155 lines
4.3 KiB
Markdown
155 lines
4.3 KiB
Markdown
---
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language:
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- hi
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- en
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license: apache-2.0
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tags:
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- fine-tuned
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- gguf
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- hindi
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- india
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- instruction-tuned
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- llama.cpp
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- ollama
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- quantized
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- qwen3
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base_model: pankajpandey-dev/Qwen3-0.6B-Hindi-Instruct-v1
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pipeline_tag: text-generation
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base_model_relation: quantized
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---
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> ⚠️ **Note:** This 0.6B version is undertrained and does not reliably follow Hindi instructions. For a working Hindi model, please use **[Qwen3-4B-Hindi-Instruct-v2](https://huggingface.co/pankajpandey-dev/Qwen3-4B-Hindi-Instruct-v2)** ([GGUF here](https://huggingface.co/pankajpandey-dev/Qwen3-4B-Hindi-Instruct-v2-GGUF)).
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---
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# Qwen3-0.6B Hindi Instruct v1 — GGUF
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The smallest Hindi-capable instruction model you can run locally — fits in 370MB, runs on any laptop, no GPU needed.
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Fine-tuned from Qwen/Qwen3-0.6B on English to Hindi instruction pairs.
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Quantized to GGUF for local inference with llama.cpp, LM Studio, and Ollama.
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---
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## Quick Start
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Download the model using huggingface-cli:
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huggingface-cli download pankajpandey-dev/Qwen3-0.6B-Hindi-Instruct-v1-GGUF Qwen3-0.6B-Hindi-v1-Q4_K_M.gguf --local-dir .
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Run with llama.cpp:
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./llama-cli -m Qwen3-0.6B-Hindi-v1-Q4_K_M.gguf -p "भारत की राजधानी क्या है?" -n 256
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Or open directly in LM Studio — New Model — Search pankajpandey-dev
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---
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## Available Versions
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| File | Quantization | Size | RAM Needed | Best For |
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|------|-------------|------|-----------|---------|
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| Qwen3-0.6B-Hindi-v1-Q2_K.gguf | Q2_K | 0.28 GB | 1 GB | Minimum hardware |
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| Qwen3-0.6B-Hindi-v1-Q4_K_M.gguf | Q4_K_M | 0.37 GB | 1.5 GB | Recommended |
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| Qwen3-0.6B-Hindi-v1-Q5_K_M.gguf | Q5_K_M | 0.41 GB | 2 GB | Better quality |
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| Qwen3-0.6B-Hindi-v1-Q8_0.gguf | Q8_0 | 0.60 GB | 2.5 GB | Highest quality |
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Not sure which to pick? Always start with Q4_K_M — best balance of speed, size, and quality.
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---
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## Model Details
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| Property | Value |
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|----------|-------|
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| Base Model | Qwen/Qwen3-0.6B |
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| Parameters | 600M |
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| Architecture | Qwen2 — fully supported by llama.cpp |
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| Fine-tune Method | QLoRA with LoRA r=16 alpha=16 |
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| Training Steps | 60 steps |
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| Training Data | 2000 English to Hindi instruction pairs |
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| Max Context | 2048 tokens |
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| Languages | Hindi and English |
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| License | Apache 2.0 — commercial use allowed |
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---
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## Example Prompts
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Hindi Question Answering:
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User: भारत की राजधानी क्या है?
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Model: भारत की राजधानी नई दिल्ली है।
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Hindi Instructions:
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User: मुझे चाय बनाने का तरीका बताओ।
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Model: चाय बनाने के लिए पहले पानी गरम करें...
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Mixed Language:
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User: Python में for loop कैसे लिखते हैं?
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Model: Python में for loop इस तरह लिखते हैं...
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---
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## Compatibility
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| Tool | Status |
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|------|--------|
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| llama.cpp | Full support |
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| LM Studio | Full support |
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| Ollama | Full support |
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| Jan | Full support |
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| Open WebUI | Full support |
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---
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## Recommended Settings
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Temperature: 0.7
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Top-P: 0.9
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Top-K: 40
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Repeat Penalty: 1.1
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Context Length: 2048
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---
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## Why This Model?
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- Tiny — 370MB, one of the smallest Hindi-capable GGUF models available
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- Fast — runs fully on CPU, no GPU required
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- Hindi-first — specifically trained for Hindi instruction following
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- Open — Apache 2.0, free for personal and commercial use
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- Actively maintained — v2 coming soon with more data
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---
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## Roadmap
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- Done: v1 — Base Hindi fine-tune on Qwen3-0.6B
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- Next: v2 — 10x larger dataset, improved Hindi fluency
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- Next: v3 — better instruction following
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- Next: Qwen3-1.7B-Hindi — bigger model, same niche
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- Next: Live demo Space on HuggingFace
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---
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## Related Repos
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| Repo | Description |
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|------|-------------|
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| pankajpandey-dev/Qwen3-0.6B-Hindi-Instruct-v1 | Full precision model in safetensors format |
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| pankajpandey-dev/Qwen3-0.6B-Hindi-Instruct-v1-GGUF | This repo — GGUF quantized versions |
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---
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## About the Author
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Made by pankajpandey-dev
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Building open-source Hindi AI models for India
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Follow for weekly model updates and new Hindi LLM releases.
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Found this useful? Please like this repo — it helps other Hindi speakers find it.
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