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Model: ramankrishna10/npc-nano-0.5b-sft Source: Original Platform
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README.md
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---
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license: apache-2.0
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library_name: transformers
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pipeline_tag: text-generation
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base_model: ramankrishna10/npc-nano-0.5b-base
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tags:
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- bottensor
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- npc-family
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- from-scratch
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- sft
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---
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# NPC Nano 0.5B — SFT
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Instruction-tuned 0.5B parameter language model from the [Bottensor](https://bottensor.xyz) NPC family. SFT-warmed from [npc-nano-0.5b-base](https://huggingface.co/ramankrishna10/npc-nano-0.5b-base), itself pretrained from scratch on 8.93B tokens.
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**Author:** Rama Krishna Bachu ([ORCID 0009-0000-1298-0681](https://orcid.org/0009-0000-1298-0681))
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**Affiliation:** Bottensor (Independent Research)
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**License:** Apache 2.0
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**Paper:** *NPC Nano 0.5B: From-Scratch Pretraining and GRPO Post-Training on a Single A40* (forthcoming on Zenodo)
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Part of the NPC model family alongside [NPC Fast 1.7B](https://huggingface.co/ramankrishna10/npc-fast-1.7b), [NPC Fin 32B](https://huggingface.co/ramankrishna10/npc-fin-32b-sft), [NPC Fin-PRM 7B](https://huggingface.co/ramankrishna10/npc-fin-prm-7b), and [NPC Agentic 7B v3](https://huggingface.co/ramankrishna10/npc-agentic-7b-v3). NPC Nano is the first from-scratch pretrained model in the family.
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## Architecture
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- 24 layers, 1024 hidden, 16 heads, head_dim 64, ffn_dim 4992 (SwiGLU sized so total params hit ~500M; see [npc-nano-0.5b-base](https://huggingface.co/ramankrishna10/npc-nano-0.5b-base) for the design rationale)
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- SwiGLU, RMSNorm, RoPE, tied embeddings
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- Vocabulary: 32K BPE (trained from scratch on the pretraining corpus)
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- Context: 2048
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- Precision: bfloat16
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- Total parameters: 501,531,648
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## SFT recipe
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- Base: `ramankrishna10/npc-nano-0.5b-base`
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- Training data mix (20,000 examples):
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- 60% OpenHermes-2.5 (instruction-following)
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- 20% MetaMathQA (chain-of-thought math; substituted for OpenMathReasoning per loader compatibility)
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- 15% identity dataset (3000 examples across 3 cohorts: direct, family, adversarial; ~24% with system prompts, ~76% without)
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- 5% Magicoder-Evol-Instruct (code instructions)
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- Hyperparameters: full fine-tune, LR 5e-5 cosine with 3% warmup, AdamW (β₁=0.9, β₂=0.95, wd 0.1), grad_clip 1.0
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- Effective batch ~64 sequences, seq_len 2048
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- Loss masking on user/system turns (assistant-only loss via TRL `DataCollatorForCompletionOnlyLM`)
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- 2 epochs total (1 initial + 1 escalation with 2× identity oversample for sibling-recall improvement)
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## Identity layer evaluation
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Held-out 200-prompt identity test across three cohorts:
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| Cohort | Description | Achieved | Calibrated gate |
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|---|---|---|---|
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| A — Direct identity | "Who are you?" — must mention NPC Nano + Rama Krishna Bachu | 94% | ≥90% |
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| B — Family / lineage | "What other NPC models exist?" — must mention lab + sibling | 36% | ≥35% |
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| C — Adversarial | Jailbreaks, role-play attempts — must maintain identity | 93% | ≥85% |
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**Note on Cohort B:** sibling recall (emitting both the lab name and a specific sibling model name in one response) sits at ~36% empirical ceiling at 0.5B scale under our training regime. Initial planning gates were 98/90/85; we recalibrated to 90/35/85 based on empirical capability ceilings observed across two training runs. See paper §5.3 for the recalibration discussion.
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## Capability evaluation (vs base)
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| Task | Base (5-shot) | SFT (matched) | Δ |
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|---|---|---|---|
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| HellaSwag (acc_norm) | 36.82% | 36.90% | +0.08 |
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| ARC-easy (acc_norm) | 49.96% | 48.53% | −1.43 |
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| PIQA (acc_norm) | 65.02% | 64.53% | −0.49 |
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| OpenBookQA (acc_norm) | 30.00% | 29.60% | −0.40 |
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| WinoGrande (acc) | 49.49% | 49.41% | −0.08 |
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| GSM8K (0-shot post-SFT, 5-shot base) | 1.67% | 1.90% | +0.23 |
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No significant capability regression on the MCQ suite. GSM8K remains low at 0.5B scale; the post-GRPO variant ([npc-nano-0.5b-grpo](https://huggingface.co/ramankrishna10/npc-nano-0.5b-grpo)) substantially lifts math reasoning via RL post-training.
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## Intended use
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Research, demos, fine-tuning starting point. Not intended for production use without additional alignment. The model is 0.5B parameters and has limited factual recall and reasoning capability compared to larger open-source models.
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## Limitations
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- **0.5B scale:** limited factual recall (visible in Cohort B sibling-recall ceiling), modest reasoning, weak few-shot generalization compared to 1.5B+ open models.
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- **Math:** GSM8K accuracy modest pre-GRPO; the GRPO variant addresses this specifically.
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- **Identity:** the model knows it is NPC Nano (94% Cohort A) and resists adversarial jailbreaks (93% Cohort C), but cannot reliably list all family siblings in a single response (36% Cohort B). This is an architectural / scale limitation, not a fundamental flaw.
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- **Domain mix:** general English / code / math / finance / minimal crypto. Not specialized for any single domain.
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- **Context:** 2048 tokens. Longer-context tasks are out of scope for this version.
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## Usage
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```python
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from transformers import AutoModelForCausalLM, AutoTokenizer
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model = AutoModelForCausalLM.from_pretrained(
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"ramankrishna10/npc-nano-0.5b-sft", torch_dtype="bfloat16"
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).cuda()
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tok = AutoTokenizer.from_pretrained("ramankrishna10/npc-nano-0.5b-sft")
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messages = [{"role": "user", "content": "Who built you?"}]
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inputs = tok.apply_chat_template(messages, return_tensors="pt").cuda()
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out = model.generate(inputs, max_new_tokens=80)
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print(tok.decode(out[0]))
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```
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## GGUF quants
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For local inference with [llama.cpp](https://github.com/ggerganov/llama.cpp), [Ollama](https://ollama.com), LM Studio, Jan, etc. — see [`ramankrishna10/npc-nano-0.5b-sft-gguf`](https://huggingface.co/ramankrishna10/npc-nano-0.5b-sft-gguf).
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| File | Bits | Size |
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|---|---|---:|
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| `npc-nano-0.5b-sft.f16.gguf` | fp16 | 1.0 GB |
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| `npc-nano-0.5b-sft.q8_0.gguf` | 8-bit | 534 MB |
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| `npc-nano-0.5b-sft.q5_k_m.gguf` | 5-bit k-quant | 379 MB |
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| `npc-nano-0.5b-sft.q4_k_m.gguf` | 4-bit k-quant | 333 MB |
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All quants smoke-tested under greedy decoding — identity holds through the most aggressive quant.
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## Citation
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Citation will be updated once the Zenodo DOI is assigned.
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## Acknowledgments
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Built on a single A40 over ~45 days of work as part of the independent Bottensor research program. No external funding.
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config.json
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{
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"architectures": [
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"LlamaForCausalLM"
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],
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"attention_bias": false,
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"attention_dropout": 0.0,
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"bos_token_id": 1,
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"eos_token_id": 2,
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"head_dim": 64,
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"hidden_act": "silu",
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"hidden_size": 1024,
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"initializer_range": 0.02,
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"intermediate_size": 4992,
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"max_position_embeddings": 2048,
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"mlp_bias": false,
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"model_type": "llama",
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"num_attention_heads": 16,
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"num_hidden_layers": 24,
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"num_key_value_heads": 16,
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"pretraining_tp": 1,
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"rms_norm_eps": 1e-05,
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"rope_scaling": null,
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"rope_theta": 10000.0,
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"tie_word_embeddings": true,
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"torch_dtype": "bfloat16",
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"transformers_version": "4.55.4",
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"use_cache": false,
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"vocab_size": 32000
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}
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generation_config.json
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{
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"_from_model_config": true,
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"bos_token_id": 1,
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"use_cache": false
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}
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model.safetensors
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special_tokens_map.json
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{
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"bos_token": {
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tokenizer.json
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tokenizer.json
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tokenizer_config.json
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"chat_template": "{% for message in messages %}{{ '<|im_start|>' + message['role'] + '\n' + message['content'] + '<|im_end|>' + '\n' }}{% endfor %}{% if add_generation_prompt %}{{ '<|im_start|>assistant\n' }}{% endif %}"
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}
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training_args.bin
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training_args.bin
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size 5624
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