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| import math |
|
|
| import torch |
| import torch.nn as nn |
| import torch.nn.functional as F |
|
|
|
|
| def _latlon_grid(shape): |
| """Regular lat/lon coordinates for a (H, W) grid, North-to-South rows.""" |
| H, W = shape |
| lat = torch.linspace(90.0, -90.0, H) |
| lon = torch.linspace(0.0, 360.0 - 360.0 / W, W) |
| return lat, lon |
|
|
|
|
| def _haversine(lat1, lon1, lat2, lon2): |
| """Haversine distance in metres between points given in degrees.""" |
| R = 6371000.0 |
| p1 = torch.deg2rad(lat1) |
| p2 = torch.deg2rad(lat2) |
| dp = torch.deg2rad(lat2 - lat1) |
| dl = torch.deg2rad(lon2 - lon1) |
| a = torch.sin(dp / 2) ** 2 + torch.cos(p1) * torch.cos(p2) * torch.sin(dl / 2) ** 2 |
| return 2 * R * torch.asin(torch.sqrt(a.clamp(0, 1))) |
|
|
|
|
| def _bearing(lat1, lon1, lat2, lon2): |
| """Initial forward bearing in radians from point 1 to point 2.""" |
| p1 = torch.deg2rad(lat1) |
| p2 = torch.deg2rad(lat2) |
| dl = torch.deg2rad(lon2 - lon1) |
| y = torch.sin(dl) * torch.cos(p2) |
| x = torch.cos(p1) * torch.sin(p2) - torch.sin(p1) * torch.cos(p2) * torch.cos(dl) |
| return torch.atan2(y, x) |
|
|
|
|
| def build_mesh_graph(mesh_shape): |
| """ |
| Build a fixed 8-neighbourhood graph over a regular latent mesh. |
| Longitude wraps around; edge features are (forward bearing [rad], |
| haversine distance [km]). |
| """ |
| H, W = mesh_shape |
| lat, lon = _latlon_grid(mesh_shape) |
| lat = lat.view(-1, 1).expand(H, W) |
| lon = lon.view(1, -1).expand(H, W) |
|
|
| src_list, dst_list, feat_list = [], [], [] |
| for i in range(H): |
| for j in range(W): |
| for di, dj in ((-1, -1), (-1, 0), (-1, 1), (0, -1), (0, 1), (1, -1), (1, 0), (1, 1)): |
| ni, nj = i + di, (j + dj) % W |
| if not (0 <= ni < H): |
| continue |
| s = i * W + j |
| d = ni * W + nj |
| dist_km = _haversine(lat[i, j], lon[i, j], lat[ni, nj], lon[ni, nj]) / 1000.0 |
| bear = _bearing(lat[i, j], lon[i, j], lat[ni, nj], lon[ni, nj]) |
| src_list.append(s) |
| dst_list.append(d) |
| feat_list.append(torch.stack([bear / math.pi, dist_km / 1000.0])) |
| edge_index = torch.stack([torch.as_tensor(src_list), torch.as_tensor(dst_list)], dim=0) |
| edge_attr = torch.stack(feat_list) |
| return edge_index, edge_attr |
|
|
|
|
| def _mlp(in_dim, out_dim, hidden_dim, n_layers=2): |
| dims = [in_dim] + [hidden_dim] * (n_layers - 1) + [out_dim] |
| layers = [] |
| for i in range(len(dims) - 1): |
| layers.append(nn.Linear(dims[i], dims[i + 1])) |
| if i < len(dims) - 2: |
| layers.append(nn.GELU()) |
| return nn.Sequential(*layers) |
|
|
|
|
| class GNNLayer(nn.Module): |
| """Message-passing layer with edge features (mean-aggregate, residual).""" |
|
|
| def __init__(self, dim, edge_dim=2, hidden_dim=64): |
| super().__init__() |
| self.edge_mlp = _mlp(2 * dim + edge_dim, dim, hidden_dim) |
| self.node_mlp = _mlp(dim, dim, hidden_dim) |
| self.norm = nn.LayerNorm(dim) |
|
|
| def forward(self, x, edge_index, edge_attr): |
| B, N, D = x.shape |
| src, dst = edge_index |
| offsets = torch.arange(B, device=x.device) * N |
| src_b = (src.unsqueeze(0) + offsets.view(B, 1)).reshape(-1) |
| dst_b = (dst.unsqueeze(0) + offsets.view(B, 1)).reshape(-1) |
| edge_attr_b = edge_attr.unsqueeze(0).expand(B, -1, -1).reshape(-1, edge_attr.size(1)) |
| xb = x.reshape(B * N, D) |
| msg = self.edge_mlp(torch.cat([xb[src_b], xb[dst_b], edge_attr_b], dim=1)) |
| agg = torch.zeros_like(xb) |
| agg.index_add_(0, dst_b, msg) |
| cnt = torch.bincount(dst_b, minlength=B * N).clamp(min=1).unsqueeze(1) |
| agg = agg / cnt |
| agg = agg.reshape(B, N, D) |
| return self.norm(x + self.node_mlp(agg)) |
|
|
|
|
| class ObsEncoder(nn.Module): |
| """ |
| Maps the observation grid onto the latent mesh with a per-cell input MLP, |
| an adaptive pooling to the mesh resolution, and graph message passing. |
| """ |
|
|
| def __init__(self, in_channels, latent_dim, mesh_shape, num_layers=2, hidden_dim=64): |
| super().__init__() |
| self.in_channels = in_channels |
| self.input_mlp = _mlp(in_channels, latent_dim, hidden_dim) |
| self.gnn = nn.ModuleList([GNNLayer(latent_dim, hidden_dim=hidden_dim) for _ in range(num_layers)]) |
| self.mesh_shape = mesh_shape |
| self.edge_index, self.edge_attr = build_mesh_graph(mesh_shape) |
|
|
| def forward(self, x): |
| B, C, H, W = x.shape |
| feat = x.permute(0, 2, 3, 1).reshape(-1, C) |
| feat = self.input_mlp(feat).reshape(B, H, W, -1).permute(0, 3, 1, 2) |
| mesh = F.adaptive_avg_pool2d(feat, self.mesh_shape) |
| mesh = mesh.permute(0, 2, 3, 1).reshape(B, -1, mesh.size(1)) |
| edge_index, edge_attr = self.edge_index.to(x.device), self.edge_attr.to(x.device) |
| for layer in self.gnn: |
| mesh = layer(mesh, edge_index, edge_attr) |
| return mesh |
|
|
|
|
| class LatentProcessor(nn.Module): |
| """Transformer over latent mesh tokens that advances the state in time.""" |
|
|
| def __init__(self, latent_dim, mesh_shape, num_blocks=1, n_heads=4, hidden_dim=128): |
| super().__init__() |
| n_nodes = mesh_shape[0] * mesh_shape[1] |
| self.pos_emb = nn.Parameter(torch.zeros(1, n_nodes, latent_dim)) |
| nn.init.trunc_normal_(self.pos_emb, std=0.02) |
| block = nn.TransformerEncoderLayer( |
| d_model=latent_dim, nhead=n_heads, dim_feedforward=hidden_dim, |
| dropout=0.0, activation="gelu", batch_first=True, norm_first=True, |
| ) |
| self.blocks = nn.ModuleList([block for _ in range(num_blocks)]) |
|
|
| def forward(self, mesh): |
| tokens = mesh + self.pos_emb |
| for block in self.blocks: |
| tokens = block(tokens) |
| return tokens |
|
|
|
|
| class ObsDecoder(nn.Module): |
| """ |
| Maps the latent mesh back onto the target grid (bilinear upsample) and |
| predicts per-channel observations with an output MLP. |
| """ |
|
|
| def __init__(self, latent_dim, out_channels, grid_shape, mesh_shape, num_layers=2, hidden_dim=64): |
| super().__init__() |
| self.gnn = nn.ModuleList([GNNLayer(latent_dim, hidden_dim=hidden_dim) for _ in range(num_layers)]) |
| self.grid_shape = grid_shape |
| self.mesh_shape = mesh_shape |
| self.edge_index, self.edge_attr = build_mesh_graph(mesh_shape) |
| self.output_mlp = _mlp(latent_dim, out_channels, hidden_dim) |
|
|
| def forward(self, mesh): |
| B, N, D = mesh.shape |
| edge_index = self.edge_index.to(mesh.device) |
| edge_attr = self.edge_attr.to(mesh.device) |
| for layer in self.gnn: |
| mesh = layer(mesh, edge_index, edge_attr) |
| H, W = self.grid_shape |
| Hm, Wm = self.mesh_shape |
| mesh = mesh.transpose(1, 2).reshape(B, D, Hm, Wm) |
| grid = F.interpolate(mesh, size=self.grid_shape, mode="bilinear", align_corners=False) |
| grid = grid.permute(0, 2, 3, 1).reshape(B, H * W, D) |
| return self.output_mlp(grid).reshape(B, H, W, -1).permute(0, 3, 1, 2) |
|
|
|
|
| class GraphDOP(nn.Module): |
| """ |
| Config-driven GraphDOP wrapper. |
| |
| Args: |
| in_channels: Number of observation channels per frame. |
| out_channels: Number of forecast channels per frame. |
| input_steps: Number of input (observation window) frames. |
| output_steps: Number of forecast frames. |
| grid_shape: Spatial shape of the (gridded) observation field. |
| mesh_shape: Latent mesh resolution (each dimension, powers of two fine). |
| latent_dim: Feature dimension of latent mesh tokens. |
| num_encoder_layers / num_decoder_layers: GNN message-passing layers. |
| num_processor_blocks: Transformer blocks in the processor. |
| n_heads: Attention heads of the processor. |
| channel_weights: Per-channel weights for the weighted MSE objective. |
| """ |
|
|
| def __init__( |
| self, |
| in_channels=6, |
| out_channels=6, |
| input_steps=2, |
| output_steps=2, |
| grid_shape=(32, 32), |
| mesh_shape=(8, 8), |
| latent_dim=64, |
| num_encoder_layers=2, |
| num_decoder_layers=2, |
| num_processor_blocks=1, |
| n_heads=4, |
| hidden_dim=64, |
| channel_weights=None, |
| ): |
| super().__init__() |
| self.in_channels = int(in_channels) |
| self.out_channels = int(out_channels) |
| self.input_steps = int(input_steps) |
| self.output_steps = int(output_steps) |
| self.grid_shape = (int(grid_shape[0]), int(grid_shape[1])) |
| self.mesh_shape = (int(mesh_shape[0]), int(mesh_shape[1])) |
|
|
| self.encoder = ObsEncoder( |
| self.in_channels, int(latent_dim), self.mesh_shape, num_layers=int(num_encoder_layers), hidden_dim=int(hidden_dim) |
| ) |
| self.processor = LatentProcessor( |
| int(latent_dim), self.mesh_shape, num_blocks=int(num_processor_blocks), n_heads=int(n_heads), hidden_dim=int(hidden_dim) |
| ) |
| self.decoder = ObsDecoder( |
| int(latent_dim), self.out_channels, self.grid_shape, self.mesh_shape, |
| num_layers=int(num_decoder_layers), hidden_dim=int(hidden_dim), |
| ) |
|
|
| if channel_weights is None: |
| channel_weights = torch.ones(self.out_channels) |
| self.register_buffer("channel_weights", torch.as_tensor(channel_weights, dtype=torch.float32)) |
|
|
| def forward(self, x): |
| """ |
| Args: |
| x: Observation frames, shape [batch, input_steps, C, H, W]. |
| Returns: |
| Forecast frames, shape [batch, output_steps, C, H, W]. |
| """ |
| latents = torch.stack([self.encoder(x[:, t]) for t in range(self.input_steps)], dim=0) |
| latent = latents.mean(dim=0) |
| outs = [] |
| for _ in range(self.output_steps): |
| latent = self.processor(latent) |
| outs.append(self.decoder(latent)) |
| return torch.stack(outs, dim=1) |
|
|
| def wmse_loss(self, pred, target): |
| """Weighted mean squared error objective (Eq. 1 of the paper).""" |
| diff = (pred - target) ** 2 |
| w = self.channel_weights.view(1, 1, self.out_channels, 1, 1) |
| return (diff * w).mean() |
|
|