Qwen3 1.7B EAGLE3 K2 SW128 ShareGPT

This repository contains a SpecForge EAGLE3 draft-model checkpoint for use with Qwen/Qwen3-1.7B. It is a draft model for speculative decoding, not a standalone target language model.

Checkpoint

Field Value
Source run qwen3-1.7b-eagle3-k2-sw128-sharegpt
Checkpoint epoch_7_step_175000
Epoch 7
Global step 175000
Files config.json, model.safetensors, training_state.pt (when present)

Training Parameters

Parameter Value
Base model Qwen/Qwen3-1.7B
Method SpecForge EAGLE3 online training
Training data sharegpt_train.jsonl
Learning rate 0.0001
Batch size 1
Target batch size 2
Epochs configured 10
Max length 2048
Warmup ratio 0.015
Max grad norm 0.5
TTT length 7
Draft layers 2
Draft sliding window 128
Save interval 5000
Eval interval 5000
Seed 0
TP / DP size 2 / 2
Attention backend sdpa
Target model backend sglang
SGLang attention backend flashinfer
Dataset build workers 64

Draft Model Configuration

Field Value
Architecture LlamaForCausalLMEagle3
dtype bfloat16
Hidden size 2048
Intermediate size 6144
Draft layers 2
Attention heads 16
KV heads 8
Draft vocab size 32000
Vocab size 151936
Max position embeddings 40960
Sliding window 128
Max window layers 2
Future hidden Not recorded

Notes

  • This is the highest-step local checkpoint available when this repository was published.
  • The checkpoint is intended to be loaded by SpecForge/EAGLE3-compatible code.
  • training_state.pt is included when available for provenance and training-state inspection.
  • No benchmark claim is made in this card.
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