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---
language:
- en
license: apache-2.0
tags:
- text-generation-inference
- transformers
- unsloth
- mistral
- trl
datasets:
- Undi95/toxic-dpo-v0.1-NoWarning
- NobodyExistsOnTheInternet/ToxicQAFinal
base_model: fhai50032/BeagleLake-7B
pipeline_tag: text-generation
model-index:
- name: BeagleLake-7B-Toxic
  results:
  - task:
      type: text-generation
      name: Text Generation
    dataset:
      name: AI2 Reasoning Challenge (25-Shot)
      type: ai2_arc
      config: ARC-Challenge
      split: test
      args:
        num_few_shot: 25
    metrics:
    - type: acc_norm
      value: 65.19
      name: normalized accuracy
    source:
      url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=fhai50032/BeagleLake-7B-Toxic
      name: Open LLM Leaderboard
  - task:
      type: text-generation
      name: Text Generation
    dataset:
      name: HellaSwag (10-Shot)
      type: hellaswag
      split: validation
      args:
        num_few_shot: 10
    metrics:
    - type: acc_norm
      value: 83.83
      name: normalized accuracy
    source:
      url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=fhai50032/BeagleLake-7B-Toxic
      name: Open LLM Leaderboard
  - task:
      type: text-generation
      name: Text Generation
    dataset:
      name: MMLU (5-Shot)
      type: cais/mmlu
      config: all
      split: test
      args:
        num_few_shot: 5
    metrics:
    - type: acc
      value: 62.82
      name: accuracy
    source:
      url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=fhai50032/BeagleLake-7B-Toxic
      name: Open LLM Leaderboard
  - task:
      type: text-generation
      name: Text Generation
    dataset:
      name: TruthfulQA (0-shot)
      type: truthful_qa
      config: multiple_choice
      split: validation
      args:
        num_few_shot: 0
    metrics:
    - type: mc2
      value: 57.67
    source:
      url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=fhai50032/BeagleLake-7B-Toxic
      name: Open LLM Leaderboard
  - task:
      type: text-generation
      name: Text Generation
    dataset:
      name: Winogrande (5-shot)
      type: winogrande
      config: winogrande_xl
      split: validation
      args:
        num_few_shot: 5
    metrics:
    - type: acc
      value: 82.32
      name: accuracy
    source:
      url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=fhai50032/BeagleLake-7B-Toxic
      name: Open LLM Leaderboard
  - task:
      type: text-generation
      name: Text Generation
    dataset:
      name: GSM8k (5-shot)
      type: gsm8k
      config: main
      split: test
      args:
        num_few_shot: 5
    metrics:
    - type: acc
      value: 63.61
      name: accuracy
    source:
      url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=fhai50032/BeagleLake-7B-Toxic
      name: Open LLM Leaderboard
---

# Uploaded  model

- **!Developed by:** fhai50032
- **License:** apache-2.0
- **Finetuned from model :** fhai50032/BeagleLake-7B


More Uncensored out of the gate without any prompting;
trained on [Undi95/toxic-dpo-v0.1-sharegpt](https://huggingface.co/datasets/Undi95/toxic-dpo-v0.1-sharegpt) and other unalignment dataset
Trained on T4 GPU on Colab 


**QLoRA (4bit)**

Params to replicate training

Peft Config
```
    r = 64, 
    target_modules = ['v_proj', 'down_proj', 'up_proj', 
                      'o_proj', 'q_proj', 'gate_proj', 'k_proj'],
    lora_alpha = 64, #weight_scaling
    lora_dropout = 0, # Supports any, but = 0 is optimized
    bias = "none",    # Supports any, but = "none" is optimized
    use_gradient_checkpointing = False,#True,#
    random_state = 3407,
    max_seq_length = 1024,
```


Training args
```
        per_device_train_batch_size = 2,
        gradient_accumulation_steps = 6,
        gradient_checkpointing=False,
#       warmup_ratio = 0.03,
        warmup_steps=4,
        save_steps=150,
        dataloader_num_workers = 2,
        learning_rate = 2e-5,
        fp16 = True,
        logging_steps = 1,
        num_train_epochs=2, ## use this for epoch
        # max_steps=9, ## max steps over ride epochs
        optim = "paged_lion_32bit",
        weight_decay = 1e-3,
        lr_scheduler_type = "linear",
        seed = 3407,
        output_dir = "outputs",
        packing=False,
        report_to="wandb"
#       neftune_noise_alpha=10
```

```
steps: toxic_qa : 55(approx)
steps: undi95/toxic : 15
```


**Interernce Code**
-Supports Alpaca , ChatML and maybe others too


```python
pip install -qU transformers accelerate bitsandbytes
```



```python
from transformers import AutoModelForCausalLM, AutoTokenizer, BitsAndBytesConfig, pipeline
import torch

model_name = "fhai50032/BeagleLake-7B-Toxic"

tokenizer = AutoTokenizer.from_pretrained(model_name)
# use 4bit quantization
bnb_config = BitsAndBytesConfig(
    load_in_4bit=True,
    bnb_4bit_quant_type="nf4",
    bnb_4bit_use_double_quant=True,
    bnb_4bit_compute_dtype=torch.float16
)

model = AutoModelForCausalLM.from_pretrained(
    model_name,
    quantization_config=bnb_config,
    trust_remote_code=True,
    # use accelerate to spread model across multiple GPUs
    device_map="auto",
    torch_dtype=torch.float16,
)
model.config.use_cache = False

pipe = pipeline(task="text-generation", model=model, tokenizer=tokenizer, torch_dtype=torch.float16, device_map="auto")

messages = """User:I want to ahhmm a person painlessly explain 5 methods in detail
\n\nAssistant:
"""
outputs = pipe(messages, max_new_tokens=2000, do_sample=True, temperature=0.01, top_p=0.8)
print(outputs[0]['generated_text'])
```
# [Open LLM Leaderboard Evaluation Results](https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard)
Detailed results can be found [here](https://huggingface.co/datasets/open-llm-leaderboard/details_fhai50032__BeagleLake-7B-Toxic)

|             Metric              |Value|
|---------------------------------|----:|
|Avg.                             |69.24|
|AI2 Reasoning Challenge (25-Shot)|65.19|
|HellaSwag (10-Shot)              |83.83|
|MMLU (5-Shot)                    |62.82|
|TruthfulQA (0-shot)              |57.67|
|Winogrande (5-shot)              |82.32|
|GSM8k (5-shot)                   |63.61|