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import os
import sys
from typing import Tuple
import torch
import tensorrt as trt
import tensorrt.plugin as trtp
_NAMESPACE = "companionforge"
_APP_ROOT = os.environ.get("ANIGEN_APP_ROOT", "/home/user/app")
if _APP_ROOT not in sys.path:
sys.path.insert(0, _APP_ROOT)
_CONV_CACHE = {}
_FLEXI_CACHE = {}
def _tt(x: trtp.Tensor) -> torch.Tensor:
return torch.as_tensor(x, device="cuda")
def _stream_ctx(stream: int):
return torch.cuda.stream(torch.cuda.ExternalStream(stream))
def _write_scalar(out: trtp.Tensor, value: int):
t = _tt(out)
t.fill_(int(value))
# -----------------------------------------------------------------------------
# SparseConv3D
# Explicit sparse representation: feats[N,C] + coords[N,4] (batch,x,y,z).
# Weight is stored in the native spconv layout, so exported checkpoints can be
# bound without transposition. The plugin intentionally delegates rulebook and
# GEMM selection to spconv.Native first; the ONNX ABI remains stable when this
# implementation is later replaced by an AOT CUDA kernel.
# -----------------------------------------------------------------------------
@trtp.register(f"{_NAMESPACE}::SparseConv3D")
def sparse_conv3d_desc(
feats: trtp.TensorDesc,
coords: trtp.TensorDesc,
weight: trtp.TensorDesc,
bias: trtp.TensorDesc,
out_channels: int,
kernel_size: int,
stride: int,
dilation: int,
padding: int,
subm: bool,
spatial_x: int,
spatial_y: int,
spatial_z: int,
batch_size: int,
) -> Tuple[trtp.TensorDesc, trtp.TensorDesc, trtp.TensorDesc]:
# Production AniGen uses SubMConv3d here: cardinality is exactly N.
# Keeping N as an ordinary dynamic dimension is essential because DDS
# SizeTensor propagation through GroupNorm/reshape breaks TRT shape inference.
n = feats.shape_expr[0]
out_feats = trtp.from_shape_expr((n, int(out_channels)), dtype=feats.dtype)
out_coords = trtp.from_shape_expr((n, 4), dtype=trt.int32)
count = trtp.from_shape_expr((), dtype=trt.int32)
return out_feats, out_coords, count
@trtp.impl(f"{_NAMESPACE}::SparseConv3D")
def sparse_conv3d_impl(
feats: trtp.Tensor,
coords: trtp.Tensor,
weight: trtp.Tensor,
bias: trtp.Tensor,
out_channels: int,
kernel_size: int,
stride: int,
dilation: int,
padding: int,
subm: bool,
spatial_x: int,
spatial_y: int,
spatial_z: int,
batch_size: int,
outputs: Tuple[trtp.Tensor, trtp.Tensor, trtp.Tensor],
stream: int,
) -> None:
import spconv.pytorch as spconv
with _stream_ctx(stream):
f, c, w, b = _tt(feats), _tt(coords).to(torch.int32), _tt(weight), _tt(bias)
# TensorRT's ONNX->Python-plugin bridge in 11.2 can corrupt scalar plugin
# fields after serialization. For the production AniGen decoder all sparse
# convolutions are SubMConv3d/stride=1; derive structural values from the
# native spconv weight tensor instead of trusting serialized scalars.
oc_runtime = int(w.shape[0])
k_runtime = int(w.shape[1])
subm_runtime = True
stride_runtime = 1
dilation_runtime = 1
padding_runtime = 0
key = (int(w.data_ptr()), int(b.data_ptr()), f.dtype, int(f.shape[1]), oc_runtime, k_runtime, subm_runtime)
mod = _CONV_CACHE.get(key)
if mod is None:
algo = spconv.ConvAlgo.Native
mod = spconv.SubMConv3d(
int(f.shape[1]), oc_runtime, k_runtime,
dilation=dilation_runtime, bias=(b.numel() != 0), algo=algo,
)
mod = mod.to(device=f.device, dtype=f.dtype).eval()
with torch.no_grad():
if tuple(mod.weight.shape) != tuple(w.shape):
raise RuntimeError(f"SparseConv3D weight layout mismatch: plugin={tuple(mod.weight.shape)} onnx={tuple(w.shape)}")
mod.weight.copy_(w.to(dtype=mod.weight.dtype))
if mod.bias is not None and b.numel():
mod.bias.copy_(b.to(dtype=mod.bias.dtype))
_CONV_CACHE[key] = mod
spatial = [max(1, int(c[:, i].max().item()) + 1) for i in (1, 2, 3)]
bs = max(1, int(c[:, 0].max().item()) + 1)
st = spconv.SparseConvTensor(f, c, spatial, bs)
y = mod(st)
m = int(y.features.shape[0])
# SubMConv preserves the coordinate set but spconv may choose an internal
# order that differs across independent modules. Normalize back to the
# input coordinate order so geo/skin branches remain directly composable.
yi = y.indices.to(torch.int32)
yf = y.features
if not torch.equal(yi, c):
maxs=[max(int(c[:,j].max().item()),int(yi[:,j].max().item()))+1 for j in range(4)]
mult=[maxs[1]*maxs[2]*maxs[3],maxs[2]*maxs[3],maxs[3],1]
mul=torch.tensor(mult,device=c.device,dtype=torch.int64)
ccode=(c.to(torch.int64)*mul).sum(-1); ycode=(yi.to(torch.int64)*mul).sum(-1)
sy,perm=torch.sort(ycode); pos=torch.searchsorted(sy,ccode)
if bool(torch.any(pos>=sy.numel()).item()) or not torch.equal(sy[pos],ccode):
raise RuntimeError('SparseConv3D SubM output coordinate set differs from input')
yf=yf[perm[pos]]
of = _tt(outputs[0])
oc = _tt(outputs[1])
of.copy_(yf)
oc.copy_(c)
_write_scalar(outputs[2], m)
# -----------------------------------------------------------------------------
# Sparse window self attention. Semantics match AniGen's shifted-window
# partition followed by flash_attn_varlen_qkvpacked_func.
# -----------------------------------------------------------------------------
@trtp.register(f"{_NAMESPACE}::SparseWindowAttention")
def sparse_window_attention_desc(
qkv: trtp.TensorDesc,
coords: trtp.TensorDesc,
window_size: int,
shift_x: int,
shift_y: int,
shift_z: int,
) -> trtp.TensorDesc:
return trtp.from_shape_expr(
(qkv.shape_expr[0], qkv.shape_expr[2], qkv.shape_expr[3]), dtype=qkv.dtype
)
@trtp.impl(f"{_NAMESPACE}::SparseWindowAttention")
def sparse_window_attention_impl(
qkv: trtp.Tensor,
coords: trtp.Tensor,
window_size: int,
shift_x: int,
shift_y: int,
shift_z: int,
outputs: Tuple[trtp.Tensor],
stream: int,
) -> None:
import flash_attn
with _stream_ctx(stream):
x, c = _tt(qkv), _tt(coords).to(torch.int32)
ws = int(window_size)
shifted = c.clone()
shifted[:, 1:] += torch.tensor(
[int(shift_x), int(shift_y), int(shift_z)], device=c.device, dtype=torch.int32
)[None]
max_coords = shifted[:, 1:].max(dim=0).values.tolist()
nw = [math.ceil((int(v) + 1) / ws) for v in max_coords]
offset = torch.cumprod(torch.tensor([1] + nw[::-1]), dim=0).tolist()[::-1]
shifted[:, 1:] //= ws
ids = (shifted * torch.tensor(offset, device=c.device, dtype=torch.int32)[None]).sum(dim=1)
fwd = torch.argsort(ids)
bwd = torch.empty_like(fwd)
bwd[fwd] = torch.arange(fwd.shape[0], device=c.device)
lens = torch.bincount(ids)
lens = lens[lens != 0].to(torch.int32)
sorted_qkv = x[fwd]
cu = torch.cat(
[torch.zeros(1, device=x.device, dtype=torch.int32), torch.cumsum(lens, 0, dtype=torch.int32)], 0
)
if x.dtype in (torch.float16, torch.bfloat16):
y = flash_attn.flash_attn_varlen_qkvpacked_func(sorted_qkv, cu, int(lens.max().item()))
else:
# Debug/reference FP32 path. Production AniGen uses FP16.
pieces = []
start = 0
for ln in lens.tolist():
z = sorted_qkv[start:start + ln]
q, k, v = z.unbind(1)
q, k, v = [t.permute(1, 0, 2).unsqueeze(0) for t in (q, k, v)]
p = torch.nn.functional.scaled_dot_product_attention(q, k, v)
pieces.append(p.squeeze(0).permute(1, 0, 2))
start += ln
y = torch.cat(pieces, 0)
_tt(outputs[0]).copy_(y[bwd])
# -----------------------------------------------------------------------------
# SparseDownsample: AniGen average-pooling semantics + inverse map used by the
# matching SparseUpsample.
# -----------------------------------------------------------------------------
@trtp.register(f"{_NAMESPACE}::SparseDownsample")
def sparse_downsample_desc(
feats: trtp.TensorDesc,
coords: trtp.TensorDesc,
factor_x: int,
factor_y: int,
factor_z: int,
) -> Tuple[trtp.TensorDesc, trtp.TensorDesc, trtp.TensorDesc, trtp.TensorDesc]:
n, ch = feats.shape_expr[0], feats.shape_expr[1]
st = trtp.size_tensor(n // 2, n)
return (
trtp.from_shape_expr((st.expr(), ch), dtype=feats.dtype),
trtp.from_shape_expr((st.expr(), 4), dtype=trt.int32),
trtp.from_shape_expr((n,), dtype=trt.int32),
st,
)
@trtp.impl(f"{_NAMESPACE}::SparseDownsample")
def sparse_downsample_impl(
feats: trtp.Tensor,
coords: trtp.Tensor,
factor_x: int,
factor_y: int,
factor_z: int,
outputs: Tuple[trtp.Tensor, trtp.Tensor, trtp.Tensor, trtp.Tensor],
stream: int,
) -> None:
with _stream_ctx(stream):
f, c = _tt(feats), _tt(coords).to(torch.int32)
factor = (int(factor_x), int(factor_y), int(factor_z))
parts = list(c.unbind(-1))
for i, fac in enumerate(factor):
parts[i + 1] = parts[i + 1] // fac
maxs = [int(parts[i + 1].max().item()) + 1 for i in range(3)]
off = torch.cumprod(torch.tensor(maxs[::-1], dtype=torch.int64), 0).tolist()[::-1] + [1]
code = sum(x.to(torch.int64) * int(o) for x, o in zip(parts, off))
u, inv = code.unique(return_inverse=True)
m = int(u.shape[0])
y = torch.zeros((m, f.shape[1]), device=f.device, dtype=f.dtype)
y = torch.scatter_reduce(y, 0, inv[:, None].expand(-1, f.shape[1]), f, reduce="mean")
yc = torch.stack(
[u // off[0]] + [(u // off[i + 1]) % maxs[i] for i in range(3)], -1
).to(torch.int32)
out0 = _tt(outputs[0].aliased((int(f.shape[0]), int(f.shape[1]))))
out1 = _tt(outputs[1].aliased((int(c.shape[0]), 4)))
out0[:m].copy_(y)
out1[:m].copy_(yc)
_tt(outputs[2]).copy_(inv.to(torch.int32))
_write_scalar(outputs[3], m)
@trtp.register(f"{_NAMESPACE}::SparseUpsample")
def sparse_upsample_desc(
feats: trtp.TensorDesc,
target_coords: trtp.TensorDesc,
inverse: trtp.TensorDesc,
) -> Tuple[trtp.TensorDesc, trtp.TensorDesc]:
n = target_coords.shape_expr[0]
return (
trtp.from_shape_expr((n, feats.shape_expr[1]), dtype=feats.dtype),
target_coords.like(),
)
@trtp.impl(f"{_NAMESPACE}::SparseUpsample")
def sparse_upsample_impl(
feats: trtp.Tensor,
target_coords: trtp.Tensor,
inverse: trtp.Tensor,
outputs: Tuple[trtp.Tensor, trtp.Tensor],
stream: int,
) -> None:
with _stream_ctx(stream):
f, tc, inv = _tt(feats), _tt(target_coords), _tt(inverse).to(torch.long)
_tt(outputs[0]).copy_(f[inv])
_tt(outputs[1]).copy_(tc)
@trtp.register(f"{_NAMESPACE}::SparseSubdivide")
def sparse_subdivide_desc(
feats: trtp.TensorDesc,
coords: trtp.TensorDesc,
) -> Tuple[trtp.TensorDesc, trtp.TensorDesc]:
n8 = feats.shape_expr[0] * 8
return (
trtp.from_shape_expr((n8, feats.shape_expr[1]), dtype=feats.dtype),
trtp.from_shape_expr((n8, 4), dtype=trt.int32),
)
@trtp.impl(f"{_NAMESPACE}::SparseSubdivide")
def sparse_subdivide_impl(
feats: trtp.Tensor,
coords: trtp.Tensor,
outputs: Tuple[trtp.Tensor, trtp.Tensor],
stream: int,
) -> None:
with _stream_ctx(stream):
f, c = _tt(feats), _tt(coords).to(torch.int32)
offsets = torch.tensor(
[[0, x, y, z] for x in (0, 1) for y in (0, 1) for z in (0, 1)],
device=c.device,
dtype=torch.int32,
)
oc = c.clone()
oc[:, 1:] *= 2
oc = (oc[:, None, :] + offsets[None, :, :]).flatten(0, 1)
of = f[:, None, :].expand(f.shape[0], 8, f.shape[1]).flatten(0, 1)
_tt(outputs[0]).copy_(of)
_tt(outputs[1]).copy_(oc)
# -----------------------------------------------------------------------------
# MeshTopologyExtract: inference-only FlexiCubes topology extraction. Dynamic
# vertices/faces are exposed using two TensorRT size tensors.
# -----------------------------------------------------------------------------
@trtp.register(f"{_NAMESPACE}::MeshTopologyExtract")
def mesh_topology_desc(
voxelgrid_vertices: trtp.TensorDesc,
scalar_field: trtp.TensorDesc,
cube_idx: trtp.TensorDesc,
beta: trtp.TensorDesc,
alpha: trtp.TensorDesc,
gamma_f: trtp.TensorDesc,
voxelgrid_colors: trtp.TensorDesc,
resolution: int,
no_sigmoid: bool,
) -> Tuple[trtp.TensorDesc, trtp.TensorDesc, trtp.TensorDesc, trtp.TensorDesc, trtp.TensorDesc]:
nc = cube_idx.shape_expr[0]
# Conservative FlexiCubes bounds; actual extents are communicated by DDS.
vst = trtp.size_tensor(nc * 2, nc * 32)
fst = trtp.size_tensor(nc * 4, nc * 64)
return (
trtp.from_shape_expr((vst.expr(), 3), dtype=voxelgrid_vertices.dtype),
trtp.from_shape_expr((fst.expr(), 3), dtype=trt.int32),
trtp.from_shape_expr((vst.expr(), voxelgrid_colors.shape_expr[1]), dtype=voxelgrid_colors.dtype),
vst,
fst,
)
@trtp.impl(f"{_NAMESPACE}::MeshTopologyExtract")
def mesh_topology_impl(
voxelgrid_vertices: trtp.Tensor,
scalar_field: trtp.Tensor,
cube_idx: trtp.Tensor,
beta: trtp.Tensor,
alpha: trtp.Tensor,
gamma_f: trtp.Tensor,
voxelgrid_colors: trtp.Tensor,
resolution: int,
no_sigmoid: bool,
outputs: Tuple[trtp.Tensor, trtp.Tensor, trtp.Tensor, trtp.Tensor, trtp.Tensor],
stream: int,
) -> None:
from anigen.representations.mesh.flexicubes.flexicubes import FlexiCubes
with _stream_ctx(stream):
v = _tt(voxelgrid_vertices)
s = _tt(scalar_field)
cubes = _tt(cube_idx).to(torch.long)
be, al, ga = _tt(beta), _tt(alpha), _tt(gamma_f)
col = _tt(voxelgrid_colors)
key = (int(v.device.index or 0), bool(col.shape[1] > 0))
fc = _FLEXI_CACHE.get(key)
if fc is None:
fc = FlexiCubes(device=str(v.device), use_color=bool(col.shape[1] > 0))
_FLEXI_CACHE[key] = fc
verts, faces, _ldev, colors = fc(
voxelgrid_vertices=v,
scalar_field=s,
cube_idx=cubes,
resolution=int(resolution),
beta=be,
alpha=al,
gamma_f=ga,
voxelgrid_colors=col,
training=False,
no_sigmoid=bool(no_sigmoid),
)
nv, nf = int(verts.shape[0]), int(faces.shape[0])
nc = int(cubes.shape[0]); vcap = nc * 32; fcap = nc * 64
outv = _tt(outputs[0].aliased((vcap, 3)))
outf = _tt(outputs[1].aliased((fcap, 3)))
outc = _tt(outputs[2].aliased((vcap, int(col.shape[1]))))
outv[:nv].copy_(verts)
outf[:nf].copy_(faces.to(torch.int32))
if colors is not None and outc.shape[1] > 0:
outc[:nv].copy_(colors)
_write_scalar(outputs[3], nv)
_write_scalar(outputs[4], nf)
# -----------------------------------------------------------------------------
# Production high-level sparse mesh extractor. This consumes the actual SLat
# DAE head output [cube_feats, cube_coords], encapsulating sparse_cube2verts,
# dense attribute staging, FlexiCubes topology, RGB/normal extraction and
# vertex skin-feature extraction behind one TensorRT DDS node.
# -----------------------------------------------------------------------------
@trtp.register(f"{_NAMESPACE}::SparseMeshTopologyExtract")
def sparse_mesh_topology_desc(
cube_feats: trtp.TensorDesc,
cube_coords: trtp.TensorDesc,
resolution: int,
) -> Tuple[trtp.TensorDesc, trtp.TensorDesc, trtp.TensorDesc, trtp.TensorDesc, trtp.TensorDesc, trtp.TensorDesc]:
n = cube_feats.shape_expr[0]
# Conservative bounds from sparse surface cubes; unlike the dense 256^3
# grid these scale only with generated sparse cubes.
vst = trtp.size_tensor(n, n * 16)
fst = trtp.size_tensor(n * 2, n * 32)
return (
trtp.from_shape_expr((vst.expr(), 3), dtype=trt.float32),
trtp.from_shape_expr((fst.expr(), 3), dtype=trt.int32),
trtp.from_shape_expr((vst.expr(), 6), dtype=trt.float32),
trtp.from_shape_expr((vst.expr(), 4), dtype=cube_feats.dtype),
vst,
fst,
)
@trtp.impl(f"{_NAMESPACE}::SparseMeshTopologyExtract")
def sparse_mesh_topology_impl(
cube_feats: trtp.Tensor,
cube_coords: trtp.Tensor,
resolution: int,
outputs: Tuple[trtp.Tensor, trtp.Tensor, trtp.Tensor, trtp.Tensor, trtp.Tensor, trtp.Tensor],
stream: int,
) -> None:
from anigen.modules.sparse import SparseTensor
from anigen.representations.mesh.cube2mesh_skeleton import AniGenSparseFeatures2Mesh
with _stream_ctx(stream):
f=_tt(cube_feats); c=_tt(cube_coords).to(torch.int32)
# Production AniGen slat_dae config is resolution=64 and extracts mesh at x4.
res_runtime=256
key=('sparse-mesh',res_runtime,int(f.shape[1]))
ext=_FLEXI_CACHE.get(key)
if ext is None:
ext=AniGenSparseFeatures2Mesh(res=res_runtime,use_color=True,skin_feat_channels=4,predict_skin=True,device='cuda')
_FLEXI_CACHE[key]=ext
st=SparseTensor(feats=f,coords=c)
mesh=ext(st,training=False)
verts=mesh.vertices.float(); faces=mesh.faces.to(torch.int32)
attrs=mesh.vertex_attrs.float() if mesh.vertex_attrs is not None else torch.zeros((verts.shape[0],6),device=verts.device,dtype=torch.float32)
skin=mesh.vertex_skin_feats if mesh.vertex_skin_feats is not None else torch.zeros((verts.shape[0],4),device=verts.device,dtype=f.dtype)
nv,nf=int(verts.shape[0]),int(faces.shape[0]);vcap=int(f.shape[0])*16;fcap=int(f.shape[0])*32
ov=_tt(outputs[0].aliased((vcap,3)));of=_tt(outputs[1].aliased((fcap,3)));oa=_tt(outputs[2].aliased((vcap,6)));os=_tt(outputs[3].aliased((vcap,4)))
ov[:nv].copy_(verts);of[:nf].copy_(faces);oa[:nv].copy_(attrs);os[:nv].copy_(skin.to(os.dtype))
_write_scalar(outputs[4],nv);_write_scalar(outputs[5],nf)
def registered_ops():
return [
"SparseConv3D",
"SparseWindowAttention",
"SparseDownsample",
"SparseUpsample",
"SparseSubdivide",
"MeshTopologyExtract",
"SparseMeshTopologyExtract",
]
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