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chore(model gallery): 🤖 add new models via gallery agent
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gallery/index.yaml

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- filename: Orca-Agent-v0.1.i1-Q4_K_M.gguf
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sha256: 05548385128da98431f812d1b6bc3f1bff007a56a312dc98d9111b5fb51e1751
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uri: huggingface://mradermacher/Orca-Agent-v0.1-i1-GGUF/Orca-Agent-v0.1.i1-Q4_K_M.gguf
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- !!merge <<: *qwen3
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name: "spiral-qwen3-4b-multi-env"
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urls:
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- https://huggingface.co/mradermacher/Spiral-Qwen3-4B-Multi-Env-GGUF
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description: |
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**Model Name:** Spiral-Qwen3-4B-Multi-Env
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**Base Model:** Qwen3-4B (fine-tuned variant)
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**Repository:** [spiral-rl/Spiral-Qwen3-4B-Multi-Env](https://huggingface.co/spiral-rl/Spiral-Qwen3-4B-Multi-Env)
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**Quantized Version:** Available via GGUF (by mradermacher)
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---
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### 📌 Description:
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Spiral-Qwen3-4B-Multi-Env is a fine-tuned, instruction-optimized version of the Qwen3-4B language model, specifically enhanced for multi-environment reasoning and complex task execution. Built upon the foundational Qwen3-4B architecture, this model demonstrates strong performance in coding, logical reasoning, and domain-specific problem-solving across diverse environments.
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The model was developed by **spiral-rl**, with contributions from the community, and is designed to support advanced, real-world applications requiring robust reasoning, adaptability, and structured output generation. It is optimized for use in constrained environments, making it ideal for edge deployment and low-latency inference.
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---
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### 🔧 Key Features:
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- **Architecture:** Qwen3-4B (Decoder-only, Transformer-based)
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- **Fine-tuned For:** Multi-environment reasoning, instruction following, and complex task automation
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- **Language Support:** English (primary), with strong multilingual capability
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- **Model Size:** 4 billion parameters
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- **Training Data:** Proprietary and public datasets focused on reasoning, coding, and task planning
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- **Use Case:** Ideal for agent-based systems, automated workflows, and intelligent decision-making in dynamic environments
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---
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### 📦 Availability:
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While the original base model is hosted at `spiral-rl/Spiral-Qwen3-4B-Multi-Env`, a **quantized GGUF version** is available for efficient inference on consumer hardware:
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- **Repository:** [mradermacher/Spiral-Qwen3-4B-Multi-Env-GGUF](https://huggingface.co/mradermacher/Spiral-Qwen3-4B-Multi-Env-GGUF)
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- **Quantizations:** Q2_K to Q8_0 (including IQ4_XS), f16, and Q4_K_M recommended for balance of speed and quality
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---
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### 💡 Ideal For:
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- Local AI agents
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- Edge deployment
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- Code generation and debugging
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- Multi-step task planning
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- Research in low-resource reasoning systems
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---
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> ✅ **Note:** The model card above reflects the *original, unquantized base model*. The quantized version (GGUF) is optimized for performance but may have minor quality trade-offs. For full fidelity, use the base model with full precision.
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overrides:
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parameters:
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model: Spiral-Qwen3-4B-Multi-Env.Q4_K_M.gguf
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files:
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- filename: Spiral-Qwen3-4B-Multi-Env.Q4_K_M.gguf
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sha256: e91914c18cb91f2a3ef96d8e62a18b595dd6c24fad901dea639e714bc7443b09
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uri: huggingface://mradermacher/Spiral-Qwen3-4B-Multi-Env-GGUF/Spiral-Qwen3-4B-Multi-Env.Q4_K_M.gguf

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