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def plotcommand(cosmology='WMAP5', plotname=None):
"""pass"""
xarray = 10 ** np.arange(1, 15, 0.2)
yval = 'c'
zarray = np.arange(0, 5, 0.5)
xtitle = 'Halo Mass (M$_{sol}$)'
ytitle = 'Concentration'
linelabel = 'z='
fig = plt.figure()
ax = fig.add_subplot(111)
ax.set_xlabel(xtitle)
ax.set_ylabel(ytitle)
plt.ylim([2, 30])
colors = cm.rainbow(np.linspace(0, 1, len(zarray)))
for zind, zval in enumerate(zarray):
output = commah.run(cosmology=cosmology, zi=zval, Mi=xarray)
yarray = output[yval].flatten()
ax.plot(xarray, yarray, label=linelabel + str(zval), color=colors[zind])
ax.plot(xarray, commah.commah.cduffy(zval, xarray), color='black')
ax.set_xscale('log')
ax.set_yscale('log')
leg = ax.legend(loc=1)
leg.get_frame().set_alpha(0)
leg.get_frame().set_edgecolor('white')
for label in leg.get_texts():
label.set_fontsize('small')
for label in leg.get_lines():
label.set_linewidth(4)
if plotname:
fig.tight_layout(pad=0.2)
print("Plotting to '%s_CM_relation.png'" % plotname)
fig.savefig(plotname + '_CM_relation.png', dpi=fig.dpi * 5)
else:
plt.show()
xarray = 10 ** np.arange(0, 1, 0.05) - 1
yval = 'c'
zarray = 10 ** np.arange(6, 14, 2)
xtitle = 'Redshift'
ytitle = 'NFW Concentration'
linelabel = 'log$_{10}$ M$_{z}$(M$_{sol}$)='
fig = plt.figure()
ax = fig.add_subplot(111)
ax.set_xlabel(xtitle)
ax.set_ylabel(ytitle)
colors = cm.rainbow(np.linspace(0, 1, len(zarray)))
for zind, zval in enumerate(zarray):
output = commah.run(cosmology=cosmology, zi=xarray, Mi=zval)
yarray = output[yval].flatten()
ax.plot(xarray, yarray, label=linelabel + '{0:.1f}'.format(np.log10(zval)), color=colors[zind])
leg = ax.legend(loc=1)
leg.get_frame().set_alpha(0)
leg.get_frame().set_edgecolor('white')
for label in leg.get_texts():
label.set_fontsize('small')
for label in leg.get_lines():
label.set_linewidth(4)
if plotname:
fig.tight_layout(pad=0.2)
print("Plotting to '%s_Cz_relation.png'" % plotname)
fig.savefig(plotname + '_Cz_relation.png', dpi=fig.dpi * 5)
else:
plt.show()
xarray = 10 ** np.arange(0, 1, 0.05) - 1
yval = 'zf'
zarray = 10 ** np.arange(6, 14, 2)
xtitle = 'Redshift'
ytitle = 'Formation Redshift'
linelabel = 'log$_{10}$ M$_{z}$(M$_{sol}$)='
fig = plt.figure()
ax = fig.add_subplot(111)
ax.set_xlabel(xtitle)
ax.set_ylabel(ytitle)
colors = cm.rainbow(np.linspace(0, 1, len(zarray)))
for zind, zval in enumerate(zarray):
output = commah.run(cosmology=cosmology, zi=xarray, Mi=zval)
yarray = output[yval].flatten()
ax.plot(xarray, yarray, label=linelabel + '{0:.1f}'.format(np.log10(zval)), color=colors[zind])
leg = ax.legend(loc=2)
leg.get_frame().set_alpha(0)
leg.get_frame().set_edgecolor('white')
for label in leg.get_texts():
label.set_fontsize('small')
for label in leg.get_lines():
label.set_linewidth(4)
if plotname:
fig.tight_layout(pad=0.2)
print("Plotting to '%s_zfz_relation.png'" % plotname)
fig.savefig(plotname + '_zfz_relation.png', dpi=fig.dpi * 5)
else:
plt.show()
xarray = 10 ** np.arange(0, 1, 0.05) - 1
yval = 'dMdt'
zarray = 10 ** np.arange(10, 14, 0.5)
xtitle = 'log$_{10}$ (1+z)'
ytitle = 'log$_{10}$ Accretion Rate M$_{sol}$ yr$^{-1}$'
linelabel = 'log$_{10}$ M$_z$(M$_{sol}$)='
fig = plt.figure()
ax = fig.add_subplot(111)
ax.set_xlabel(xtitle)
ax.set_ylabel(ytitle)
colors = cm.rainbow(np.linspace(0, 1, len(zarray)))
cosmo = commah.getcosmo(cosmology)
for zind, zval in enumerate(zarray):
output = commah.run(cosmology=cosmology, zi=xarray, Mi=zval, com=False, mah=True)
yarray = output[yval].flatten()
ax.plot(np.log10(xarray + 1.0), np.log10(yarray), label=linelabel + '{0:.1f}'.format(np.log10(zval)), color=colors[zind])
semianalytic_approx = 71.6 * (zval / 1000000000000.0) * (cosmo['h'] / 0.7) * (-0.24 + 0.75 * (xarray + 1)) * np.sqrt(cosmo['omega_M_0'] * (xarray + 1) ** 3 + cosmo['omega_lambda_0'])
ax.plot(np.log10(xarray + 1), np.log10(semianalytic_approx), color='black')
leg = ax.legend(loc=2)
leg.get_frame().set_alpha(0)
leg.get_frame().set_edgecolor('white')
for label in leg.get_texts():
label.set_fontsize('small')
for label in leg.get_lines():
label.set_linewidth(4)
if plotname:
fig.tight_layout(pad=0.2)
print("Plotting to '%s_dMdtz_relation.png'" % plotname)
fig.savefig(plotname + '_dMdtz_relation.png', dpi=fig.dpi * 5)
else:
plt.show()
xarray = 10 ** np.arange(10, 14, 0.5)
yval = 'dMdt'
zarray = np.arange(0, 5, 0.5)
xtitle = 'Halo Mass M$_{sol}$'
ytitle = 'Accretion Rate M$_{sol}$ yr$^{-1}$'
linelabel = 'z='
fig = plt.figure()
ax = fig.add_subplot(111)
ax.set_xlabel(xtitle)
ax.set_ylabel(ytitle)
colors = cm.rainbow(np.linspace(0, 1, len(zarray)))
for zind, zval in enumerate(zarray):
output = commah.run(cosmology=cosmology, zi=zval, Mi=xarray, com=False, mah=True)
yarray = output[yval].flatten()
ax.plot(xarray, yarray, label=linelabel + str(zval), color=colors[zind])
ax.set_xscale('log')
ax.set_yscale('log')
leg = ax.legend(loc=2)
leg.get_frame().set_alpha(0)
leg.get_frame().set_edgecolor('white')
for label in leg.get_texts():
label.set_fontsize('small')
for label in leg.get_lines():
label.set_linewidth(4)
if plotname:
fig.tight_layout(pad=0.2)
print("Plotting to '%s_MAH_M_relation.png'" % plotname)
fig.savefig(plotname + '_MAH_M_relation.png', dpi=fig.dpi * 5)
else:
plt.show()
xarray = 10 ** np.arange(10, 14, 0.5)
yval = 'dMdt'
zarray = np.arange(0, 5, 0.5)
xtitle = 'Halo Mass M$_{sol}$'
ytitle = 'Specific Accretion Rate yr$^{-1}$'
linelabel = 'z='
fig = plt.figure()
ax = fig.add_subplot(111)
ax.set_xlabel(xtitle)
ax.set_ylabel(ytitle)
colors = cm.rainbow(np.linspace(0, 1, len(zarray)))
for zind, zval in enumerate(zarray):
output = commah.run(cosmology=cosmology, zi=zval, Mi=xarray, mah=True, com=False)
yarray = output[yval].flatten()
ax.plot(xarray, yarray / xarray, label=linelabel + str(zval), color=colors[zind])
ax.set_xscale('log')
ax.set_yscale('log')
leg = ax.legend(loc=1)
leg.get_frame().set_alpha(0)
leg.get_frame().set_edgecolor('white')
for label in leg.get_texts():
label.set_fontsize('small')
for label in leg.get_lines():
label.set_linewidth(4)
if plotname:
fig.tight_layout(pad=0.2)
print("Plotting to '%s_specificMAH_M_relation.png'" % plotname)
fig.savefig(plotname + '_specificMAH_M_relation.png', dpi=fig.dpi * 5)
else:
plt.show()
xarray = 10 ** np.arange(0, 1, 0.05) - 1
yval = 'Mz'
zarray = 10 ** np.arange(10, 14, 0.5)
xtitle = 'Redshift'
ytitle = 'M(z) (M$_{sol}$)'
linelabel = 'log$_{10}$ M$_{0}$(M$_{sol}$)='
fig = plt.figure()
ax = fig.add_subplot(111)
ax.set_xlabel(xtitle)
ax.set_ylabel(ytitle)
colors = cm.rainbow(np.linspace(0, 1, len(zarray)))
for zind, zval in enumerate(zarray):
output = commah.run(cosmology=cosmology, zi=0, Mi=zval, z=xarray)
yarray = output[yval].flatten()
ax.plot(xarray, yarray, label=linelabel + '{0:.1f}'.format(np.log10(zval)), color=colors[zind])
ax.set_yscale('log')
leg = ax.legend(loc=1)
leg.get_frame().set_alpha(0)
leg.get_frame().set_edgecolor('white')
for label in leg.get_texts():
label.set_fontsize('small')
for label in leg.get_lines():
label.set_linewidth(4)
if plotname:
fig.tight_layout(pad=0.2)
print("Plotting to '%s_Mzz_relation.png'" % plotname)
fig.savefig(plotname + '_Mzz_relation.png', dpi=fig.dpi * 5)
else:
plt.show()
xarray = 10 ** np.arange(0, 1, 0.02) - 1
yval = 'Mz'
zarray = 10 ** np.arange(10, 14, 0.5)
xtitle = 'Redshift'
ytitle = 'log$_{10}$ M(z)/M$_{0}$'
linelabel = 'log$_{10}$ M$_{0}$(M$_{sol}$)='
fig = plt.figure()
ax = fig.add_subplot(111)
ax.set_xlabel(xtitle)
ax.set_ylabel(ytitle)
colors = cm.rainbow(np.linspace(0, 1, len(zarray)))
for zind, zval in enumerate(zarray):
output = commah.run(cosmology=cosmology, zi=0, Mi=zval, z=xarray)
yarray = output[yval].flatten()
ax.plot(xarray, np.log10(yarray / zval), label=linelabel + '{0:.1f}'.format(np.log10(zval)), color=colors[zind])
leg = ax.legend(loc=3)
leg.get_frame().set_alpha(0)
leg.get_frame().set_edgecolor('white')
for label in leg.get_texts():
label.set_fontsize('small')
for label in leg.get_lines():
label.set_linewidth(4)
if plotname:
fig.tight_layout(pad=0.2)
print("Plotting to '%s_MzM0z_relation.png'" % plotname)
fig.savefig(plotname + '_MzM0z_relation.png', dpi=fig.dpi * 5)
else:
plt.show()
return 'Done'