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import torch
import torch.nn as nn
import torch.nn.functional as F
from torch_scatter import scatter_sum, scatter_mean
from tqdm.auto import tqdm
from .common import compose_context, ShiftedSoftplus
from .egnn import EGNN
from .uni_transformer import UniTransformerO2TwoUpdateGeneral
def get_refine_net(refine_net_type, config):
if refine_net_type == 'uni_o2':
refine_net = UniTransformerO2TwoUpdateGeneral(
num_blocks=config.num_blocks,
num_layers=config.num_layers,
hidden_dim=config.hidden_dim,
n_heads=config.n_heads,
k=config.knn,
edge_feat_dim=config.edge_feat_dim,
num_r_gaussian=config.num_r_gaussian,
num_node_types=config.num_node_types,
act_fn=config.act_fn,
norm=config.norm,
cutoff_mode=config.cutoff_mode,
ew_net_type=config.ew_net_type,
num_x2h=config.num_x2h,
num_h2x=config.num_h2x,
r_max=config.r_max,
x2h_out_fc=config.x2h_out_fc,
sync_twoup=config.sync_twoup
)
elif refine_net_type == 'egnn':
refine_net = EGNN(
num_layers=config.num_layers,
hidden_dim=config.hidden_dim,
edge_feat_dim=config.edge_feat_dim,
num_r_gaussian=1,
k=config.knn,
cutoff_mode=config.cutoff_mode
)
else:
raise ValueError(refine_net_type)
return refine_net
def get_beta_schedule(beta_schedule, *, beta_start, beta_end, num_diffusion_timesteps):
def sigmoid(x):
return 1 / (np.exp(-x) + 1)
if beta_schedule == "quad":
betas = (
np.linspace(
beta_start ** 0.5,
beta_end ** 0.5,
num_diffusion_timesteps,
dtype=np.float64,
)
** 2
)
elif beta_schedule == "linear":
betas = np.linspace(
beta_start, beta_end, num_diffusion_timesteps, dtype=np.float64
)
elif beta_schedule == "const":
betas = beta_end * np.ones(num_diffusion_timesteps, dtype=np.float64)
elif beta_schedule == "jsd": # 1/T, 1/(T-1), 1/(T-2), ..., 1
betas = 1.0 / np.linspace(
num_diffusion_timesteps, 1, num_diffusion_timesteps, dtype=np.float64
)
elif beta_schedule == "sigmoid":
betas = np.linspace(-6, 6, num_diffusion_timesteps)
betas = sigmoid(betas) * (beta_end - beta_start) + beta_start
else:
raise NotImplementedError(beta_schedule)
assert betas.shape == (num_diffusion_timesteps,)
return betas
def cosine_beta_schedule(timesteps, s=0.008):
"""
cosine schedule
as proposed in https://openreview.net/forum?id=-NEXDKk8gZ
"""
steps = timesteps + 1
x = np.linspace(0, steps, steps)
alphas_cumprod = np.cos(((x / steps) + s) / (1 + s) * np.pi * 0.5) ** 2
alphas_cumprod = alphas_cumprod / alphas_cumprod[0]
alphas = (alphas_cumprod[1:] / alphas_cumprod[:-1])
alphas = np.clip(alphas, a_min=0.001, a_max=1.)
# Use sqrt of this, so the alpha in our paper is the alpha_sqrt from the
# Gaussian diffusion in Ho et al.
alphas = np.sqrt(alphas)
return alphas
def get_distance(pos, edge_index):
return (pos[edge_index[0]] - pos[edge_index[1]]).norm(dim=-1)
def to_torch_const(x):
x = torch.from_numpy(x).float()
x = nn.Parameter(x, requires_grad=False)
return x
def center_pos(protein_pos, ligand_pos, batch_protein, batch_ligand, mode='protein'):
if mode == 'none':
offset = 0.
pass
elif mode == 'protein':
offset = scatter_mean(protein_pos, batch_protein, dim=0)
protein_pos = protein_pos - offset[batch_protein]
ligand_pos = ligand_pos - offset[batch_ligand]
else:
raise NotImplementedError
return protein_pos, ligand_pos, offset
# %% categorical diffusion related
def index_to_log_onehot(x, num_classes):
assert x.max().item() < num_classes, f'Error: {x.max().item()} >= {num_classes}'
x_onehot = F.one_hot(x, num_classes)
# permute_order = (0, -1) + tuple(range(1, len(x.size())))
# x_onehot = x_onehot.permute(permute_order)
log_x = torch.log(x_onehot.float().clamp(min=1e-30))
return log_x
def log_onehot_to_index(log_x):
return log_x.argmax(1)
def categorical_kl(log_prob1, log_prob2):
kl = (log_prob1.exp() * (log_prob1 - log_prob2)).sum(dim=1)
return kl
def log_categorical(log_x_start, log_prob):
return (log_x_start.exp() * log_prob).sum(dim=1)
def normal_kl(mean1, logvar1, mean2, logvar2):
"""
KL divergence between normal distributions parameterized by mean and log-variance.
"""
kl = 0.5 * (-1.0 + logvar2 - logvar1 + torch.exp(logvar1 - logvar2) + (mean1 - mean2) ** 2 * torch.exp(-logvar2))
return kl.sum(-1)
def log_normal(values, means, log_scales):
var = torch.exp(log_scales * 2)
log_prob = -((values - means) ** 2) / (2 * var) - log_scales - np.log(np.sqrt(2 * np.pi))
return log_prob.sum(-1)
def log_sample_categorical(logits):
uniform = torch.rand_like(logits)
gumbel_noise = -torch.log(-torch.log(uniform + 1e-30) + 1e-30)
sample_index = (gumbel_noise + logits).argmax(dim=-1)
# sample_onehot = F.one_hot(sample, self.num_classes)
# log_sample = index_to_log_onehot(sample, self.num_classes)
return sample_index
def log_1_min_a(a):
return np.log(1 - np.exp(a) + 1e-40)
def log_add_exp(a, b):
maximum = torch.max(a, b)
return maximum + torch.log(torch.exp(a - maximum) + torch.exp(b - maximum))
# %%
# Time embedding
class SinusoidalPosEmb(nn.Module):
def __init__(self, dim):
super().__init__()
self.dim = dim
def forward(self, x):
device = x.device
half_dim = self.dim // 2
emb = np.log(10000) / (half_dim - 1)
emb = torch.exp(torch.arange(half_dim, device=device) * -emb)
emb = x[:, None] * emb[None, :]
emb = torch.cat((emb.sin(), emb.cos()), dim=-1)
return emb
# Model
class ScorePosNet3D(nn.Module):
def __init__(self, config, protein_atom_feature_dim, ligand_atom_feature_dim):
super().__init__()
self.config = config
# variance schedule
self.model_mean_type = config.model_mean_type # ['noise', 'C0']
self.loss_v_weight = config.loss_v_weight
# self.v_mode = config.v_mode
# assert self.v_mode == 'categorical'
# self.v_net_type = getattr(config, 'v_net_type', 'mlp')
# self.bond_loss = getattr(config, 'bond_loss', False)
# self.bond_net_type = getattr(config, 'bond_net_type', 'pre_att')
# self.loss_bond_weight = getattr(config, 'loss_bond_weight', 0.)
# self.loss_non_bond_weight = getattr(config, 'loss_non_bond_weight', 0.)
self.sample_time_method = config.sample_time_method # ['importance', 'symmetric']
# self.loss_pos_type = config.loss_pos_type # ['mse', 'kl']
# print(f'Loss pos mode {self.loss_pos_type} applied!')
# print(f'Loss bond net type: {self.bond_net_type} '
# f'bond weight: {self.loss_bond_weight} non bond weight: {self.loss_non_bond_weight}')
if config.beta_schedule == 'cosine':
alphas = cosine_beta_schedule(config.num_diffusion_timesteps, config.pos_beta_s) ** 2
# print('cosine pos alpha schedule applied!')
betas = 1. - alphas
else:
betas = get_beta_schedule(
beta_schedule=config.beta_schedule,
beta_start=config.beta_start,
beta_end=config.beta_end,
num_diffusion_timesteps=config.num_diffusion_timesteps,
)
alphas = 1. - betas
alphas_cumprod = np.cumprod(alphas, axis=0)
alphas_cumprod_prev = np.append(1., alphas_cumprod[:-1])
self.betas = to_torch_const(betas)
self.num_timesteps = self.betas.size(0)
self.alphas_cumprod = to_torch_const(alphas_cumprod)
self.alphas_cumprod_prev = to_torch_const(alphas_cumprod_prev)
# calculations for diffusion q(x_t | x_{t-1}) and others
self.sqrt_alphas_cumprod = to_torch_const(np.sqrt(alphas_cumprod))
self.sqrt_one_minus_alphas_cumprod = to_torch_const(np.sqrt(1. - alphas_cumprod))
self.sqrt_recip_alphas_cumprod = to_torch_const(np.sqrt(1. / alphas_cumprod))
self.sqrt_recipm1_alphas_cumprod = to_torch_const(np.sqrt(1. / alphas_cumprod - 1))
# calculations for posterior q(x_{t-1} | x_t, x_0)
posterior_variance = betas * (1. - alphas_cumprod_prev) / (1. - alphas_cumprod)
self.posterior_mean_c0_coef = to_torch_const(betas * np.sqrt(alphas_cumprod_prev) / (1. - alphas_cumprod))
self.posterior_mean_ct_coef = to_torch_const(
(1. - alphas_cumprod_prev) * np.sqrt(alphas) / (1. - alphas_cumprod))
# log calculation clipped because the posterior variance is 0 at the beginning of the diffusion chain
self.posterior_var = to_torch_const(posterior_variance)
self.posterior_logvar = to_torch_const(np.log(np.append(self.posterior_var[1], self.posterior_var[1:])))
# atom type diffusion schedule in log space
if config.v_beta_schedule == 'cosine':
alphas_v = cosine_beta_schedule(self.num_timesteps, config.v_beta_s)
# print('cosine v alpha schedule applied!')
else:
raise NotImplementedError
log_alphas_v = np.log(alphas_v)
log_alphas_cumprod_v = np.cumsum(log_alphas_v)
self.log_alphas_v = to_torch_const(log_alphas_v)
self.log_one_minus_alphas_v = to_torch_const(log_1_min_a(log_alphas_v))
self.log_alphas_cumprod_v = to_torch_const(log_alphas_cumprod_v)
self.log_one_minus_alphas_cumprod_v = to_torch_const(log_1_min_a(log_alphas_cumprod_v))
self.register_buffer('Lt_history', torch.zeros(self.num_timesteps))
self.register_buffer('Lt_count', torch.zeros(self.num_timesteps))
# model definition
self.hidden_dim = config.hidden_dim
self.num_classes = ligand_atom_feature_dim
if self.config.node_indicator:
emb_dim = self.hidden_dim - 1
else:
emb_dim = self.hidden_dim
# atom embedding
self.protein_atom_emb = nn.Linear(protein_atom_feature_dim, emb_dim)
# center pos
self.center_pos_mode = config.center_pos_mode # ['none', 'protein']
# time embedding
self.time_emb_dim = config.time_emb_dim
self.time_emb_mode = config.time_emb_mode # ['simple', 'sin']
if self.time_emb_dim > 0:
if self.time_emb_mode == 'simple':
self.ligand_atom_emb = nn.Linear(ligand_atom_feature_dim + 1, emb_dim)
elif self.time_emb_mode == 'sin':
self.time_emb = nn.Sequential(
SinusoidalPosEmb(self.time_emb_dim),
nn.Linear(self.time_emb_dim, self.time_emb_dim * 4),
nn.GELU(),
nn.Linear(self.time_emb_dim * 4, self.time_emb_dim)
)
self.ligand_atom_emb = nn.Linear(ligand_atom_feature_dim + self.time_emb_dim, emb_dim)
else:
raise NotImplementedError
else:
self.ligand_atom_emb = nn.Linear(ligand_atom_feature_dim, emb_dim)
self.refine_net_type = config.model_type
self.refine_net = get_refine_net(self.refine_net_type, config)
self.v_inference = nn.Sequential(
nn.Linear(self.hidden_dim, self.hidden_dim),
ShiftedSoftplus(),
nn.Linear(self.hidden_dim, ligand_atom_feature_dim),
)
def forward(self, protein_pos, protein_v, batch_protein, init_ligand_pos, init_ligand_v, batch_ligand,
time_step=None, return_all=False, fix_x=False):
batch_size = batch_protein.max().item() + 1
init_ligand_v = F.one_hot(init_ligand_v, self.num_classes).float()
# time embedding
if self.time_emb_dim > 0:
if self.time_emb_mode == 'simple':
input_ligand_feat = torch.cat([
init_ligand_v,
(time_step / self.num_timesteps)[batch_ligand].unsqueeze(-1)
], -1)
elif self.time_emb_mode == 'sin':
time_feat = self.time_emb(time_step)
input_ligand_feat = torch.cat([init_ligand_v, time_feat], -1)
else:
raise NotImplementedError
else:
input_ligand_feat = init_ligand_v
h_protein = self.protein_atom_emb(protein_v)
init_ligand_h = self.ligand_atom_emb(input_ligand_feat)
if self.config.node_indicator:
h_protein = torch.cat([h_protein, torch.zeros(len(h_protein), 1).to(h_protein)], -1)
init_ligand_h = torch.cat([init_ligand_h, torch.ones(len(init_ligand_h), 1).to(h_protein)], -1)
h_all, pos_all, batch_all, mask_ligand = compose_context(
h_protein=h_protein,
h_ligand=init_ligand_h,
pos_protein=protein_pos,
pos_ligand=init_ligand_pos,
batch_protein=batch_protein,
batch_ligand=batch_ligand,
)
outputs = self.refine_net(h_all, pos_all, mask_ligand, batch_all, return_all=return_all, fix_x=fix_x)
final_pos, final_h = outputs['x'], outputs['h']
final_ligand_pos, final_ligand_h = final_pos[mask_ligand], final_h[mask_ligand]
final_ligand_v = self.v_inference(final_ligand_h)
preds = {
'pred_ligand_pos': final_ligand_pos,
'pred_ligand_v': final_ligand_v,
'final_h': final_h,
'final_ligand_h': final_ligand_h
}
if return_all:
final_all_pos, final_all_h = outputs['all_x'], outputs['all_h']
final_all_ligand_pos = [pos[mask_ligand] for pos in final_all_pos]
final_all_ligand_v = [self.v_inference(h[mask_ligand]) for h in final_all_h]
preds.update({
'layer_pred_ligand_pos': final_all_ligand_pos,
'layer_pred_ligand_v': final_all_ligand_v
})
return preds
# atom type diffusion process
def q_v_pred_one_timestep(self, log_vt_1, t, batch):
# q(vt | vt-1)
log_alpha_t = extract(self.log_alphas_v, t, batch)
log_1_min_alpha_t = extract(self.log_one_minus_alphas_v, t, batch)
# alpha_t * vt + (1 - alpha_t) 1 / K
log_probs = log_add_exp(
log_vt_1 + log_alpha_t,
log_1_min_alpha_t - np.log(self.num_classes)
)
return log_probs
def q_v_pred(self, log_v0, t, batch):
# compute q(vt | v0)
log_cumprod_alpha_t = extract(self.log_alphas_cumprod_v, t, batch)
log_1_min_cumprod_alpha = extract(self.log_one_minus_alphas_cumprod_v, t, batch)
log_probs = log_add_exp(
log_v0 + log_cumprod_alpha_t,
log_1_min_cumprod_alpha - np.log(self.num_classes)
)
return log_probs
def q_v_sample(self, log_v0, t, batch):
log_qvt_v0 = self.q_v_pred(log_v0, t, batch)
sample_index = log_sample_categorical(log_qvt_v0)
log_sample = index_to_log_onehot(sample_index, self.num_classes)
return sample_index, log_sample
# atom type generative process
def q_v_posterior(self, log_v0, log_vt, t, batch):
# q(vt-1 | vt, v0) = q(vt | vt-1, x0) * q(vt-1 | x0) / q(vt | x0)
t_minus_1 = t - 1
# Remove negative values, will not be used anyway for final decoder
t_minus_1 = torch.where(t_minus_1 < 0, torch.zeros_like(t_minus_1), t_minus_1)
log_qvt1_v0 = self.q_v_pred(log_v0, t_minus_1, batch)
unnormed_logprobs = log_qvt1_v0 + self.q_v_pred_one_timestep(log_vt, t, batch)
log_vt1_given_vt_v0 = unnormed_logprobs - torch.logsumexp(unnormed_logprobs, dim=-1, keepdim=True)
return log_vt1_given_vt_v0
def kl_v_prior(self, log_x_start, batch):
num_graphs = batch.max().item() + 1
log_qxT_prob = self.q_v_pred(log_x_start, t=[self.num_timesteps - 1] * num_graphs, batch=batch)
log_half_prob = -torch.log(self.num_classes * torch.ones_like(log_qxT_prob))
kl_prior = categorical_kl(log_qxT_prob, log_half_prob)
kl_prior = scatter_mean(kl_prior, batch, dim=0)
return kl_prior
def _predict_x0_from_eps(self, xt, eps, t, batch):
pos0_from_e = extract(self.sqrt_recip_alphas_cumprod, t, batch) * xt - \
extract(self.sqrt_recipm1_alphas_cumprod, t, batch) * eps
return pos0_from_e
def q_pos_posterior(self, x0, xt, t, batch):
# Compute the mean and variance of the diffusion posterior q(x_{t-1} | x_t, x_0)
pos_model_mean = extract(self.posterior_mean_c0_coef, t, batch) * x0 + \
extract(self.posterior_mean_ct_coef, t, batch) * xt
return pos_model_mean
def kl_pos_prior(self, pos0, batch):
num_graphs = batch.max().item() + 1
a_pos = extract(self.alphas_cumprod, [self.num_timesteps - 1] * num_graphs, batch) # (num_ligand_atoms, 1)
pos_model_mean = a_pos.sqrt() * pos0
pos_log_variance = torch.log((1.0 - a_pos).sqrt())
kl_prior = normal_kl(torch.zeros_like(pos_model_mean), torch.zeros_like(pos_log_variance),
pos_model_mean, pos_log_variance)
kl_prior = scatter_mean(kl_prior, batch, dim=0)
return kl_prior
def sample_time(self, num_graphs, device, method):
if method == 'importance':
if not (self.Lt_count > 10).all():
return self.sample_time(num_graphs, device, method='symmetric')
Lt_sqrt = torch.sqrt(self.Lt_history + 1e-10) + 0.0001
Lt_sqrt[0] = Lt_sqrt[1] # Overwrite decoder term with L1.
pt_all = Lt_sqrt / Lt_sqrt.sum()
time_step = torch.multinomial(pt_all, num_samples=num_graphs, replacement=True)
pt = pt_all.gather(dim=0, index=time_step)
return time_step, pt
elif method == 'symmetric':
time_step = torch.randint(
0, self.num_timesteps, size=(num_graphs // 2 + 1,), device=device)
time_step = torch.cat(
[time_step, self.num_timesteps - time_step - 1], dim=0)[:num_graphs]
pt = torch.ones_like(time_step).float() / self.num_timesteps
return time_step, pt
else:
raise ValueError
def compute_pos_Lt(self, pos_model_mean, x0, xt, t, batch):
# fixed pos variance
pos_log_variance = extract(self.posterior_logvar, t, batch)
pos_true_mean = self.q_pos_posterior(x0=x0, xt=xt, t=t, batch=batch)
kl_pos = normal_kl(pos_true_mean, pos_log_variance, pos_model_mean, pos_log_variance)
kl_pos = kl_pos / np.log(2.)
decoder_nll_pos = -log_normal(x0, means=pos_model_mean, log_scales=0.5 * pos_log_variance)
assert kl_pos.shape == decoder_nll_pos.shape
mask = (t == 0).float()[batch]
loss_pos = scatter_mean(mask * decoder_nll_pos + (1. - mask) * kl_pos, batch, dim=0)
return loss_pos
def compute_v_Lt(self, log_v_model_prob, log_v0, log_v_true_prob, t, batch):
kl_v = categorical_kl(log_v_true_prob, log_v_model_prob) # [num_atoms, ]
decoder_nll_v = -log_categorical(log_v0, log_v_model_prob) # L0
assert kl_v.shape == decoder_nll_v.shape
mask = (t == 0).float()[batch]
loss_v = scatter_mean(mask * decoder_nll_v + (1. - mask) * kl_v, batch, dim=0)
return loss_v
def get_diffusion_loss(
self, protein_pos, protein_v, batch_protein, ligand_pos, ligand_v, batch_ligand, time_step=None
):
num_graphs = batch_protein.max().item() + 1
protein_pos, ligand_pos, _ = center_pos(
protein_pos, ligand_pos, batch_protein, batch_ligand, mode=self.center_pos_mode)
# 1. sample noise levels
if time_step is None:
time_step, pt = self.sample_time(num_graphs, protein_pos.device, self.sample_time_method)
else:
pt = torch.ones_like(time_step).float() / self.num_timesteps
a = self.alphas_cumprod.index_select(0, time_step) # (num_graphs, )
# 2. perturb pos and v
a_pos = a[batch_ligand].unsqueeze(-1) # (num_ligand_atoms, 1)
pos_noise = torch.zeros_like(ligand_pos)
pos_noise.normal_()
# Xt = a.sqrt() * X0 + (1-a).sqrt() * eps
ligand_pos_perturbed = a_pos.sqrt() * ligand_pos + (1.0 - a_pos).sqrt() * pos_noise # pos_noise * std
# Vt = a * V0 + (1-a) / K
log_ligand_v0 = index_to_log_onehot(ligand_v, self.num_classes)
ligand_v_perturbed, log_ligand_vt = self.q_v_sample(log_ligand_v0, time_step, batch_ligand)
# 3. forward-pass NN, feed perturbed pos and v, output noise
preds = self(
protein_pos=protein_pos,
protein_v=protein_v,
batch_protein=batch_protein,
init_ligand_pos=ligand_pos_perturbed,
init_ligand_v=ligand_v_perturbed,
batch_ligand=batch_ligand,
time_step=time_step
)
pred_ligand_pos, pred_ligand_v = preds['pred_ligand_pos'], preds['pred_ligand_v']
pred_pos_noise = pred_ligand_pos - ligand_pos_perturbed
# atom position
if self.model_mean_type == 'noise':
pos0_from_e = self._predict_x0_from_eps(
xt=ligand_pos_perturbed, eps=pred_pos_noise, t=time_step, batch=batch_ligand)
pos_model_mean = self.q_pos_posterior(
x0=pos0_from_e, xt=ligand_pos_perturbed, t=time_step, batch=batch_ligand)
elif self.model_mean_type == 'C0':
pos_model_mean = self.q_pos_posterior(
x0=pred_ligand_pos, xt=ligand_pos_perturbed, t=time_step, batch=batch_ligand)
else:
raise ValueError
# atom pos loss
if self.model_mean_type == 'C0':
target, pred = ligand_pos, pred_ligand_pos
elif self.model_mean_type == 'noise':
target, pred = pos_noise, pred_pos_noise
else:
raise ValueError
loss_pos = scatter_mean(((pred - target) ** 2).sum(-1), batch_ligand, dim=0)
loss_pos = torch.mean(loss_pos)
# atom type loss
log_ligand_v_recon = F.log_softmax(pred_ligand_v, dim=-1)
log_v_model_prob = self.q_v_posterior(log_ligand_v_recon, log_ligand_vt, time_step, batch_ligand)
log_v_true_prob = self.q_v_posterior(log_ligand_v0, log_ligand_vt, time_step, batch_ligand)
kl_v = self.compute_v_Lt(log_v_model_prob=log_v_model_prob, log_v0=log_ligand_v0,
log_v_true_prob=log_v_true_prob, t=time_step, batch=batch_ligand)
loss_v = torch.mean(kl_v)
loss = loss_pos + loss_v * self.loss_v_weight
return {
'loss_pos': loss_pos,
'loss_v': loss_v,
'loss': loss,
'x0': ligand_pos,
'pred_ligand_pos': pred_ligand_pos,
'pred_ligand_v': pred_ligand_v,
'pred_pos_noise': pred_pos_noise,
'ligand_v_recon': F.softmax(pred_ligand_v, dim=-1)
}
@torch.no_grad()
def likelihood_estimation(
self, protein_pos, protein_v, batch_protein, ligand_pos, ligand_v, batch_ligand, time_step
):
protein_pos, ligand_pos, _ = center_pos(
protein_pos, ligand_pos, batch_protein, batch_ligand, mode='protein')
assert (time_step == self.num_timesteps).all() or (time_step < self.num_timesteps).all()
if (time_step == self.num_timesteps).all():
kl_pos_prior = self.kl_pos_prior(ligand_pos, batch_ligand)
log_ligand_v0 = index_to_log_onehot(batch_ligand, self.num_classes)
kl_v_prior = self.kl_v_prior(log_ligand_v0, batch_ligand)
return kl_pos_prior, kl_v_prior
# perturb pos and v
a = self.alphas_cumprod.index_select(0, time_step) # (num_graphs, )
a_pos = a[batch_ligand].unsqueeze(-1) # (num_ligand_atoms, 1)
pos_noise = torch.zeros_like(ligand_pos)
pos_noise.normal_()
# Xt = a.sqrt() * X0 + (1-a).sqrt() * eps
ligand_pos_perturbed = a_pos.sqrt() * ligand_pos + (1.0 - a_pos).sqrt() * pos_noise # pos_noise * std
# Vt = a * V0 + (1-a) / K
log_ligand_v0 = index_to_log_onehot(ligand_v, self.num_classes)
ligand_v_perturbed, log_ligand_vt = self.q_v_sample(log_ligand_v0, time_step, batch_ligand)
preds = self(
protein_pos=protein_pos,
protein_v=protein_v,
batch_protein=batch_protein,
init_ligand_pos=ligand_pos_perturbed,
init_ligand_v=ligand_v_perturbed,
batch_ligand=batch_ligand,
time_step=time_step
)
pred_ligand_pos, pred_ligand_v = preds['pred_ligand_pos'], preds['pred_ligand_v']
if self.model_mean_type == 'C0':
pos_model_mean = self.q_pos_posterior(
x0=pred_ligand_pos, xt=ligand_pos_perturbed, t=time_step, batch=batch_ligand)
else:
raise ValueError
# atom type
log_ligand_v_recon = F.log_softmax(pred_ligand_v, dim=-1)
log_v_model_prob = self.q_v_posterior(log_ligand_v_recon, log_ligand_vt, time_step, batch_ligand)
log_v_true_prob = self.q_v_posterior(log_ligand_v0, log_ligand_vt, time_step, batch_ligand)
# t = [T-1, ... , 0]
kl_pos = self.compute_pos_Lt(pos_model_mean=pos_model_mean, x0=ligand_pos,
xt=ligand_pos_perturbed, t=time_step, batch=batch_ligand)
kl_v = self.compute_v_Lt(log_v_model_prob=log_v_model_prob, log_v0=log_ligand_v0,
log_v_true_prob=log_v_true_prob, t=time_step, batch=batch_ligand)
return kl_pos, kl_v
@torch.no_grad()
def fetch_embedding(self, protein_pos, protein_v, batch_protein, ligand_pos, ligand_v, batch_ligand):
preds = self(
protein_pos=protein_pos,
protein_v=protein_v,
batch_protein=batch_protein,
init_ligand_pos=ligand_pos,
init_ligand_v=ligand_v,
batch_ligand=batch_ligand,
fix_x=True
)
return preds
@torch.no_grad()
def sample_diffusion(self, protein_pos, protein_v, batch_protein,
init_ligand_pos, init_ligand_v, batch_ligand,
num_steps=None, center_pos_mode=None, pos_only=False):
if num_steps is None:
num_steps = self.num_timesteps
num_graphs = batch_protein.max().item() + 1
protein_pos, init_ligand_pos, offset = center_pos(
protein_pos, init_ligand_pos, batch_protein, batch_ligand, mode=center_pos_mode)
pos_traj, v_traj = [], []
v0_pred_traj, vt_pred_traj = [], []
ligand_pos, ligand_v = init_ligand_pos, init_ligand_v
# time sequence
time_seq = list(reversed(range(self.num_timesteps - num_steps, self.num_timesteps)))
for i in tqdm(time_seq, desc='sampling', total=len(time_seq)):
t = torch.full(size=(num_graphs,), fill_value=i, dtype=torch.long, device=protein_pos.device)
preds = self(
protein_pos=protein_pos,
protein_v=protein_v,
batch_protein=batch_protein,
init_ligand_pos=ligand_pos,
init_ligand_v=ligand_v,
batch_ligand=batch_ligand,
time_step=t
)
# Compute posterior mean and variance
if self.model_mean_type == 'noise':
pred_pos_noise = preds['pred_ligand_pos'] - ligand_pos
pos0_from_e = self._predict_x0_from_eps(xt=ligand_pos, eps=pred_pos_noise, t=t, batch=batch_ligand)
v0_from_e = preds['pred_ligand_v']
elif self.model_mean_type == 'C0':
pos0_from_e = preds['pred_ligand_pos']
v0_from_e = preds['pred_ligand_v']
else:
raise ValueError
pos_model_mean = self.q_pos_posterior(x0=pos0_from_e, xt=ligand_pos, t=t, batch=batch_ligand)
pos_log_variance = extract(self.posterior_logvar, t, batch_ligand)
# no noise when t == 0
nonzero_mask = (1 - (t == 0).float())[batch_ligand].unsqueeze(-1)
ligand_pos_next = pos_model_mean + nonzero_mask * (0.5 * pos_log_variance).exp() * torch.randn_like(
ligand_pos)
ligand_pos = ligand_pos_next
if not pos_only:
log_ligand_v_recon = F.log_softmax(v0_from_e, dim=-1)
log_ligand_v = index_to_log_onehot(ligand_v, self.num_classes)
log_model_prob = self.q_v_posterior(log_ligand_v_recon, log_ligand_v, t, batch_ligand)
ligand_v_next = log_sample_categorical(log_model_prob)
v0_pred_traj.append(log_ligand_v_recon.clone().cpu())
vt_pred_traj.append(log_model_prob.clone().cpu())
ligand_v = ligand_v_next
ori_ligand_pos = ligand_pos + offset[batch_ligand]
pos_traj.append(ori_ligand_pos.clone().cpu())
v_traj.append(ligand_v.clone().cpu())
ligand_pos = ligand_pos + offset[batch_ligand]
return {
'pos': ligand_pos,
'v': ligand_v,
'pos_traj': pos_traj,
'v_traj': v_traj,
'v0_traj': v0_pred_traj,
'vt_traj': vt_pred_traj
}
def extract(coef, t, batch):
out = coef[t][batch]
return out.unsqueeze(-1)
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