I'm wondering if I can get away with one cov mat for spicy buffalo... checking.
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from pearce.emulator import OriginalRecipe, ExtraCrispy, SpicyBuffalo
from pearce.mocks import cat_dict
import numpy as np
from os import path
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import matplotlib
#matplotlib.use('Agg')
from matplotlib import pyplot as plt
%matplotlib inline
import seaborn as sns
sns.set()
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#xi gg
training_file = '/scratch/users/swmclau2/xi_zheng07_cosmo_lowmsat/PearceRedMagicXiCosmoFixedNd.hdf5'
#test_file = '/scratch/users/swmclau2/xi_zheng07_cosmo_test2/PearceRedMagicXiCosmoTest.hdf5'
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em_method = 'gp'
split_method = 'random'
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a = 1.0
z = 1.0/a - 1.0
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fixed_params = {'z':z, 'cosmo': 0}#, 'r':24.06822623}
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np.random.seed(0)
emu = SpicyBuffalo(training_file, method = em_method, fixed_params=fixed_params,
custom_mean_function = 'linear', downsample_factor = 1.0)
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emu0 = emu._emulators[5]
emu1 = emu._emulators[7]
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x0, y0 = emu.x[5], emu.y[5]
x1, y1 = emu.x[7], emu.y[7]
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x0.shape, x1.shape
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np.all(x0 == x1)
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y0.shape, y1.shape
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np.all(x0==x1)
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emu0._x.shape
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emu0.predict(y0, np.zeros((1, x0.shape[1])), return_cov = False)
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emu0.predict(y1, np.zeros((1, x0.shape[1])), return_cov = False)
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emu1.predict(y0, np.zeros((1, x0.shape[1])), return_cov = False)
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emu1.predict(y1, np.zeros((1, x0.shape[1])), return_cov = False)
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