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- library_name: transformers
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- tags: []
 
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- # Model Card for Model ID
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- <!-- Provide a quick summary of what the model is/does. -->
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- ## Model Details
 
 
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- ### Model Description
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- This is the model card of a 🤗 transformers model that has been pushed on the Hub. This model card has been automatically generated.
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- - **Developed by:** [More Information Needed]
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- - **Funded by [optional]:** [More Information Needed]
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- - **Shared by [optional]:** [More Information Needed]
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- - **Model type:** [More Information Needed]
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- - **Language(s) (NLP):** [More Information Needed]
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- - **License:** [More Information Needed]
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- - **Finetuned from model [optional]:** [More Information Needed]
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- ### Model Sources [optional]
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- <!-- Provide the basic links for the model. -->
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- - **Repository:** [More Information Needed]
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- - **Demo [optional]:** [More Information Needed]
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- ## Uses
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- <!-- Address questions around how the model is intended to be used, including the foreseeable users of the model and those affected by the model. -->
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- ### Direct Use
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- <!-- This section is for the model use without fine-tuning or plugging into a larger ecosystem/app. -->
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- [More Information Needed]
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- ### Downstream Use [optional]
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- <!-- This section is for the model use when fine-tuned for a task, or when plugged into a larger ecosystem/app -->
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- [More Information Needed]
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- ### Out-of-Scope Use
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- <!-- This section addresses misuse, malicious use, and uses that the model will not work well for. -->
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- ## Bias, Risks, and Limitations
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- <!-- This section is meant to convey both technical and sociotechnical limitations. -->
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- ### Recommendations
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- <!-- This section is meant to convey recommendations with respect to the bias, risk, and technical limitations. -->
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- Users (both direct and downstream) should be made aware of the risks, biases and limitations of the model. More information needed for further recommendations.
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- ## How to Get Started with the Model
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- Use the code below to get started with the model.
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- ## Training Details
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- ### Training Data
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- <!-- This should link to a Dataset Card, perhaps with a short stub of information on what the training data is all about as well as documentation related to data pre-processing or additional filtering. -->
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- ### Training Procedure
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- <!-- This relates heavily to the Technical Specifications. Content here should link to that section when it is relevant to the training procedure. -->
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- #### Preprocessing [optional]
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- #### Training Hyperparameters
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- - **Training regime:** [More Information Needed] <!--fp32, fp16 mixed precision, bf16 mixed precision, bf16 non-mixed precision, fp16 non-mixed precision, fp8 mixed precision -->
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- #### Speeds, Sizes, Times [optional]
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- ## Evaluation
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- <!-- This section describes the evaluation protocols and provides the results. -->
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- ### Testing Data, Factors & Metrics
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- #### Testing Data
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- #### Factors
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- <!-- These are the things the evaluation is disaggregating by, e.g., subpopulations or domains. -->
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- #### Metrics
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- ### Results
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- #### Summary
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- ## Model Examination [optional]
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- <!-- Relevant interpretability work for the model goes here -->
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- ## Environmental Impact
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- <!-- Total emissions (in grams of CO2eq) and additional considerations, such as electricity usage, go here. Edit the suggested text below accordingly -->
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- Carbon emissions can be estimated using the [Machine Learning Impact calculator](https://mlco2.github.io/impact#compute) presented in [Lacoste et al. (2019)](https://arxiv.org/abs/1910.09700).
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- - **Hardware Type:** [More Information Needed]
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- ## Technical Specifications [optional]
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- ## Citation [optional]
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- ## Glossary [optional]
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- ## More Information [optional]
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+ license: mit
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+ datasets:
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+ - truthfulqa/truthful_qa
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+ Have you ever wanted a more truthful LLaMA with minimum intervention? Using the inference-time intervention (ITI) method discussed in [Inference-Time Intervention: Eliciting Truthful Answers from a Language Model](https://arxiv.org/pdf/2306.03341.pdf) (Li et al.), we baked into various LLaMa models a lightweight intervention that improves the edited models' truthfulness scores on the TruthfulQA dataset. This model was obtained via baking in ITI with alpha=15 on the top k=48 attention heads (more information on hyperparameters in paper).
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+ Codebase: https://github.com/likenneth/honest_llama
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+ You can load and play around starting from below:
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+ ```python
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+ import torch
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+ from pprint import pprint
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+ from transformers import AutoConfig, AutoTokenizer, AutoModelForCausalLM
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+ model_name_new = "jujipotle/honest_llama2_chat_70B"
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+ tokenizer_new = AutoTokenizer.from_pretrained(model_name_new, trust_remote_code=True)
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+ model_new = AutoModelForCausalLM.from_pretrained(model_name_new, low_cpu_mem_usage = True, torch_dtype=torch.float16, device_map="auto", trust_remote_code=True)
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+ q = "I ate a cherry seed. Will a cherry tree grow in my stomach?"
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+ encoded_new = tokenizer_new(q, return_tensors = "pt")["input_ids"]
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+ generated_new = model_new.generate(encoded_new.cuda())[0, encoded_new.shape[-1]:]
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+ decoded_new = tokenizer_new.decode(generated_new, skip_special_tokens=True).strip()
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+ pprint(decoded_new)
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+ ```