Array programming with NumPy
Программирование массивов с использованием NumPy
2020-09-16
SCID: 54.1/j8rv9mjv
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NumPyarray interoperabilityarray programmingmultidimensional arraysscientific Python ecosystem
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Abstract (AI)
Abstract Array programming provides a powerful, compact and expressive syntax for accessing, manipulating and operating on data in vectors, matrices and higher-dimensional arrays. NumPy is the primary array programming library for the Python language. It has an essential role in research analysis pipelines in fields as diverse as physics, chemistry, astronomy, geoscience, biology, psychology, materials science, engineering, finance and economics. For example, in astronomy, NumPy was an important part of the software stack used in the discovery of gravitational waves 1 and in the first imaging of a black hole 2 . Here we review how a few fundamental array concepts lead to a simple and powerful programming paradigm for organizing, exploring and analysing scientific data. NumPy is the foundation upon which the scientific Python ecosystem is constructed. It is so pervasive that several projects, targeting audiences with specialized needs, have developed their own NumPy-like interfaces and array objects. Owing to its central position in the ecosystem, NumPy increasingly acts as an interoperability layer between such array computation libraries and, together with its application programming interface (API), provides a flexible framework to support the next decade of scientific and industrial analysis.
Key Findings
1
Array programming provides a compact, expressive paradigm for accessing, manipulating, and analyzing vectors, matrices, and higher-dimensional scientific data.
2
NumPy forms the foundation of the scientific Python ecosystem, enabling reusable workflows for organizing, exploring, and analyzing scientific data.
3
NumPy has contributed to major scientific achievements, including gravitational-wave discovery software and the first black-hole imaging software stack.
4
NumPy increasingly serves as an interoperability layer among specialized array-computation libraries, with its API providing a flexible framework for future scientific and industrial analysis.
5
NumPy is the primary array-programming library for Python and is broadly used across disciplines including physics, chemistry, astronomy, biology, engineering, finance, and economics.
Research Object
NumPy array programming library for the Python language
Research Subject
The fundamental array concepts, expressive data-manipulation capabilities, ecosystem role, and interoperability provided by NumPy
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2020-09-16
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References available in scid.ai5
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PyTorch: An Imperative Style, High-Performance Deep Learning Library2019
Observation of Gravitational Waves from a Binary Black Hole Merger2016
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Data Structures for Statistical Computing in Python2010
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