys.argv[3]
|
|
|
|
plot_all_epochs_thetafolder(folder_path, mu, tgen)
|