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jzstark committed Mar 11, 2024
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Owl is a dedicated system for scientific and engineering computing. The system is developed in OCaml and licensed under MIT. The project is originated by [Liang Wang](https://liang.ocaml.xyz) and currently led by [Jianxin Zhao](https://jianxin.ocaml.xyz). The history of the project is on the [Wikipedia](https://en.wikipedia.org/wiki/Owl_Scientific_Computing).

## Installation

Please follow the [tutorial](https://ocaml.xyz/tutorial/chapters/introduction.html) about installing Owl.

## Mission

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Each one should take responsibility of certain aspects of the code base, e.g. a module or maintenance for a specific OS platform.
Team members, together with their domain aspects and responsibilities, will be listed here and also on the [Owl website](https://ocaml.xyz/).

For anyone who is willing to contribute, some good starting points could be:
- Participate in discussion in issues, and help to fix them
- Fix [documentations](https://ocaml.xyz/docs/), mainly by changing the `.mli` files in the source code, based on which the documentations are generated
- Fix [tutorials](https://ocaml.xyz/tutorial/); the code could be not runnable, or the content could not display properly
- Add more examples and tests
- Fix issues listed in the [TODO list](https://github.com/orgs/owlbarn/projects/2/views/2)
- Propose to fix/improve anything that interests you during using Owl
- ...

**Current team member:**

- [@jzstark](https://github.com/jzstark): Project leader. Manage overall architecture, roadmap,and tech vision. Community communication. Set research agenda.


- [@ryanrhymes](https://github.com/ryanrhymes): Potential commercialization, business opportunity & funding seeking.

- [@mikhailazaryan](https://github.com/mikhailazaryan)
- [@mseri](https://github.com/mseri): multi-platform installation
- [@patrick-nicodemus](https://github.com/patrick-nicodemus)
- [@Ramiro Checa-Garcia](https://github.com/RCHG)

## Code of Contributing

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Besides these two types of Ndarray, another type is CGraph-Ndarray, which can be used to support symbolic style computing like TensorFlow v1. It facilitate building computation graph and computation optimization.
The CGraph-Ndarray can be built up by wrapping up either of the previous two types of Ndarray, which are used for actual execution of computing.
All three types of Ndarray can be used to support advanced computing modules, including algorithmic differentiation, optimization, and neural networks.
All three types of Ndarray can be used to support advanced computing modules, including algorithmic differentiation, optimization, and neural networks.

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