Added help strings and ksz support
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ff01447ab6
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247d8512e4
@ -143,6 +143,10 @@ def interp3d(x not None, y not None,
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z not None,
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npx.ndarray[DTYPE_t, ndim=3] d not None, DTYPE_t Lbox,
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bool periodic=False):
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""" interp3d(x,y,z,d,Lbox,periodic=False) -> interpolated values
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Compute the tri-linear interpolation of the given field (d) at the given position (x,y,z). It assumes that they are box-centered coordinates. So (x,y,z) == (0,0,0) is equivalent to the pixel at (Nx/2,Ny/2,Nz/2) with Nx,Ny,Nz = d.shape. If periodic is set, it assumes the box is periodic
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"""
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cdef npx.ndarray[DTYPE_t] out
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cdef npx.ndarray[DTYPE_t] ax, ay, az
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cdef int i
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@ -18,6 +18,7 @@ parser.add_argument('--maxval', type=float, default=60)
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parser.add_argument('--depth_min', type=float, default=10)
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parser.add_argument('--depth_max', type=float, default=60)
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parser.add_argument('--iid', type=int, default=0)
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parser.add_argument('--proj_cat', type=bool, default=False)
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args = parser.parse_args()
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INDATA="/nethome/lavaux/Copy/PlusSimulation/BORG/Input_Data/2m++.npy"
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@ -61,8 +62,12 @@ for i in xrange(args.start,args.end,args.step):
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plt.clf()
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d = np.load(args.base_cic % i)
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proj = build_sky_proj(1+d, dmin=args.depth_min,dmax=args.depth_max,iid=args.iid)
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proj /= (args.depth_max-args.depth_min)
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hp.mollview(proj, fig=1, coord='CG', cmap=plt.cm.coolwarm, title='Sample %d' % i, min=args.minval, max=args.maxval)
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hp.projscatter(b[idx], l[idx], lw=0, color='g', s=2.0, alpha=0.7)
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hp.write_map("skymaps/proj_map_%d.fits" % i, proj)
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hp.mollview(proj, fig=1, coord='CG', cmap=plt.cm.copper, title='Sample %d' % i, min=args.minval, max=args.maxval)
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if args.proj_cat:
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hp.projscatter(b[idx], l[idx], lw=0, color=[0.1,0.8,0.8], s=2.0, alpha=0.7)
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ff.savefig(args.base_fig % i)
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138
python_sample/build_nbody_ksz_from_galaxies.py
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138
python_sample/build_nbody_ksz_from_galaxies.py
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@ -0,0 +1,138 @@
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import healpy as hp
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import numpy as np
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import cosmotool as ct
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import argparse
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import h5py as h5
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from matplotlib import pyplot as plt
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import ksz
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from ksz.constants import *
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from cosmotool import interp3d
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def wrapper_impulsion(f):
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class _Wrapper(object):
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def __init__(self):
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pass
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def __getitem__(self,direction):
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if 'velocity' in f:
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return f['velocity'][:,:,:,direction]
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n = "p%d" % direction
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return f[n]
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return _Wrapper()
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parser=argparse.ArgumentParser(description="Generate Skymaps from CIC maps")
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parser.add_argument('--boxsize', type=float, required=True)
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parser.add_argument('--Nside', type=int, default=128)
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parser.add_argument('--base_h5', type=str, required=True)
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parser.add_argument('--base_fig', type=str, required=True)
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parser.add_argument('--start', type=int, required=True)
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parser.add_argument('--end', type=int, required=True)
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parser.add_argument('--step', type=int, required=True)
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parser.add_argument('--minval', type=float, default=-0.5)
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parser.add_argument('--maxval', type=float, default=0.5)
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parser.add_argument('--depth_min', type=float, default=10)
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parser.add_argument('--depth_max', type=float, default=60)
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parser.add_argument('--iid', type=int, default=0)
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parser.add_argument('--ksz_map', type=str, required=True)
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args = parser.parse_args()
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L = args.boxsize
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Nside = args.Nside
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def build_unit_vectors(N):
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ii = np.arange(N)*L/N - 0.5*L
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d = np.sqrt(ii[:,None,None]**2 + ii[None,:,None]**2 + ii[None,None,:]**2)
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d[N/2,N/2,N/2] = 1
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ux = ii[:,None,None] / d
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uy = ii[None,:,None] / d
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uz = ii[None,None,:] / d
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return ux,uy,uz
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def build_radial_v(v):
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u = build_unit_vectors(N)
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vr = v[0] * u[0]
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vr += v[1] * u[1]
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vr += v[2] * u[2]
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return vr
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def generate_from_catalog(vfield,Boxsize):
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import progressbar as pbar
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cat = np.load("2m++.npy")
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profiler = KSZ_Isothermal(2.37)
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cat['distance'] = cat['best_velcmb']
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cat = cat[np.where((cat['distance']>100*dmin)*(cat['distance']<dmax*100))]
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deg2rad = np.pi/180
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xp,yp,zp = hp.pix2vec(Nside, np.arange(Npix))
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N2 = np.sqrt(xp**2+yp**2+zp**2)
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ksz_template = np.zeros(12*Nside**2, dtype=np.float64)
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ksz_mask = np.zeros(12**Nside**2, dtype=np.uint8)
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pb = pbar.ProgressBar(maxval = cat.size, widgets=[pb.Bar(), pb.ETA()]).start()
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for k,i in np.ndenumerate(cat):
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pb.update(k)
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l,b=i['gal_long'],i['gal_lat']
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l *= deg2rad
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b *= deg2rad
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x0 = np.cos(l)*np.cos(b)
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y0 = np.sin(l)*np.cos(b)
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z0 = np.sin(b)
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DA =i['distance']/100
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Lgal = DA**2*10**(0.4*(tmpp_cat['Msun']-i['K2MRS']+25))
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idx0 = hp.query_disc(Nside, (x0,y0,z0), 3*rGalaxy/DA)
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vr = interp3d(DA * x0, DA * y0, DA * z0, vfield, Boxsize)
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xp1 = xp[idx0]
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yp1 = yp[idx0]
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zp1 = zp[idx0]
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N2_1 = N2[idx0]
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cos_theta = x0*xp1+y0*yp1+z0*zp1
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cos_theta /= np.sqrt(x0**2+y0**2+z0**2)*(N2_1)
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idx,idx_masked,m = profiler.projected_profile(cos_theta, DA)
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idx = idx0[idx]
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idx_masked = idx0[idx_masked]
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ksz_template[idx] += vr * m
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ksz_mask[idx_masked] = 0
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pb.finish()
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return ksz_template, ksz_mask
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for i in xrange(args.start,args.end,args.step):
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ff=plt.figure(1)
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plt.clf()
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v=[]
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with h5.File(args.base_h5 % i, mode="r") as f:
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p = wrapper_impulsion(f)
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v.append(p[i] / f['density'][:])
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# Rescale by Omega_b / Omega_m
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vr = build_radial_v(v)
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vr *= -ksz_normalization*rho_mean_matter*1e6
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del v
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proj = generate_from_catalog(vfield,Boxsize)
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hp.write_map(args.ksz_map % i, proj)
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hp.mollview(proj, fig=1, coord='CG', cmap=plt.cm.coolwarm, title='Sample %d' % i, min=args.minval,
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max=args.maxval)
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ff.savefig(args.base_fig % i)
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@ -32,7 +32,7 @@ args = parser.parse_args()
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for i in xrange(args.start, args.end, args.step):
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print i
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# pos,_,density,N,L,_ = bic.run_generation("/nethome/lavaux/remote/borg_2m++_128/initial_density_%d.dat" % i, 0.001, astart, cosmo, supersample=2, do_lpt2=True)
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pos,_,density,N,L,_ = bic.run_generation("%s/initial_density_%d.dat" % (args.base,i), 0.001, astart,
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pos,_,density,N,L,_,_ = bic.run_generation("%s/initial_density_%d.dat" % (args.base,i), 0.001, astart,
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cosmo, supersample=args.supersample, do_lpt2=True)
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dcic = ct.cicParticles(pos, L, args.N)
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3
python_sample/ksz/__init__.py
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3
python_sample/ksz/__init__.py
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from .constants import *
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from .gal_prof import KSZ_Profile, KSZ_Isothermal, KSZ_NFW
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31
python_sample/ksz/constants.py
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31
python_sample/ksz/constants.py
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import numpy as np
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Mpc=3.08e22
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rhoc = 1.8864883524081933e-26 # m^(-3)
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sigmaT = 6.6524e-29
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mp = 1.6726e-27
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lightspeed = 299792458.
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v_unit = 1e3 # Unit of 1 km/s
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T_cmb=2.725
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h = 0.71
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Y = 0.245 #The Helium abundance
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Omega_matter = 0.26
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Omega_baryon=0.0445
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G=6.67e-11
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MassSun=2e30
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frac_electron = 1.0 # Hmmmm
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frac_gas_galaxy = 0.14
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mu = 1/(1-0.5*Y)
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tmpp_cat={'Msun':3.29,'alpha':-0.7286211634758224,'Mstar':-23.172904033796893,'PhiStar':0.0113246633636846,'lbar':393109973.22508669}
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baryon_fraction = Omega_baryon / Omega_matter
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ksz_normalization = T_cmb*sigmaT*v_unit/(lightspeed*mu*mp) * baryon_fraction
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rho_mean_matter = Omega_matter * (3*(100e3/Mpc)**2/(8*np.pi*G))
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Lbar = tmpp_cat['lbar'] / Mpc**3
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M_over_L_galaxy = rho_mean_matter / Lbar
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del np
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149
python_sample/ksz/gal_prof.py
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149
python_sample/ksz/gal_prof.py
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from .constants import *
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# -----------------------------------------------------------------------------
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# Generic profile generator
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# -----------------------------------------------------------------------------
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class KSZ_Profile(object):
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R_star= 0.050 # 15 kpc/h
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L_gal0 = 10**(0.4*(tmpp_cat['Msun']-tmpp_cat['Mstar']))
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def __init__(self):
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self.rGalaxy = 1.0
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def evaluate_profile(r):
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raise NotImplementedError("Abstract function")
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def projected_profile(cos_theta,angularDistance):
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idx = np.where(cos_theta > 0)[0]
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tan_theta_2 = 1/(cos_theta[idx]**2) - 1
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tan_theta_2_max = (self.rGalaxy/angularDistance)**2
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tan_theta_2_min = (R_star/angularDistance)**2
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idx0 = np.where((tan_theta_2 < tan_theta_2_max))
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idx = idx[idx0]
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tan_theta_2 = tan_theta_2[idx0]
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tan_theta = np.sqrt(tan_theta_2)
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r = (tan_theta*DA)
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m,idx_mask = self.evaluate_profile(r)
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idx_mask = np.append(idx_mask,np.where(tan_theta_2<tan_theta_2_min)[0])
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idx_mask = np.append(idx_mask,[tan_theta_2.argmin()])
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return idx,idx_mask,m
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# -----------------------------------------------------------------------------
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# Isothermal profile generator
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# -----------------------------------------------------------------------------
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class KSZ_Isothermal(KSZ_Profile):
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sigma_FP=160e3 #m/s
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R_innergal = 0.226
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def __init__(self, Lgal, x, y=0.0):
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"Support for Isothermal profile"
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super(KSZ_Isothermal,self).__init__()
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self.R_gal = 0.226 * x
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self.R_innergal *= y
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self.rho0 = self.sigma_FP**2/(2*np.pi*G) # * (Lgal/L_gal0)**(2./3)
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self.rGalaxy = self.R_gal*(Lgal/self.L_gal0)**(1./3)
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self.rInnerGalaxy = self.R_innergal*(Lgal/self.L_gal0)**(1./3)
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# self._prepare()
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def _prepare(self, x_min, x_max):
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from scipy.integrate import quad
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from numpy import sqrt, log10
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lmin = log10(x_min)
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lmax = log10(x_max)
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x = 10**(np.arange(100)*(lmax-lmin)/100.+lmin)
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profile = np.empty(x.size)
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nu_tilde = lambda u: (1/(u**2*(1+u)))
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for i in range(x.size):
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profile[i] = 2*quad(lambda y: (nu_tilde(sqrt(x[i]**2+y**2))), 0, args.x)[0]
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self._table = x,profile
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def evaluate_profile(r):
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rho0, rGalaxy, rInner = self.rho0, self.rGalaxy, self.rInnerGalaxy
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Q=rho0*2/r*np.arctan(np.sqrt((rGalaxy/r)**2 - 1))/Mpc
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# Q[r<rInner] = 0
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return Q,np.where(r<rInner)[0]
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# -----------------------------------------------------------------------------
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# NFW profile generator
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# -----------------------------------------------------------------------------
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class KSZ_NFW(KSZ_Profile):
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""" Support for NFW profile
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"""
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def __init__(self,x,y=0.0):
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from numpy import log, pi
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if 'pre_nfw' not in self:
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self._prepare()
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kiso = KSZ_Isothermal(x,y)
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r_is = kiso.rGalaxy
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rho_is = kiso.rho0
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r_inner = kiso.rInnerGalaxy
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self.Mgal = rho_is*4*pi*(r_is/args.x)*Mpc #Lgal*M_over_L_galaxy
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self.Rvir = r_is/x
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cs = self._get_concentration(Mgal)
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self.rs = Rvir/cs
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b = (log(1.+cs)-cs/(1.+cs))
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self.rho_s = Mgal/(4*pi*b*(rs*Mpc)**3)
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def _prepare(self, _x_min=1e-4, _x_max=1e4):
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from scipy.integrate import quad
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from numpy import sqrt, log10
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from scipy.interpolate import interp1d
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lmin = log10(x_min)
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lmax = log10(x_max)
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x = 10**(np.arange(100)*(lmax-lmin)/100.+lmin)
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profile = np.empty(x.size)
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nu_tilde = lambda u: (1/(u*(1+u)**2))
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for i in range(x.size):
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if x[i] < args.x:
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profile[i] = 2*quad(lambda y: (nu_tilde(sqrt(x[i]**2+y**2))), 0, np.sqrt((args.x)**2-x[i]**2))[0]
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else:
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profile[i] = 0
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# Insert the interpolator into the class definition
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KSZ_NFW.pre_nfw = self.pre_nfw = interp1d(x,prof)
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def _get_concentration(self, Mvir):
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from numpy import exp, log
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return exp(0.971 - 0.094*log(Mvir/(1e12*MassSun)))
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def evaluate_profile(r):
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cs = self._get_concentration(self.Mvir)
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rs = self.Rvir/cs
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return self.rho_s*rs*Mpc*self.pre_nfw(r/rs),np.array([],dtype=int)
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