163 lines
5.8 KiB
Python
163 lines
5.8 KiB
Python
#!/usr/bin/env python3
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"""
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Convert the TRELLIS.2 texture-SLAT VAE decoder checkpoint
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(tex_dec_next_dc_f16c32_fp16.safetensors) to a GGUF file for trellis2.cpp.
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This is a SparseUnetVaeDecoder — the SAME sparse ConvNeXt U-Net as the shape
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decoder (FlexiDualGridVaeDecoder) except:
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* out_channels = 6 (PBR: base_color[3], metallic[1], roughness[1], alpha[1]),
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no dual-grid geometry head;
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* pred_subdiv = False -> NO `to_subdiv` layers. The decoder does not predict
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which children to keep; it replays the subdivision structure recorded by the
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shape encoder's Spatial2Channel steps (threaded through the SparseTensor
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spatial cache). So the tex decoder reconstructs exactly the encoder's
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res-1024 voxel set; the C++ side must supply that per-level subdivision.
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Same architecture/weight layout as the shape decoder otherwise:
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model_channels [1024,512,256,128,64], num_blocks [4,16,8,4,0],
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SparseConvNeXtBlock3d blocks, SparseResBlockC2S3d up-blocks.
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Conv weights are FlexGEMM [Co,kD,kH,kW,Ci] -> reshaped to [Co, kD*kH*kW, Ci].
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Usage: python convert_tex_dec_to_gguf.py --output ggufs/tex_dec_f16.gguf --ftype 1
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"""
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import argparse
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import json
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import os
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import struct
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import numpy as np
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GGUF_MAGIC = b"GGUF"
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GGUF_VERSION = 3
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GGUF_ALIGNMENT = 32
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GGML_TYPE_F32 = 0
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GGML_TYPE_F16 = 1
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GGUF_VT_UINT32 = 4
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GGUF_VT_FLOAT32 = 6
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GGUF_VT_STRING = 8
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ARCH = "trellis2-tex-dec"
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KV_PREFIX = "trellis2.tex_dec."
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def _gguf_str(s):
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b = s.encode("utf-8")
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return struct.pack("<Q", len(b)) + b
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def _kv(key, vtype, payload):
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return _gguf_str(key) + struct.pack("<I", vtype) + payload
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def kv_u32(key, v): return _kv(key, GGUF_VT_UINT32, struct.pack("<I", int(v)))
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def kv_f32(key, v): return _kv(key, GGUF_VT_FLOAT32, struct.pack("<f", float(v)))
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def kv_str(key, v): return _kv(key, GGUF_VT_STRING, _gguf_str(str(v)))
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def _align(n, a=GGUF_ALIGNMENT):
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return (n + a - 1) // a * a
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def main():
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ap = argparse.ArgumentParser(description="Convert TRELLIS.2 texture decoder to GGUF")
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ap.add_argument("--model", default=os.path.join(os.path.dirname(__file__),
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"models", "TRELLIS.2-4B", "ckpts", "tex_dec_next_dc_f16c32_fp16.safetensors"))
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ap.add_argument("--config", default=None)
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ap.add_argument("--output", default="tex_dec.gguf")
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ap.add_argument("--ftype", type=int, default=1, choices=[0, 1])
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args = ap.parse_args()
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from safetensors.torch import load_file
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cfg_path = args.config or (os.path.splitext(args.model)[0] + ".json")
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with open(cfg_path) as f:
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cfg = json.load(f)
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a = cfg["args"]
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channels = a["model_channels"]
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nblocks = a["num_blocks"]
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out_channels = a["out_channels"]
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assert out_channels == 6, f"expected 6 PBR channels, got {out_channels}"
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assert a.get("pred_subdiv", True) is False, "tex decoder must be pred_subdiv=False"
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print(f"model : {args.model}")
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print(f"output: {args.output} (ftype={args.ftype})")
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print(f"arch : channels={channels} blocks={nblocks} latent={a['latent_channels']} out={out_channels}")
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metadata = [
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kv_str("general.architecture", ARCH),
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kv_str("general.name", "tex_dec_next_dc_f16c32_fp16"),
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kv_u32("general.file_type", args.ftype),
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kv_u32("general.alignment", GGUF_ALIGNMENT),
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kv_u32(KV_PREFIX + "latent_channels", a["latent_channels"]),
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kv_u32(KV_PREFIX + "out_channels", out_channels),
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kv_u32(KV_PREFIX + "n_levels", len(channels)),
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kv_f32(KV_PREFIX + "norm_eps", 1e-6),
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]
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for i, ch in enumerate(channels):
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metadata.append(kv_u32(KV_PREFIX + f"channels.{i}", ch))
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for i, nb in enumerate(nblocks):
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metadata.append(kv_u32(KV_PREFIX + f"num_blocks.{i}", nb))
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print("loading state_dict...")
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sd = load_file(args.model)
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tensors = []
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counts = {GGML_TYPE_F32: 0, GGML_TYPE_F16: 0}
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for name in sorted(sd.keys()):
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arr = sd[name].float().numpy().astype(np.float32)
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shape = tuple(arr.shape)
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if arr.ndim == 5: # FlexGEMM conv [Co,kD,kH,kW,Ci] -> [Co, 27, Ci]
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Co, kD, kH, kW, Ci = shape
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arr = np.ascontiguousarray(arr).reshape(Co, kD * kH * kW, Ci)
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shape = arr.shape
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gtype = GGML_TYPE_F32
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if args.ftype == 1 and len(shape) >= 2:
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gtype = GGML_TYPE_F16
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raw = (arr.astype("<f2") if gtype == GGML_TYPE_F16 else arr.astype("<f4")).tobytes()
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dims = list(reversed(shape)) if len(shape) > 0 else [1]
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tensors.append((name, gtype, dims, raw))
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counts[gtype] += 1
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print(f"tensors: {len(tensors)} (f32={counts[GGML_TYPE_F32]}, f16={counts[GGML_TYPE_F16]})")
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header = bytearray()
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header += GGUF_MAGIC
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header += struct.pack("<I", GGUF_VERSION)
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header += struct.pack("<Q", len(tensors))
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header += struct.pack("<Q", len(metadata))
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for m in metadata:
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header += m
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infos = bytearray()
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offset = 0
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offsets = []
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for name, gtype, dims, raw in tensors:
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offsets.append(offset)
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offset = _align(offset + len(raw))
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for (name, gtype, dims, raw), off in zip(tensors, offsets):
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infos += _gguf_str(name)
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infos += struct.pack("<I", len(dims))
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for d in dims:
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infos += struct.pack("<Q", int(d))
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infos += struct.pack("<I", gtype)
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infos += struct.pack("<Q", off)
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pre_data = len(header) + len(infos)
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pad0 = _align(pre_data) - pre_data
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with open(args.output, "wb") as fout:
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fout.write(header)
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fout.write(infos)
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fout.write(b"\x00" * pad0)
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for (name, gtype, dims, raw), off in zip(tensors, offsets):
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fout.write(raw)
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pad = _align(len(raw)) - len(raw)
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if pad:
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fout.write(b"\x00" * pad)
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print(f"wrote {args.output} ({os.path.getsize(args.output):,} bytes)")
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if __name__ == "__main__":
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main()
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