Model Card for ThinkingDhenu1-CRSA-India-preview
This is an experimental research preview of a reasoning-augmented climate-smart agriculture (CRSA) model for Indian Agriculture.
Model Details
Developed by | KissanAI (https://kissan.ai) |
Base model | Qwen/Qwen3-4B |
Architecture | Qwen3 decoder-only causal-LM, 32 k context |
Fine-tuning method | Supervised fine-tuning (SFT) via llama-factory |
Languages | Primarily English + technical Indian-agricultural vocabulary |
License | Apache 2.0 (inherits from base model) |
Intended Use
Primary purpose
Assist farmers, agronomists and ag-tech developers with Climate-Resilient and Sustainable Agriculture (CRSA) recommendations tailored to Indian conditions (e.g., APCNF/organic practices, climate-smart cropping, pest IPM, soil/nutrient management).
Direct use examples
- Decision-support micro-service answering agronomic queries.
- Content generation for ag-extension material.
Out-of-scope uses
- Any medical, legal, or financial advice.
- Real-time critical decision making without human validation.
- Disinformation, hateful or extremist content.
Training Data
Dataset | Size | Notes |
---|---|---|
KissanAI/Thinking-climate-100k |
101 k multi-turn dialogues on climate-smart ag topics with thinking tags |
The dataset is synthetic/aligned through “chain-of-thought + answer” format that explicitly separates the model’s private reasoning (<think> … </think>
) from the final answer, reducing chain-of-thought leakage at inference time.
Bias, Risks & Limitations
- May embed agronomic bias toward Indian Natural Farming practices (APCNF).
- Climate data cited is static (2024) – cross-check against latest IMD advisories.
- Still prone to LLM hallucinations; always validate high-stakes advice with qualified professionals.
Citation
@misc{KissanAI2025ThinkingDhenu1,
title = {ThinkingDhenu1-CRSA-India-preview},
author = {KissanAI},
howpublished = {\url{https://huggingface.co/KissanAI/ThinkingDhenu1-CRSA-India-preview}},
year = {2025},
note = {Fine-tuned from Qwen3-4B on Indian climate-smart agriculture data.}
}
Contact
Contact Questions or feedback? Open an issue on the model repo.
Next steps you might consider
- Add private eval numbers.
- Specify dataset licences.
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