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[Codegen](https://huggingface.co/Salesforce/codegen-16B-mono) is a model for conversational program synthesis, where each problem is interactively solved in multiple steps, each consisting of a natural language specification from the user and a synthesized subprogram from the system. 

It was sequentially trained on three datasets:
- [The Pile](https://huggingface.co/datasets/the_pile)
- A 341GB subset of Google’s [BigQuery dataset](https://cloud.google.com/blog/topics/public-datasets/github-on-bigquery-analyze-all-the-open-source-code) of code files from multiple programming languages, keeping only 6: C, C++, Go, Java, JavaScript, and Python 
- 217GB of Python data from GitHub repositories 

The second and third datasets used the following preprocessing:
- Exact match deduplication 
- Filtering:
    - Exact match deduplication 
    - Average line length < 100 tokens
    - Maximum line length < 1000 MB
    - Characters being decimal or hexadecimal digits >90%