0.617B unbounded base model (pretraining only). The 0.6B control for the K-5 boundary study.
Part of the
LittleLearner
scale-up study (
pedagogically-controlled knowledge exposure
): Qwen3 dense LMs trained on a corpus filtered to U.S. K-5 material (
bounded
) vs an unfiltered FineWeb-Edu corpus (
unbounded
), to measure what an interpretable knowledge boundary costs and grants.
Tokenizer:
custom 64k byte-level BPE with per-digit splitting (ChatML special tokens).
Pretraining:
88B tokens on
unfiltered
FineWeb-Edu (score >= 2, no grade filter). WSD schedule, sharded Muon, MXFP8, Megatron-Core on 8xB200.
Evaluation
BPB on K-5-domain eval text:
0.712
(vs the bounded 0.6B's 0.622; the unbounded model is broader).
Usage
# transformers (completion)from transformers import AutoModelForCausalLM, AutoTokenizer
repo = "manueldeprada/littlelearner-0.6b-unbounded-base"
tok = AutoTokenizer.from_pretrained(repo)
model = AutoModelForCausalLM.from_pretrained(repo, dtype="bfloat16", device_map="cuda")
ids = tok("The sum of 2 and 3 is", return_tensors="pt").to(model.device)
print(tok.decode(model.generate(**ids)[0], skip_special_tokens=True))
# vLLMfrom vllm import LLM
llm = LLM("manueldeprada/littlelearner-0.6b-unbounded-base")
print(llm.generate(["The sum of 2 and 3 is"])[0].outputs[0].text)
Runs of littlelearner unfiltered-0.6b-base on huggingface.co
477
Total runs
0
24-hour runs
41
3-day runs
311
7-day runs
311
30-day runs
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