| |
| """ |
| 07_export_v3.py — WEG C, ROBUSTE fp16-Konvertierung gegen WebGPU-Ueberlauf. |
| |
| D.5-Strategie (statt op_block_list, das an Lib-Bugs/Grenzen scheitert): |
| 1. convert_float_to_float16(op_block_list=[]) -> alles fp16 (wie v1, laedt-faehig-Basis) |
| 2. fix_edges() -> Cast to=FLOAT -> FLOAT16 (macht es ladefaehig, wie v1) |
| 3. wrap_rmsnorm_fp32() -> jede ReduceMean-Reduktion in fp32 (verhindert |
| fp16-Ueberlauf der Summe-der-Quadrate auf echten WebGPU-Kerneln) |
| Alle drei Schritte in der Sandbox verifiziert (laedt + ReduceMean fp32). |
| |
| Start: nohup python 07_export_v3.py > export_v3.log 2>&1 & |
| """ |
| import gc, os |
| from pathlib import Path |
| import torch, onnx |
| from onnx import TensorProto, helper |
|
|
| os.environ.setdefault("HF_HOME", "/root/hf-cache") |
| MODEL_ID = "/root/gemma4-bund-merged" |
| STOCK = "onnx-community/gemma-4-E4B-it-ONNX" |
| OUT = Path("/root/train/gemma4-bund-final-v3"); ONNX_DIR = OUT/"onnx"; ONNX_DIR.mkdir(parents=True, exist_ok=True) |
| FP32=ONNX_DIR/"decoder_model_merged.onnx"; FP32_DATA="decoder_model_merged.onnx_data" |
| FP16=ONNX_DIR/"decoder_model_merged_fp16.onnx"; FP16_DATA="decoder_model_merged_fp16.onnx_data" |
| Q4=ONNX_DIR/"decoder_model_merged_q4f16.onnx"; Q4_DATA="decoder_model_merged_q4f16.onnx_data" |
|
|
| def log(m): print(f"\n=== {m}", flush=True) |
|
|
| def fix_edges(m): |
| n=0 |
| for nd in m.graph.node: |
| if nd.op_type=="Cast": |
| for a in nd.attribute: |
| if a.name=="to" and a.i==TensorProto.FLOAT: a.i=TensorProto.FLOAT16; n+=1 |
| return n |
|
|
| def wrap_rmsnorm_fp32(m): |
| g=m.graph; new=[]; nw=0 |
| for node in list(g.node): |
| if node.op_type=="ReduceMean": |
| rin=node.input[0]; pre=rin+"_to32" |
| new.append(helper.make_node("Cast",[rin],[pre],to=TensorProto.FLOAT,name=node.name+"/CastIn32")) |
| node.input[0]=pre |
| outp=node.output[0]; post=outp+"_f32"; node.output[0]=post |
| new.append(node) |
| new.append(helper.make_node("Cast",[post],[outp],to=TensorProto.FLOAT16,name=node.name+"/CastOut16")) |
| nw+=1 |
| else: |
| new.append(node) |
| del g.node[:]; g.node.extend(new); return nw |
|
|
| |
| log("A) Modell laden (fp32)") |
| from transformers import AutoTokenizer, AutoModelForImageTextToText, DynamicCache |
| tok=AutoTokenizer.from_pretrained(MODEL_ID) |
| model=AutoModelForImageTextToText.from_pretrained(MODEL_ID,dtype=torch.float32,device_map="cpu").eval() |
| lm=model.model.language_model |
| lm_head=model.lm_head if hasattr(model,"lm_head") else model.get_output_embeddings() |
| print("hidden_size:",lm.config.hidden_size) |
|
|
| |
| log("B) Trockenlauf") |
| with torch.no_grad(): |
| ids=torch.tensor([[1,2,3,4]]); emb=lm.get_input_embeddings()(ids); ple=lm.get_per_layer_inputs(ids,emb) |
| print("per_layer_inputs Shape:",tuple(ple.shape)) |
| probe=lm(inputs_embeds=emb,per_layer_inputs=ple,use_cache=True,return_dict=True) |
| pkv=probe.past_key_values; N_CACHE=len(pkv.layers); print("n_cache_layers:",N_CACHE) |
| KV_SHAPES=[(int(pkv.layers[i].keys.shape[1]),int(pkv.layers[i].keys.shape[3])) for i in range(N_CACHE)] |
| print("head_dims:",sorted({s[1] for s in KV_SHAPES})) |
| del probe,pkv,emb,ple,ids; gc.collect() |
|
|
| |
| class DecoderWrapper(torch.nn.Module): |
| def __init__(s,lm,lm_head,n): super().__init__(); s.lm,s.lm_head,s.n=lm,lm_head,n |
| def forward(s,inputs_embeds,per_layer_inputs,attention_mask,position_ids,*past): |
| cache=None |
| if len(past)==2*s.n and past[0].shape[2]>0: |
| cache=DynamicCache(config=s.lm.config) |
| for i in range(s.n): cache.update(past[2*i],past[2*i+1],i) |
| out=s.lm(inputs_embeds=inputs_embeds,per_layer_inputs=per_layer_inputs,attention_mask=attention_mask, |
| position_ids=position_ids,past_key_values=cache,use_cache=True,return_dict=True) |
| logits=s.lm_head(out.last_hidden_state); present=[] |
| for i in range(s.n): present+= [out.past_key_values.layers[i].keys,out.past_key_values.layers[i].values] |
| return (logits,*present) |
| wrapper=DecoderWrapper(lm,lm_head,N_CACHE).eval() |
| log("C) Dummy + Export (LANGE STILLE NORMAL)") |
| with torch.no_grad(): |
| d_ids=torch.tensor([[42]],dtype=torch.long); d_emb=lm.get_input_embeddings()(d_ids).detach() |
| d_ple=lm.get_per_layer_inputs(d_ids,d_emb).detach() |
| d_mask=torch.ones(1,2,dtype=torch.long); d_pos=torch.tensor([[1]],dtype=torch.long); d_past=[] |
| for (n_kv,hd) in KV_SHAPES: d_past+=[torch.zeros(1,n_kv,1,hd),torch.zeros(1,n_kv,1,hd)] |
| input_names=["inputs_embeds","per_layer_inputs","attention_mask","position_ids"]; output_names=["logits"] |
| dyn={"inputs_embeds":{0:"batch",1:"seq"},"per_layer_inputs":{0:"batch",1:"seq"},"attention_mask":{0:"batch",1:"total"},"position_ids":{0:"batch",1:"seq"},"logits":{0:"batch",1:"seq"}} |
| for i in range(N_CACHE): |
| for kv in ("key","value"): |
| pn,on=f"past_key_values.{i}.{kv}",f"present.{i}.{kv}"; input_names.append(pn); output_names.append(on) |
| dyn[pn]={0:"batch",2:"past_seq"}; dyn[on]={0:"batch",2:"total_seq"} |
| with torch.no_grad(): |
| torch.onnx.export(wrapper,(d_emb,d_ple,d_mask,d_pos,*d_past),str(FP32),input_names=input_names, |
| output_names=output_names,dynamic_axes=dyn,opset_version=17,do_constant_folding=True,dynamo=False) |
| print("Export geschrieben.") |
| del model,lm,lm_head,wrapper,d_past,d_emb,d_ple; gc.collect() |
|
|
| |
| log("D) Konsolidierung") |
| m=onnx.load(str(FP32),load_external_data=True) |
| onnx.save_model(m,str(FP32),save_as_external_data=True,all_tensors_to_one_file=True,location=FP32_DATA,size_threshold=1024) |
| del m; gc.collect() |
| for f in ONNX_DIR.iterdir(): |
| if f.name.startswith("onnx__") or f.name.startswith("lm.") or f.name.startswith("_"): f.unlink() |
|
|
| |
| log("D.5) convert(op_block_list=[]) -> fix_edges -> wrap_rmsnorm_fp32") |
| from onnxconverter_common import float16 |
| m32=onnx.load(str(FP32),load_external_data=True) |
| m16=float16.convert_float_to_float16(m32,keep_io_types=False,disable_shape_infer=True,op_block_list=[]) |
| ne=fix_edges(m16); nw=wrap_rmsnorm_fp32(m16) |
| print(f"fix_edges Casts: {ne} | ReduceMean gewrappt (fp32): {nw}") |
| onnx.save_model(m16,str(FP16),save_as_external_data=True,all_tensors_to_one_file=True,location=FP16_DATA,size_threshold=1024) |
| del m32,m16; gc.collect() |
| FP32.unlink(missing_ok=True); (ONNX_DIR/FP32_DATA).unlink(missing_ok=True) |
| import onnxruntime as ort |
| try: |
| so=ort.SessionOptions(); so.intra_op_num_threads=4 |
| ort.InferenceSession(str(FP16),sess_options=so,providers=["CPUExecutionProvider"]); print("fp16 LAEDT in ORT.") |
| except Exception as e: print("!! fp16 LAEDT NICHT:",str(e).split(chr(10))[0][:120]) |
|
|
| |
| log("E) q4f16") |
| from onnxruntime.quantization.matmul_nbits_quantizer import MatMulNBitsQuantizer as Q, DefaultWeightOnlyQuantConfig |
| mf=onnx.load(str(FP16),load_external_data=True) |
| quant=Q(mf,algo_config=DefaultWeightOnlyQuantConfig(block_size=32,is_symmetric=True,accuracy_level=4)); quant.process() |
| qm=quant.model.model if hasattr(quant.model,"model") else quant.model |
| onnx.save_model(qm,str(Q4),save_as_external_data=True,all_tensors_to_one_file=True,location=Q4_DATA,size_threshold=1024) |
| del mf,quant,qm; gc.collect() |
| FP16.unlink(missing_ok=True); (ONNX_DIR/FP16_DATA).unlink(missing_ok=True) |
| try: |
| so=ort.SessionOptions(); so.intra_op_num_threads=4 |
| s=ort.InferenceSession(str(Q4),sess_options=so,providers=["CPUExecutionProvider"]); print("q4f16 LAEDT, Inputs total",len(s.get_inputs())) |
| except Exception as e: print("!! q4f16 LAEDT NICHT:",str(e).split(chr(10))[0][:120]) |
|
|
| |
| log("F) Stock-Embed + fp16-Cast + config/tokenizer") |
| from huggingface_hub import hf_hub_download |
| import shutil, json |
| for fn in ("onnx/embed_tokens_q4f16.onnx","onnx/embed_tokens_q4f16.onnx_data"): |
| p=hf_hub_download(STOCK,fn,local_dir="/root/stock-embed"); shutil.copy(p,ONNX_DIR/Path(fn).name); print("geholt:",fn) |
| ep=ONNX_DIR/"embed_tokens_q4f16.onnx"; em=onnx.load(str(ep),load_external_data=False) |
| tg=[o.name for o in em.graph.output if o.type.tensor_type.elem_type==TensorProto.FLOAT] |
| pr={o:(nd,i) for nd in em.graph.node for i,o in enumerate(nd.output) if o in tg} |
| for name in tg: |
| nd,idx=pr[name]; pre=name+"_fp32"; nd.output[idx]=pre |
| em.graph.node.append(helper.make_node("Cast",[pre],[name],to=TensorProto.FLOAT16,name=name+"/CastToFp16")) |
| for o in em.graph.output: |
| if o.name==name: o.type.tensor_type.elem_type=TensorProto.FLOAT16 |
| onnx.save(em,str(ep)); print("Embed-Outputs fp16:",tg) |
| tok.save_pretrained(str(OUT)) |
| from transformers import AutoConfig |
| AutoConfig.from_pretrained(MODEL_ID).save_pretrained(str(OUT)) |
| cp=OUT/"config.json"; cfg=json.load(open(cp)) |
| cfg["transformers.js_config"]={"dtype":"q4f16","use_external_data_format":{"decoder_model_merged_q4f16.onnx":2,"embed_tokens_q4f16.onnx":True},"kv_cache_dtype":"float16"} |
| json.dump(cfg,open(cp,"w"),indent=2) |
| tcp=OUT/"tokenizer_config.json"; jinja=OUT/"chat_template.jinja" |
| if jinja.exists(): |
| tc=json.load(open(tcp)); tc["chat_template"]=jinja.read_text(encoding="utf-8"); json.dump(tc,open(tcp,"w"),ensure_ascii=False,indent=2); print("chat_template eingebettet.") |
| log("FERTIG bis F. Naechste Schritte: Reshard -> Upload -> Bundesrechner. JETZT sichern, /root ist fluechtig!") |
|
|