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--- |
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tags: |
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- autotrain |
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- text-generation |
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- text-generation-inference |
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- peft |
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- llama-3 |
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- finance |
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- crypto |
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- agents |
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- workflow-automation |
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- soul-ai |
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library_name: transformers |
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base_model: meta-llama/Llama-3.1-8B |
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license: other |
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widget: |
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- text: "Ask me something about AI agents or crypto." |
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- text: "What kind of automation can LLMs perform?" |
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--- |
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# 🧠 CryptoAI — Llama 3.1 Fine-Tuned for Finance & Autonomous Agents |
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**CryptoAI** is a purpose-tuned LLM based on Meta's Llama 3.1–8B, trained on domain-specific data focused on **financial logic**, **LLM agent workflows**, and **automated task generation**. Designed to power on-chain AI agents, it's part of the broader CryptoAI ecosystem for monetized intelligence. |
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--- |
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## 📂 Dataset Summary |
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This model was fine-tuned on over 10,000+ instruction-style samples simulating: |
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- Financial queries and tokenomics reasoning |
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- LLM-agent interaction patterns |
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- Crypto automation logic |
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- DeFi, trading signals, news interpretation |
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- Smart contract and API-triggered tasks |
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- Natural language prompts for dynamic workflow creation |
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The format follows a custom instruction-based structure optimized for reasoning tasks and agentic workflows—not just casual conversation. |
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--- |
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See our Docs page for more info: docs.soulai.info |
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## 💻 Usage (via Transformers) |
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```python |
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from transformers import AutoModelForCausalLM, AutoTokenizer |
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model_path = "YOUR_HF_USERNAME/YOUR_MODEL_NAME" |
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tokenizer = AutoTokenizer.from_pretrained(model_path) |
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model = AutoModelForCausalLM.from_pretrained( |
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model_path, |
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device_map="auto", |
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torch_dtype="auto" |
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).eval() |
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messages = [{"role": "user", "content": "How do autonomous LLM agents work?"}] |
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input_ids = tokenizer.apply_chat_template( |
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conversation=messages, |
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tokenize=True, |
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add_generation_prompt=True, |
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return_tensors="pt" |
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) |
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output_ids = model.generate(input_ids.to("cuda"), max_new_tokens=256) |
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response = tokenizer.decode(output_ids[0][input_ids.shape[1]:], skip_special_tokens=True) |
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print(response) |
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--- |
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``` |
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🛠️ Hugging Face Inference API |
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Use it via API for quick tasks: |
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bash |
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Copy |
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Edit |
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curl https://api-inference.huggingface.co/models/YOUR_HF_USERNAME/YOUR_MODEL_NAME \ |
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-X POST \ |
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-d '{"inputs": "Tell me something about agent-based AI."}' \ |
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-H "Authorization: Bearer YOUR_HF_TOKEN" |
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🧬 Model Details |
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Base Model: Meta-Llama-3.1–8B |
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Tuning Method: PEFT / LoRA |
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Training Platform: 🤗 AutoTrain |
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Optimized For: Conversational logic, chain-of-thought, and agent workflow simulation |
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🔗 CryptoAI Ecosystem Integration |
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CryptoAI is designed to plug into CryptoAI’s decentralized agent network: |
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Deploy agents via Agent Forge |
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Trigger smart contracts or APIs through LLM-generated logic |
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Earn revenue through tokenized usage fees in $SOUL |
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Run tasks autonomously while sharing fees with dataset, model, and node contributors |
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⚙️ Ideal Use Cases |
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Building conversational agent front-ends (chat, Discord, IVR) |
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Automating repetitive financial workflows |
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Simulating DeFi scenarios and logic |
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Teaching agents how to respond to vague, ambiguous tasks with structured outputs |
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Integrating GPT-like intelligence with programmable smart contract logic |
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🔒 License |
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This model is distributed under a restricted "other" license. |
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Use for commercial applications or LLM training requires permission. |
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The base Llama 3 license and Meta's terms still apply. |
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💡 Notes & Limitations |
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Output may vary depending on GPU, prompt phrasing, and context. |
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Not suitable for high-stakes financial decision-making out-of-the-box. |
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Use as a base agent layer with real-time validation or approval loops. |
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📞 Get In Touch |
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Want to build agents with CryptoAI or license the model? |
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💥 Powering the Next Wave of Agentic Intelligence |
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CryptoAI isn't just a chatbot—it's a programmable foundation for monetized, on-chain agent workflows. Train once, deploy forever. |