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library_name: transformers
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# Model Card for
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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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- **Repository:** [
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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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[More Information Needed]
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### Downstream Use
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[More Information Needed]
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### Out-of-Scope Use
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[More Information Needed]
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## Bias, Risks, and Limitations
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[More Information Needed]
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### Recommendations
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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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[More Information Needed]
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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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[More Information Needed]
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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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[More Information Needed]
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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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<!-- This section provides information about throughput, start/end time, checkpoint size if relevant, etc. -->
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[More Information Needed]
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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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<!-- This should link to a Dataset Card if possible. -->
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[More Information Needed]
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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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[More Information Needed]
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#### Metrics
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<!-- These are the evaluation metrics being used, ideally with a description of why. -->
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[More Information Needed]
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### Results
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[More Information Needed]
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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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[More Information Needed]
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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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- **Hours used:** [More Information Needed]
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- **Cloud Provider:** [More Information Needed]
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- **Compute Region:** [More Information Needed]
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- **Carbon Emitted:** [More Information Needed]
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## Technical Specifications [optional]
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### Model Architecture and Objective
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[More Information Needed]
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### Compute Infrastructure
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[More Information Needed]
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#### Hardware
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[More Information Needed]
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#### Software
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## Citation [optional]
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<!-- If there is a paper or blog post introducing the model, the APA and Bibtex information for that should go in this section. -->
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**BibTeX:**
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[More Information Needed]
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**APA:**
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[More Information Needed]
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## Glossary [optional]
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<!-- If relevant, include terms and calculations in this section that can help readers understand the model or model card. -->
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[More Information Needed]
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## More Information [optional]
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[More Information Needed]
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## Model Card Authors [optional]
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[More Information Needed]
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library_name: transformers
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tags: ['sentiment-analysis', 'distilbert', 'imdb']
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# Model Card for DistilBERT IMDb Sentiment Analysis
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## Model Details
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### Model Description
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This DistilBERT model has been fine-tuned for sentiment analysis on the IMDb dataset. It is designed to be lightweight and efficient, making it suitable for deployment on low-end PCs and machines. The model can accurately classify movie reviews as positive or negative.
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- **Developed by:** Saiffff
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- **Model type:** DistilBERT for Sequence Classification
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- **Language(s) (NLP):** English
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- **License:** Apache-2.0
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- **Finetuned from model:** [distilbert-base-uncased](https://huggingface.co/distilbert-base-uncased)
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### Model Sources
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- **Repository:** [Link to your repository on Hugging Face](https://huggingface.co/saiffff/distilbert-imdb-sentiment)
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- **Demo:** [Link to demo if available]
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## Uses
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### Direct Use
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This model can be used directly for sentiment analysis on English text data, particularly movie reviews.
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### Downstream Use
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The model can be fine-tuned further for other sentiment analysis tasks or integrated into larger applications requiring sentiment classification.
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### Out-of-Scope Use
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This model is not suitable for non-English text or tasks unrelated to sentiment analysis.
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## Bias, Risks, and Limitations
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While the model performs well on the IMDb dataset, it may have biases related to the data it was trained on. It might not generalize well to other domains or nuanced sentiment contexts.
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### Recommendations
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Users should be aware of the model's limitations and biases. Testing the model on a variety of inputs is recommended to understand its behavior and performance across different scenarios.
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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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```python
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from transformers import pipeline
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classifier = pipeline("sentiment-analysis", model="saiffff/distilbert-imdb-sentiment")
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result = classifier("This movie was fantastic! I loved every moment of it.")
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print(result)
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