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Added GW150914_IMRPhenomD_heterodyne.py
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xuyuon committed Sep 11, 2024
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import jax
import jax.numpy as jnp

from jimgw.jim import Jim
from jimgw.prior import CombinePrior, UniformPrior, CosinePrior, SinePrior, PowerLawPrior
from jimgw.single_event.detector import H1, L1
from jimgw.single_event.likelihood import HeterodynedTransientLikelihoodFD
from jimgw.single_event.waveform import RippleIMRPhenomD
from jimgw.transforms import BoundToUnbound
from jimgw.single_event.transforms import ComponentMassesToChirpMassSymmetricMassRatioTransform, SkyFrameToDetectorFrameSkyPositionTransform, ComponentMassesToChirpMassMassRatioTransform
from jimgw.single_event.utils import Mc_q_to_m1_m2
from flowMC.strategy.optimization import optimization_Adam

jax.config.update("jax_enable_x64", True)

###########################################
########## First we grab data #############
###########################################

# first, fetch a 4s segment centered on GW150914
gps = 1126259462.4
duration = 4
post_trigger_duration = 2
start_pad = duration - post_trigger_duration
end_pad = post_trigger_duration
fmin = 20.0
fmax = 1024.0

ifos = [H1, L1]

for ifo in ifos:
ifo.load_data(gps, start_pad, end_pad, fmin, fmax, psd_pad=16, tukey_alpha=0.2)

M_c_min, M_c_max = 10.0, 80.0
eta_min, eta_max = 0.2, 0.25
# m_1_prior = UniformPrior(Mc_q_to_m1_m2(M_c_min, q_max)[0], Mc_q_to_m1_m2(M_c_max, q_min)[0], parameter_names=["m_1"])
# m_2_prior = UniformPrior(Mc_q_to_m1_m2(M_c_min, q_min)[1], Mc_q_to_m1_m2(M_c_max, q_max)[1], parameter_names=["m_2"])
Mc_prior = UniformPrior(M_c_min, M_c_max, parameter_names=["M_c"])
eta_prior = UniformPrior(eta_min, eta_max, parameter_names=["eta"])
s1z_prior = UniformPrior(-1.0, 1.0, parameter_names=["s1_z"])
s2z_prior = UniformPrior(-1.0, 1.0, parameter_names=["s2_z"])
dL_prior = PowerLawPrior(1.0, 2000.0, 2.0, parameter_names=["d_L"])
t_c_prior = UniformPrior(-0.05, 0.05, parameter_names=["t_c"])
phase_c_prior = UniformPrior(0.0, 2 * jnp.pi, parameter_names=["phase_c"])
iota_prior = SinePrior(parameter_names=["iota"])
psi_prior = UniformPrior(0.0, jnp.pi, parameter_names=["psi"])
ra_prior = UniformPrior(0.0, 2 * jnp.pi, parameter_names=["ra"])
dec_prior = CosinePrior(parameter_names=["dec"])

prior = CombinePrior(
[
Mc_prior,
eta_prior,
s1z_prior,
s2z_prior,
dL_prior,
t_c_prior,
phase_c_prior,
iota_prior,
psi_prior,
ra_prior,
dec_prior,
]
)

sample_transforms = [
# ComponentMassesToChirpMassMassRatioTransform,
BoundToUnbound(name_mapping = (["M_c"], ["M_c_unbounded"]), original_lower_bound=M_c_min, original_upper_bound=M_c_max),
BoundToUnbound(name_mapping = (["eta"], ["eta_unbounded"]), original_lower_bound=eta_min, original_upper_bound=eta_max),
BoundToUnbound(name_mapping = (["s1_z"], ["s1_z_unbounded"]) , original_lower_bound=-1.0, original_upper_bound=1.0),
BoundToUnbound(name_mapping = (["s2_z"], ["s2_z_unbounded"]) , original_lower_bound=-1.0, original_upper_bound=1.0),
BoundToUnbound(name_mapping = (["d_L"], ["d_L_unbounded"]) , original_lower_bound=1.0, original_upper_bound=2000.0),
BoundToUnbound(name_mapping = (["t_c"], ["t_c_unbounded"]) , original_lower_bound=-0.05, original_upper_bound=0.05),
BoundToUnbound(name_mapping = (["phase_c"], ["phase_c_unbounded"]) , original_lower_bound=0.0, original_upper_bound=2 * jnp.pi),
BoundToUnbound(name_mapping = (["iota"], ["iota_unbounded"]), original_lower_bound=0., original_upper_bound=jnp.pi),
BoundToUnbound(name_mapping = (["psi"], ["psi_unbounded"]), original_lower_bound=0.0, original_upper_bound=jnp.pi),
SkyFrameToDetectorFrameSkyPositionTransform(gps_time=gps, ifos=ifos),
BoundToUnbound(name_mapping = (["zenith"], ["zenith_unbounded"]), original_lower_bound=0.0, original_upper_bound=jnp.pi),
BoundToUnbound(name_mapping = (["azimuth"], ["azimuth_unbounded"]), original_lower_bound=0.0, original_upper_bound=2 * jnp.pi),
]

likelihood_transforms = [
# ComponentMassesToChirpMassSymmetricMassRatioTransform,
]

likelihood = HeterodynedTransientLikelihoodFD(
ifos,
prior=prior,
waveform=RippleIMRPhenomD(),
trigger_time=gps,
duration=4,
post_trigger_duration=2,
sample_transforms=sample_transforms,
likelihood_transforms=likelihood_transforms,
)


mass_matrix = jnp.eye(11)
mass_matrix = mass_matrix.at[1, 1].set(1e-3)
mass_matrix = mass_matrix.at[5, 5].set(1e-3)
local_sampler_arg = {"step_size": mass_matrix * 3e-3}

Adam_optimizer = optimization_Adam(n_steps=3000, learning_rate=0.01, noise_level=1)

n_epochs = 30
n_loop_training = 20
learning_rate = 1e-4


jim = Jim(
likelihood,
prior,
sample_transforms=sample_transforms,
likelihood_transforms=likelihood_transforms,
n_loop_training=n_loop_training,
n_loop_production=20,
n_local_steps=10,
n_global_steps=1000,
n_chains=500,
n_epochs=n_epochs,
learning_rate=learning_rate,
n_max_examples=30000,
n_flow_samples=100000,
momentum=0.9,
batch_size=30000,
use_global=True,
train_thinning=1,
output_thinning=10,
local_sampler_arg=local_sampler_arg,
strategies=[Adam_optimizer, "default"],
verbose=True
)

jim.sample(jax.random.PRNGKey(42))
# jim.get_samples()
# jim.print_summary()

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