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Knowledge-data-evaluation
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Knowledge-data-evaluation
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# Knowledge-data-evaluation A high-efficiency data management tool designed for analyzing entity relationships and comprehensively evaluating data quality. ## Overview This system leverages advanced algorithms to evaluate data quality across multiple dimensions, including quantity, consistency, and association, providing a clear view of data quality to assist users in optimizing datasets. ## Installation Guide 1. Ensure Python 3.8 or higher is installed. 2. Install ber-base-chinese https://huggingface.co/google-bert/bert-base-chinese 3. Clone the repository and install dependencies: git clone https://github.com/Learning0411/Knowledge-data-evaluation.git ## Configuration Before running the system, you may need to configure the path to your own `bert-base-chinese` model in `similarity_computation.py`. Replace the default path with the path to your local model directory. ## Usage To run the system, you need to prepare your data as triples in a CSV file. Each row in the CSV should represent a triple with three columns: subject, predicate, and object. ## Contribution Guidelines Contributions and pull requests are welcome. Please adhere to the guidelines specified in the CONTRIBUTING.md file. ## Maintainers Principal Developer: Learning0411 gww723 lilinze123 chanjuanzhou wkq8008 same0709 haha123agfd Liusf6416 hankatsufumi yiayg wclftx crimsondde cquptljl 2048kbs