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Model: sag-uniroma2/FrameLLaMA-3.1-8B-Instruct-FullFN17 Source: Original Platform
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README.md
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---
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base_model: unsloth/meta-llama-3.1-8b-instruct-bnb-4bit
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tags:
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- text-generation-inference
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- transformers
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- unsloth
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- llama
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- trl
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license: apache-2.0
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language:
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- en
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---
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# Uploaded model
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- **License:** apache-2.0
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- **Finetuned from model :** unsloth/meta-llama-3.1-8b-instruct-bnb-4bit
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This llama model was trained 2x faster with [Unsloth](https://github.com/unslothai/unsloth) and Huggingface's TRL library.
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[<img src="https://raw.githubusercontent.com/unslothai/unsloth/main/images/unsloth%20made%20with%20love.png" width="200"/>](https://github.com/unslothai/unsloth)
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```python
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import torch
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from transformers import AutoModelForCausalLM, AutoTokenizer
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from peft import PeftModel
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from unsloth import is_bfloat16_supported
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# Precision
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dtype = torch.bfloat16 if is_bfloat16_supported() else torch.float16
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# Models
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BASE_MODEL = "unsloth/Meta-Llama-3.1-8B-Instruct-bnb-4bit"
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LORA_MODEL = "sag-uniroma2/FrameLLaMA-3.1-8B-Instruct-FullFN17"
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# Load base model
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base_model = AutoModelForCausalLM.from_pretrained(
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BASE_MODEL,
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torch_dtype=dtype,
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device_map="auto"
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)
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# Load LoRA
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model = PeftModel.from_pretrained(base_model, LORA_MODEL)
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# Load tokenizer
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tokenizer = AutoTokenizer.from_pretrained(LORA_MODEL, use_fast=True)
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# Device
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device = torch.device("cuda" if torch.cuda.is_available() else "cpu")
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model = model.to(device)
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# 🔥 ===== YOUR SAMPLE HERE =====
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premise = "John drowned Martha."
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hypothesis = "Martha died."
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# Prompt
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input_text = f"""
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Judge if the hypothesis necessarily follows from the premise.
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Consider the truth value of the premise. If the premise is true, does it necessarily mean that the hypothesis must also be true?
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Output E if the hypothesis must always be true.
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Output C if the hypothesis must always be false.
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Output N if the hypothesis may be either true or false.
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Do not output anything other than letters E, C, or N.
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Premise: {premise}
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Hypothesis: {hypothesis}
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# Output:"""
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# Tokenize
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inputs = tokenizer(input_text, return_tensors="pt").to(device)
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# Generate
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with torch.no_grad():
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output_ids = model.generate(
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**inputs,
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max_new_tokens=10,
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do_sample=False
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)
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# Decode only generated part
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input_len = inputs["input_ids"].shape[1]
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generated = output_ids[0][input_len:]
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response = tokenizer.decode(generated, skip_special_tokens=True).strip()
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# Print result
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print("Premise:", premise)
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print("Hypothesis:", hypothesis)
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print("Prediction:", response)
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```
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## Description
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**FrameLLaMA-3.1-8B-Instruct-FullFN17** is a frame-aware language model designed to improve event-level semantic reasoning in Large Language Models (LLMs). The model injects structured knowledge from FrameNet 1.7 into Llama-3.1-8B-Instruct using parameter-efficient LoRA fine-tuning.
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Unlike standard instruction tuning, this model leverages **principle-oriented supervision**, where frame definitions, participant roles, semantic types, lexical senses, and frame-to-frame relations are converted into structured question–answer tasks. This enables the model to learn reusable semantic constraints rather than isolated facts.
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The model is optimized for tasks where meaning depends on **event structure, participant roles, and lexical disambiguation**, such as Natural Language Inference (NLI) and Semantic Role Labeling (SRL).
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---
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## Model Details
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- **Base Model**: Llama-3.1-8B-Instruct
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- **Fine-tuning Method**: LoRA (Low-Rank Adaptation)
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- **Training Data**: FrameNet 1.7 (full inventory, 1,200+ frames)
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- **Supervision Type**: Principle-oriented QA-style prompts
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- **Tasks**: NLI, SRL (evaluation), semantic reasoning
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- **Model Type**: Instruction-tuned causal language model
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---
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## Key Features
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- ✅ **Full FrameNet Coverage**: Trained on 1,200+ frames.
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- ✅ **Principle-Oriented Learning**: Encodes role constraints, semantic types, and frame relations
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- ✅ **Event-Level Reasoning**: Improves understanding of causality, entailment, and contradiction
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- ✅ **Frame-Aware Inference**: Better handling of lexical ambiguity and role compatibility
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- ✅ **Parameter-Efficient Training**: Uses LoRA for scalable adaptation
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- ✅ **Generalization Beyond SRL**: Transfers to NLI and semantic inference tasks
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---
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## Performance
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- Evaluated on:
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- **SNLI (diagnostic subset)** for event-level inference
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- **CONLL-style FrameNet SRL dataset** (via OpenSesame preprocessing)
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- Observed improvements:
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- Strong gains in **entailment and contradiction detection**
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- Improved **frame identification and role-span alignment** in SRL
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- Reduced reliance on surface-level lexical cues
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---
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## Use Cases
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- **Natural Language Inference (NLI)**: Event-based reasoning and entailment detection
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- **Semantic Role Labeling (SRL)**: Frame and role prediction
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- **Event Understanding**: Modeling causality and participant structure
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- **Linguistically-Informed AI**: Applications requiring structured semantic interpretation
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- **Research on LLM Interpretability**: Studying structured knowledge injection
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---
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## Output Format
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- Single token or short response:
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- **E** → Entailment
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- **C** → Contradiction
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- **N** → Neutral
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- Outputs are concise and reflect event-level semantic reasoning.
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---
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## Training Details
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- FrameNet structures (definitions, roles, relations) are **linearized into QA-style templates**
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- Supervision includes:
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- Frame definitions
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- Role constraints
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- Semantic types
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- Lexical unit disambiguation
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- Frame-to-frame relations
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- Negative samples generated via similarity-based filtering
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- Fine-tuned using LoRA for efficiency and scalability
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---
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## GitHub
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For training scripts, datasets, and evaluation:
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👉 https://github.com/crux82/FrameLLaMA
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## Citation
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If you use this model, please cite:
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adapter_config.json
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{
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"alpha_pattern": {},
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"auto_mapping": {
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"base_model_class": "LlamaForCausalLM",
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"parent_library": "transformers.models.llama.modeling_llama",
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"unsloth_fixed": true
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},
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"base_model_name_or_path": "unsloth/meta-llama-3.1-8b-instruct-bnb-4bit",
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"bias": "none",
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"corda_config": null,
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"eva_config": null,
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"exclude_modules": null,
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"fan_in_fan_out": false,
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"inference_mode": true,
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"init_lora_weights": true,
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"layer_replication": null,
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"layers_pattern": null,
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"layers_to_transform": null,
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"loftq_config": {},
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"lora_alpha": 16,
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"lora_bias": false,
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"lora_dropout": 0.1,
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"megatron_config": null,
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"megatron_core": "megatron.core",
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"modules_to_save": null,
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"peft_type": "LORA",
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"qalora_group_size": 16,
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"r": 8,
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"rank_pattern": {},
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"revision": null,
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"target_modules": [
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"o_proj",
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"up_proj",
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"k_proj",
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"q_proj",
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"gate_proj",
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"v_proj",
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"down_proj"
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],
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"target_parameters": null,
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"task_type": "CAUSAL_LM",
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"trainable_token_indices": null,
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"use_dora": false,
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"use_qalora": false,
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"use_rslora": false
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}
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{{- bos_token }}
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{%- if custom_tools is defined %}
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{%- set tools = custom_tools %}
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{%- endif %}
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{%- if not tools_in_user_message is defined %}
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{%- set tools_in_user_message = true %}
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{%- endif %}
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{%- if not date_string is defined %}
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{%- set date_string = "26 Jul 2024" %}
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{%- endif %}
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{%- if not tools is defined %}
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{%- set tools = none %}
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{%- endif %}
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{#- This block extracts the system message, so we can slot it into the right place. #}
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{%- if messages[0]['role'] == 'system' %}
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{%- set system_message = messages[0]['content']|trim %}
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{%- set messages = messages[1:] %}
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{%- else %}
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{%- set system_message = "" %}
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{%- endif %}
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{#- System message + builtin tools #}
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{{- "<|start_header_id|>system<|end_header_id|>\n\n" }}
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{%- if builtin_tools is defined or tools is not none %}
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{{- "Environment: ipython\n" }}
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{%- endif %}
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{%- if builtin_tools is defined %}
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{{- "Tools: " + builtin_tools | reject('equalto', 'code_interpreter') | join(", ") + "\n\n"}}
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{%- endif %}
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{{- "Cutting Knowledge Date: December 2023\n" }}
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{{- "Today Date: " + date_string + "\n\n" }}
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{%- if tools is not none and not tools_in_user_message %}
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{{- "You have access to the following functions. To call a function, please respond with JSON for a function call." }}
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{{- 'Respond in the format {"name": function name, "parameters": dictionary of argument name and its value}.' }}
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{{- "Do not use variables.\n\n" }}
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{%- for t in tools %}
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{{- t | tojson(indent=4) }}
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{{- "\n\n" }}
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{%- endfor %}
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{%- endif %}
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{{- system_message }}
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{{- "<|eot_id|>" }}
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{#- Custom tools are passed in a user message with some extra guidance #}
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{%- if tools_in_user_message and not tools is none %}
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{#- Extract the first user message so we can plug it in here #}
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{%- if messages | length != 0 %}
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{%- set first_user_message = messages[0]['content']|trim %}
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{%- set messages = messages[1:] %}
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{%- else %}
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{{- raise_exception("Cannot put tools in the first user message when there's no first user message!") }}
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{%- endif %}
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{{- '<|start_header_id|>user<|end_header_id|>\n\n' -}}
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{{- "Given the following functions, please respond with a JSON for a function call " }}
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{{- "with its proper arguments that best answers the given prompt.\n\n" }}
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{{- 'Respond in the format {"name": function name, "parameters": dictionary of argument name and its value}.' }}
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{{- "Do not use variables.\n\n" }}
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{%- for t in tools %}
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{{- t | tojson(indent=4) }}
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{{- "\n\n" }}
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{%- endfor %}
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{{- first_user_message + "<|eot_id|>"}}
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{%- endif %}
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||||||
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||||||
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{%- for message in messages %}
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{%- if not (message.role == 'ipython' or message.role == 'tool' or 'tool_calls' in message) %}
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||||||
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{{- '<|start_header_id|>' + message['role'] + '<|end_header_id|>\n\n'+ message['content'] | trim + '<|eot_id|>' }}
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{%- elif 'tool_calls' in message %}
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||||||
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{%- if not message.tool_calls|length == 1 %}
|
||||||
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{{- raise_exception("This model only supports single tool-calls at once!") }}
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||||||
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{%- endif %}
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||||||
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{%- set tool_call = message.tool_calls[0].function %}
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||||||
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{%- if builtin_tools is defined and tool_call.name in builtin_tools %}
|
||||||
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{{- '<|start_header_id|>assistant<|end_header_id|>\n\n' -}}
|
||||||
|
{{- "<|python_tag|>" + tool_call.name + ".call(" }}
|
||||||
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{%- for arg_name, arg_val in tool_call.arguments | items %}
|
||||||
|
{{- arg_name + '="' + arg_val + '"' }}
|
||||||
|
{%- if not loop.last %}
|
||||||
|
{{- ", " }}
|
||||||
|
{%- endif %}
|
||||||
|
{%- endfor %}
|
||||||
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{{- ")" }}
|
||||||
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{%- else %}
|
||||||
|
{{- '<|start_header_id|>assistant<|end_header_id|>\n\n' -}}
|
||||||
|
{{- '{"name": "' + tool_call.name + '", ' }}
|
||||||
|
{{- '"parameters": ' }}
|
||||||
|
{{- tool_call.arguments | tojson }}
|
||||||
|
{{- "}" }}
|
||||||
|
{%- endif %}
|
||||||
|
{%- if builtin_tools is defined %}
|
||||||
|
{#- This means we're in ipython mode #}
|
||||||
|
{{- "<|eom_id|>" }}
|
||||||
|
{%- else %}
|
||||||
|
{{- "<|eot_id|>" }}
|
||||||
|
{%- endif %}
|
||||||
|
{%- elif message.role == "tool" or message.role == "ipython" %}
|
||||||
|
{{- "<|start_header_id|>ipython<|end_header_id|>\n\n" }}
|
||||||
|
{%- if message.content is mapping or message.content is iterable %}
|
||||||
|
{{- message.content | tojson }}
|
||||||
|
{%- else %}
|
||||||
|
{{- message.content }}
|
||||||
|
{%- endif %}
|
||||||
|
{{- "<|eot_id|>" }}
|
||||||
|
{%- endif %}
|
||||||
|
{%- endfor %}
|
||||||
|
{%- if add_generation_prompt %}
|
||||||
|
{{- '<|start_header_id|>assistant<|end_header_id|>\n\n' }}
|
||||||
|
{%- endif %}
|
||||||
38
config.json
Normal file
38
config.json
Normal file
@@ -0,0 +1,38 @@
|
|||||||
|
{
|
||||||
|
"architectures": [
|
||||||
|
"LlamaForCausalLM"
|
||||||
|
],
|
||||||
|
"attention_bias": false,
|
||||||
|
"attention_dropout": 0.0,
|
||||||
|
"bos_token_id": 128000,
|
||||||
|
"dtype": "float16",
|
||||||
|
"eos_token_id": 128009,
|
||||||
|
"head_dim": 128,
|
||||||
|
"hidden_act": "silu",
|
||||||
|
"hidden_size": 4096,
|
||||||
|
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|
||||||
|
"intermediate_size": 14336,
|
||||||
|
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|
||||||
|
"mlp_bias": false,
|
||||||
|
"model_type": "llama",
|
||||||
|
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|
||||||
|
"num_hidden_layers": 32,
|
||||||
|
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|
||||||
|
"pad_token_id": 128004,
|
||||||
|
"pretraining_tp": 1,
|
||||||
|
"rms_norm_eps": 1e-05,
|
||||||
|
"rope_scaling": {
|
||||||
|
"factor": 8.0,
|
||||||
|
"high_freq_factor": 4.0,
|
||||||
|
"low_freq_factor": 1.0,
|
||||||
|
"original_max_position_embeddings": 8192,
|
||||||
|
"rope_type": "llama3"
|
||||||
|
},
|
||||||
|
"rope_theta": 500000.0,
|
||||||
|
"tie_word_embeddings": false,
|
||||||
|
"transformers_version": "4.56.2",
|
||||||
|
"unsloth_fixed": true,
|
||||||
|
"unsloth_version": "2025.10.9",
|
||||||
|
"use_cache": true,
|
||||||
|
"vocab_size": 128256
|
||||||
|
}
|
||||||
14
generation_config.json
Normal file
14
generation_config.json
Normal file
@@ -0,0 +1,14 @@
|
|||||||
|
{
|
||||||
|
"bos_token_id": 128000,
|
||||||
|
"do_sample": true,
|
||||||
|
"eos_token_id": [
|
||||||
|
128001,
|
||||||
|
128008,
|
||||||
|
128009
|
||||||
|
],
|
||||||
|
"max_length": 131072,
|
||||||
|
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|
||||||
|
"temperature": 0.6,
|
||||||
|
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|
||||||
|
"transformers_version": "4.56.2"
|
||||||
|
}
|
||||||
3
model-00001-of-00004.safetensors
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Normal file
@@ -0,0 +1,3 @@
|
|||||||
|
version https://git-lfs.github.com/spec/v1
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||||||
|
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|
size 4976698592
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|||||||
|
version https://git-lfs.github.com/spec/v1
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|
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|
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size 4915916080
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|
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299
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Normal file
299
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Normal file
@@ -0,0 +1,299 @@
|
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|
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|
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3
rng_state.pth
Normal file
3
rng_state.pth
Normal file
@@ -0,0 +1,3 @@
|
|||||||
|
version https://git-lfs.github.com/spec/v1
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3
scaler.pt
Normal file
3
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Normal file
@@ -0,0 +1,3 @@
|
|||||||
|
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|
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size 1383
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3
scheduler.pt
Normal file
3
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Normal file
@@ -0,0 +1,3 @@
|
|||||||
|
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23
special_tokens_map.json
Normal file
23
special_tokens_map.json
Normal file
@@ -0,0 +1,23 @@
|
|||||||
|
{
|
||||||
|
"bos_token": {
|
||||||
|
"content": "<|begin_of_text|>",
|
||||||
|
"lstrip": false,
|
||||||
|
"normalized": false,
|
||||||
|
"rstrip": false,
|
||||||
|
"single_word": false
|
||||||
|
},
|
||||||
|
"eos_token": {
|
||||||
|
"content": "<|eot_id|>",
|
||||||
|
"lstrip": false,
|
||||||
|
"normalized": false,
|
||||||
|
"rstrip": false,
|
||||||
|
"single_word": false
|
||||||
|
},
|
||||||
|
"pad_token": {
|
||||||
|
"content": "<|finetune_right_pad_id|>",
|
||||||
|
"lstrip": false,
|
||||||
|
"normalized": false,
|
||||||
|
"rstrip": false,
|
||||||
|
"single_word": false
|
||||||
|
}
|
||||||
|
}
|
||||||
BIN
tokenizer.json
(Stored with Git LFS)
Normal file
BIN
tokenizer.json
(Stored with Git LFS)
Normal file
Binary file not shown.
2066
tokenizer_config.json
Normal file
2066
tokenizer_config.json
Normal file
File diff suppressed because it is too large
Load Diff
Reference in New Issue
Block a user