The whole geometry chain now runs on a real photograph:
[1] occupancy 12948 voxels 19.7s
[2] cond proj (1, 262144, 2048) @ 64^3 2.6s
gathered proj (12948, 2048)
[3] SLAT (12948, 32) 88.7s
[4] MESH 3556515 verts, 7071196 faces 11.0s grid 1024^3
peak 22.6 GB, bounds inside the unit cube
Two bugs fixed on the way:
1. "global" must be FLAT [M,C] for the sparse blocks, not the dense stage's [B,T,C].
The sparse cross-attention takes a token stack plus an explicit layout, so the
dense shape dies inside to_kv's reshape rather than anywhere informative. Gathering
now reshapes it, and refuses batch > 1 rather than silently mislabelling a layout.
2. o_voxel needs the decoder OUTPUT grid, not its configured resolution. The shape
decoder applies four 2x upsamples, so a res-64 latent decodes into 1024^3, while
the config says 256 (upstream overrides it per run via set_resolution). Passing 256
raised an opaque out-of-bounds inside o_voxel's hashmap insert. Added
output_resolution() and a guard that names the real cause.
HONEST LIMITATION - this is NOT yet the shipped cascade. Upstream's
sample_shape_slat_cascade runs the 512 flow (res 32) first, denormalises, UPSAMPLES
THE COORDINATE SET through the shape decoder, then runs the 1024 flow on the refined
coords. Running the HR flow straight off the 64^3 occupancy set yields a complete,
exportable mesh whose silhouette IoU is 0.639 - against 0.842 for the occupancy grid
that seeded it. The gap is a halo of geometry outside the true silhouette, exactly
what the missing coordinate refinement would prune. Do not read the current mesh
quality as the model's; wiring the cascade is the next step.
Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
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|---|---|---|
| pixal3d_mlx | ||
| scripts | ||
| tests | ||
| .gitignore | ||
| CLAUDE.md | ||
| README.md | ||
| silhouette_check.png | ||
pixal3d_mrp_mlx
MLX port of Pixal3D (TencentARC + Tsinghua, SIGGRAPH 2026, MIT) — pixel-aligned single-image 3D generation — for Apple Silicon.
Built on trellis_sparse_mlx, the shared TRELLIS-lineage
sparse core. Pixal3D and LATO.2 inherit the same sparse module from TRELLIS.2, so the
expensive part — submanifold sparse convolution, which has no Metal implementation — is
already done and tested there.
Why Pixal3D
It back-projects pixel features directly into 3D rather than injecting them through attention, so silhouettes stay exact to the source image. Different failure mode from TRELLIS/Hunyuan, and complementary to them.
Upstream needs ~24 GB VRAM, which is a wall on consumer Nvidia and a non-issue on a 128 GB+ Ultra.
Scope, measured against the shared core
| Need | Status |
|---|---|
SparseConv3d — every call is (c, out, 3), i.e. stride=1/padding=None → SubMConv3d |
✅ in shared core |
attn_mode='full' (the only mode used) |
✅ in shared core |
SparseLinear, norms, activations, ResBlock, transformer blocks |
✅ in shared core |
SparseDownsample(2) |
✅ in shared core |
VarLenTensor / SparseTensor split + get/register_spatial_cache |
✅ added to shared core |
dense nn.Conv3d(.., 2, stride=2) in sparse_structure_vae |
✅ maps to mlx.nn.Conv3d |
SparseUpsample(2) |
❌ to do — cache-paired inverse of a downsample |
SparseSpatial2Channel(2) |
❌ to do — sparse pixel-shuffle, spatial→channel |
Both of those are now done in the shared core.
Correction to the earlier scope
"the gap is two ops" was accurate about modules/sparse/ — the sparse primitives. It
undercounted the model blocks, which the configs revealed:
| Still needed | Where |
|---|---|
| RoPE positional embedding | all 4 flow models (pe_mode: "rope") — but rope_phases ships as a stored tensor, so phases are precomputed, not derived |
qk_rms_norm on q and k |
all 4 flow models |
AdaLN modulation (share_mod: true) |
all 4 flow models |
image_attn_mode: "proj" conditioning |
all 4 flow models |
SparseConvNeXtBlock3d |
shape_dec, tex_dec |
SparseResBlockC2S3d (channel↔spatial) |
shape_dec, tex_dec — uses SparseSpatial2Channel |
Offsetting that, a genuine simplification the tensors revealed: the four flow models
(~20 GB, the bulk of the download) contain ZERO 5-D tensors. ss_flow and the three
slat_flow DiTs are pure transformers — they never touch sparse convolution, so they
need none of the sparse core, just DiT blocks.
Model surface
pixal3d/models/
sparse_structure_vae.py dense Conv3d — voxel structure
sparse_structure_flow.py structure flow (SS)
structured_latent_flow.py SLAT flow
sc_vaes/sparse_unet_vae.py the only file using sparse conv
Weights: 24.04 GB across 19 files (1.3B DiTs at 512/1024 + shape/tex decoders).
Status
- Scoped against the shared core
- Weights downloaded (24 GB) — each ships a sibling
.jsonwith the exact config, so unlike LATO.2 there is no architecture to infer upsample(masked) +downsample(mode=)landed in the shared core- Weight converter — decoders remap KRSC→
[K³,in,out], dtype preserved, remap verified a pure permutation. Flow models pass through untouched. - DiT blocks: RoPE (stored complex phases), qk_rms_norm, AdaLN modulation, proj conditioning
- All four flow models verified against upstream at correlation 1.00000000
—
ss_flow(max diff 1.2e-5) andslat_flow(9.3e-6), 700/700 params each, on the real 1.3B checkpoints SparseConvNeXtBlock3d,SparseResBlockC2S3d,spatial2channel/channel2spatial— all in the shared core, round-trip and selective-growth testedss_decverified at correlation 1.00000000 (74/74), completing the whole structure stage: image -> ss_flow -> latent -> ss_dec -> 64^3 occupancy gridshape_dec/tex_dec— both load complete (292/292, 284/284) and run. Behaviourally checked only; see the verification note below- End-to-end pipeline wiring (image encoder -> flows -> decoders -> mesh export)
Model status
| model | params | verification |
|---|---|---|
ss_flow |
700/700 | corr 1.00000000 vs upstream |
slat_flow x3 |
700/700 | corr 1.00000000 vs upstream |
ss_dec |
74/74 | corr 1.00000000 vs upstream |
shape_dec |
292/292 | behavioural only — no oracle possible |
tex_dec |
284/284 | behavioural only — no oracle possible |
The split is not arbitrary: the first five contain no sparse convolution, so upstream runs on CPU torch and can be diffed directly. The two decoders do use it, spconv has no Metal build, and so there is nothing to diff against. Their blocks are individually tested, and the assembled graphs are checked for complete weight mapping, selective growth, correct scale and a vertex head inside its valid band — but that is weaker evidence than a correlation and should be read that way.
Numerical verification
The flow models contain no sparse convolution, which means upstream runs on CPU torch
here — swap flash-attn for F.scaled_dot_product_attention and it loads the real
checkpoint and runs. So unlike the sparse path (where spconv is uninstallable and the
oracle had to be hand-written), these are diffed against upstream directly:
MLX : mean +0.18490 std 0.86841
UPSTREAM : mean +0.18490 std 0.86841
max abs diff 1.216e-05 correlation 1.00000000
Getting there required finding three bugs that weight-key matching could not catch — the loader reported a perfect 700/700 with 0 missing and 0 unmapped through all of them:
- A parameterless final
LayerNormbetween the last block andout_layer. It has no weights, so it leaves no trace in the checkpoint. Without it the output was ~200x too large (std 187 vs 0.87). rope_phasesis complex64, built withtorch.polar. The rotation is a complex multiply and cos/sin are the phase's real/imaginary parts — takingcos()of a complex phase is meaningless.- qk RMS norm is applied BEFORE RoPE, not after. They do not commute. Reversed, a single block still correlated 0.9998 with upstream; over 30 blocks that compounds to 0.84. This one is invisible without an oracle.