|  | --- | 
					
						
						|  | license: unlicense | 
					
						
						|  | language: | 
					
						
						|  | - en | 
					
						
						|  | library_name: keras | 
					
						
						|  | tags: | 
					
						
						|  | - captcha | 
					
						
						|  | - keras | 
					
						
						|  | - ocr | 
					
						
						|  | - ai captcha solving | 
					
						
						|  | --- | 
					
						
						|  | # Model Card for Model ID | 
					
						
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						|  | <!-- Provide a quick summary of what the model is/does. --> | 
					
						
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						|  | This modelcard aims to be a base template for new models. It has been generated using [this raw template](https://github.com/huggingface/huggingface_hub/blob/main/src/huggingface_hub/templates/modelcard_template.md?plain=1). | 
					
						
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						|  | ## Model Details | 
					
						
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						|  | ### Model Description | 
					
						
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						|  | <!-- Provide a longer summary of what this model is. --> | 
					
						
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						|  | - **Developed by:** [Ashish Chaudhary aka lolcod] | 
					
						
						|  | - **Funded by [optional]:** [More Information Needed] | 
					
						
						|  | - **Shared by [optional]:** [More Information Needed] | 
					
						
						|  | - **Model type:** [More Information Needed] | 
					
						
						|  | - **Language(s) (NLP):** [More Information Needed] | 
					
						
						|  | - **License:** [More Information Needed] | 
					
						
						|  | - **Finetuned from model [optional]:** [More Information Needed] | 
					
						
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						|  | ### Model Sources [optional] | 
					
						
						|  |  | 
					
						
						|  | <!-- Provide the basic links for the model. --> | 
					
						
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						|  | - **Repository:** [https://github.com/lol-cod/solvingcaptchakeras] | 
					
						
						|  | - **Paper [optional]:** [More Information Needed] | 
					
						
						|  | - **Demo [optional]:** [More Information Needed] | 
					
						
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						|  | Direct Use | 
					
						
						|  | The model is designed for solving 4-lettered captchas with an 80% accuracy rate. It can be directly employed for captcha-solving tasks without the need for fine-tuning or integration into a larger ecosystem or application. | 
					
						
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						|  | Downstream Use [optional] | 
					
						
						|  | [More Information Needed] | 
					
						
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						|  | Out-of-Scope Use | 
					
						
						|  | The model is not intended for tasks beyond solving 4-lettered captchas. It may not perform well on captchas with a different format or on tasks unrelated to captcha-solving. | 
					
						
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						|  | Bias, Risks, and Limitations | 
					
						
						|  | The model's performance may vary based on the complexity and variability of captchas. It may not generalize well to captchas with different characteristics or lengths. Additionally, there is a risk of misclassification, leading to incorrect solutions. The model might be sensitive to changes in background, font styles, or other captcha variations. | 
					
						
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						|  | Recommendations | 
					
						
						|  | Users, both direct and downstream, should be aware of the model's limitations and potential biases. It is recommended to assess the performance on a diverse set of captchas to understand the model's capabilities and shortcomings. | 
					
						
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						|  | How to Get Started with the Model | 
					
						
						|  | To use the model, you can leverage the following code: | 
					
						
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						|  | python | 
					
						
						|  | Copy code | 
					
						
						|  | # Sample code for using the captcha-solving model | 
					
						
						|  | import keras | 
					
						
						|  | from keras.models import load_model | 
					
						
						|  | from captcha_solver import solve_captcha | 
					
						
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						|  | # Load the pre-trained model | 
					
						
						|  | model = load_model('captcha_model.h5') | 
					
						
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						|  | # Provide the captcha image as input | 
					
						
						|  | captcha_image = 'path/to/your/captcha.png' | 
					
						
						|  | solution = solve_captcha(model, captcha_image) | 
					
						
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						|  | # Print the solution | 
					
						
						|  | print('Captcha Solution:', solution) | 
					
						
						|  | [More Information Needed] | 
					
						
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						|  | Training Details | 
					
						
						|  | Training Data | 
					
						
						|  | The model was trained on a dataset of 4-lettered captchas. For more detailed information about the training data, refer to the accompanying Dataset Card. | 
					
						
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						|  | [More Information Needed] | 
					
						
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						|  | Training Procedure | 
					
						
						|  | Preprocessing [optional] | 
					
						
						|  | [More Information Needed] | 
					
						
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						|  | Training Hyperparameters | 
					
						
						|  | Training regime: [More Information Needed] <!--fp32, fp16 mixed precision, bf16 mixed precision, bf16 non-mixed precision, fp16 non-mixed precision, fp8 mixed precision --> | 
					
						
						|  | [More Information Needed] | 
					
						
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						|  | Speeds, Sizes, Times [optional] | 
					
						
						|  | [More Information Needed] | 
					
						
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						|  | Evaluation | 
					
						
						|  | [More Information Needed] | 
					
						
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						|  | <!-- This section describes the evaluation protocols and provides the results. --> | 
					
						
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						|  | ### Testing Data, Factors & Metrics | 
					
						
						|  |  | 
					
						
						|  | #### 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 | 
					
						
						|  |  | 
					
						
						|  | <!-- 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 | 
					
						
						|  |  | 
					
						
						|  | <!-- 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] | 
					
						
						|  |  | 
					
						
						|  | <!-- Relevant interpretability work for the model goes here --> | 
					
						
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						|  | [More Information Needed] | 
					
						
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						|  | ## Environmental Impact | 
					
						
						|  |  | 
					
						
						|  | <!-- 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] | 
					
						
						|  | - **Hours used:** [More Information Needed] | 
					
						
						|  | - **Cloud Provider:** [More Information Needed] | 
					
						
						|  | - **Compute Region:** [More Information Needed] | 
					
						
						|  | - **Carbon Emitted:** [More Information Needed] | 
					
						
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						|  | ## Technical Specifications [optional] | 
					
						
						|  |  | 
					
						
						|  | ### Model Architecture and Objective | 
					
						
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						|  | [More Information Needed] | 
					
						
						|  |  | 
					
						
						|  | ### Compute Infrastructure | 
					
						
						|  |  | 
					
						
						|  | [More Information Needed] | 
					
						
						|  |  | 
					
						
						|  | #### Hardware | 
					
						
						|  |  | 
					
						
						|  | [More Information Needed] | 
					
						
						|  |  | 
					
						
						|  | #### Software | 
					
						
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						|  | [More Information Needed] | 
					
						
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						|  | ## Citation [optional] | 
					
						
						|  |  | 
					
						
						|  | <!-- If there is a paper or blog post introducing the model, the APA and Bibtex information for that should go in this section. --> | 
					
						
						|  |  | 
					
						
						|  | **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] | 
					
						
						|  |  | 
					
						
						|  | <!-- If relevant, include terms and calculations in this section that can help readers understand the model or model card. --> | 
					
						
						|  |  | 
					
						
						|  | [More Information Needed] | 
					
						
						|  |  | 
					
						
						|  | ## More Information [optional] | 
					
						
						|  |  | 
					
						
						|  | [More Information Needed] | 
					
						
						|  |  | 
					
						
						|  | ## Model Card Authors [optional] | 
					
						
						|  |  | 
					
						
						|  | [More Information Needed] | 
					
						
						|  |  | 
					
						
						|  | ## Model Card Contact | 
					
						
						|  |  | 
					
						
						|  | [More Information Needed] | 
					
						
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