CFD_Benchmark / model /Transolver.py
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import torch
import torch.nn as nn
import numpy as np
from timm.layers import trunc_normal_
from onescience.modules.mlp.MLP import StandardMLP
from onescience.modules.transformer.Transolver_block import Transolver_block
from onescience.modules.embedding import timestep_embedding, unified_pos_embedding
class Model(nn.Module):
"""
Transolver 模型。
通过物理启发的切片机制 (Slicing) 解决 PDE 和物理场预测问题。
"""
def __init__(self, args, device):
super(Model, self).__init__()
self.__name__ = "Transolver"
self.args = args
## embedding
if (
args.unified_pos and args.geotype != "unstructured"
):
self.pos = unified_pos_embedding(args.shapelist, args.ref, device=device)
self.preprocess = StandardMLP(
input_dim=args.fun_dim + args.ref ** len(args.shapelist),
output_dim=args.n_hidden,
hidden_dims=[args.n_hidden * 2],
activation=args.act,
use_bias=True
)
else:
self.preprocess = StandardMLP(
input_dim=args.fun_dim + args.space_dim,
output_dim=args.n_hidden,
hidden_dims=[args.n_hidden * 2],
activation=args.act,
use_bias=True
)
if args.time_input:
self.time_fc = nn.Sequential(
nn.Linear(args.n_hidden, args.n_hidden),
nn.SiLU(),
nn.Linear(args.n_hidden, args.n_hidden),
)
## models
self.blocks = nn.ModuleList(
[
Transolver_block(
num_heads=args.n_heads,
hidden_dim=args.n_hidden,
dropout=args.dropout,
act=args.act,
mlp_ratio=args.mlp_ratio,
out_dim=args.out_dim,
slice_num=args.slice_num,
last_layer=(_ == args.n_layers - 1),
geotype=args.geotype,
shapelist=args.shapelist,
)
for _ in range(args.n_layers)
]
)
self.placeholder = nn.Parameter(
(1 / (args.n_hidden)) * torch.rand(args.n_hidden, dtype=torch.float)
)
self.initialize_weights()
def initialize_weights(self):
self.apply(self._init_weights)
def _init_weights(self, m):
if isinstance(m, nn.Linear):
trunc_normal_(m.weight, std=0.02)
if isinstance(m, nn.Linear) and m.bias is not None:
nn.init.constant_(m.bias, 0)
elif isinstance(m, (nn.LayerNorm, nn.BatchNorm1d)):
nn.init.constant_(m.bias, 0)
nn.init.constant_(m.weight, 1.0)
def structured_geo(self, x, fx, T=None):
if self.args.unified_pos:
x = self.pos.repeat(x.shape[0], 1, 1)
if fx is not None:
fx = torch.cat((x, fx), -1)
fx = self.preprocess(fx)
else:
fx = self.preprocess(x)
fx = fx + self.placeholder[None, None, :]
if T is not None:
Time_emb = timestep_embedding(T, self.args.n_hidden)
Time_emb = self.time_fc(Time_emb)
if Time_emb.ndim == 2:
Time_emb = Time_emb.unsqueeze(1)
fx = fx + Time_emb
for block in self.blocks:
fx = block(fx)
return fx
def unstructured_geo(self, x, fx, T=None):
if fx is not None:
fx = torch.cat((x, fx), -1)
fx = self.preprocess(fx)
else:
fx = self.preprocess(x)
fx = fx + self.placeholder[None, None, :]
if T is not None:
Time_emb = timestep_embedding(T, self.args.n_hidden)
Time_emb = self.time_fc(Time_emb)
if Time_emb.ndim == 2:
Time_emb = Time_emb.unsqueeze(1)
fx = fx + Time_emb
for block in self.blocks:
fx = block(fx)
return fx
def forward(self, x, fx, T=None, geo=None):
if self.args.geotype == "unstructured":
return self.unstructured_geo(x, fx, T)
else:
return self.structured_geo(x, fx, T)