Create README.md
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README.md
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---
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license: mit
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language:
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- en
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pretty_name: Logolens Industeries for Logo Classification
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size_categories:
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- n<1K
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---
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# Dataset Name: LogoLens Industries
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## Dataset Summary
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The `logolens-industries` dataset provides a comprehensive classification of industries based on the Global Industry Classification Standard (GICS). This dataset is designed for tasks such as industry-specific logo analysis, branding research, and AI-based categorization of visual or textual elements.
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- **Version**: 1.0.0
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- **Homepage**: [Hugging Face Dataset Page](https://huggingface.co/datasets/tiny-factories/logolens-industries)
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- **License**: MIT
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---
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## Supported Tasks and Use Cases
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This dataset can be used for:
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- **Classification**: Categorize logos, companies, or products into industries and subcategories.
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- **Analysis**: Identify trends in specific industry segments.
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- **Prediction**: Train AI models to predict industry association based on input data.
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---
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## Dataset Structure
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The dataset consists of a flattened structure for better usability, including the following fields:
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| Field | Type | Description | Example |
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|---------------------|---------------|---------------------------------------------------------------------|-------------------------------------|
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| `name` | `string` | Name of the industry. | "Energy" |
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| `description` | `string` | Brief description of the industry. | "Companies involved in energy..." |
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| `subcategories` | `list[string]`| Subcategories within the industry. | "Energy Equipment & Services..." |
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| `code` | `string` | Industry code (if available). | "10" |
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| `geographical_scope`| `string` | The geographical scope of the industry (e.g., global or regional). | "Global" |
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---
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## Example Rows
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### Example 1: Energy Industry
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```json
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{
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"name": "Energy",
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"description": "Companies involved in energy equipment and services, oil, gas, and consumable fuels",
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"subcategories": "Energy Equipment & Services, Oil, Gas & Consumable Fuels, Renewable Energy Equipment, Energy Storage",
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"code": "10",
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"geographical_scope": "Global"
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}
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```
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### Example 2: Information Technology
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```json
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{
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"name": "Information Technology",
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"description": "Companies that develop or distribute technological products and services",
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"subcategories": "Software & Services, Technology Hardware & Equipment, Semiconductors",
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"code": "45",
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"geographical_scope": "Global"
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}
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```
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---
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## Usage
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Here’s how to load and use the dataset with the Hugging Face `datasets` library:
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```python
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from datasets import load_dataset
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# Load the dataset
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dataset = load_dataset("tiny-factories/logolens-industries")
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# View a sample
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print(dataset["train"][0])
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```
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---
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## Dataset Creation
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This dataset was created by curating industry classifications based on GICS standards. The descriptions and subcategories were verified to ensure alignment with real-world industry use cases.
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---
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## Considerations for Use
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- **Biases**: This dataset is based on GICS classifications, which may not represent all industries globally.
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- **Limitations**: Industry descriptions may overlap, and subcategories could vary based on different classification systems.
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---
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## Citation
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```bibtex
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@misc{logolens-industries,
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author = {gndclouds},
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title = {LogoLens Industries Dataset},
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year = {2024}
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}
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```
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---
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## License
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This dataset is licensed under the MIT License.
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