Photonic matrix multiplication lights up photonic accelerator and beyond
Фотонное умножение матриц освещает фотонный акселератор и его перспективы
2022-02-03
SCID: 54.1/k62pgtf5
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Mach-Zehnder interferometerphotonic acceleratorphotonic matrix multiplicationplane light conversionwavelength division multiplexing
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Abstract (AI)
Matrix computation, as a fundamental building block of information processing in science and technology, contributes most of the computational overheads in modern signal processing and artificial intelligence algorithms. Photonic accelerators are designed to accelerate specific categories of computing in the optical domain, especially matrix multiplication, to address the growing demand for computing resources and capacity. Photonic matrix multiplication has much potential to expand the domain of telecommunication, and artificial intelligence benefiting from its superior performance. Recent research in photonic matrix multiplication has flourished and may provide opportunities to develop applications that are unachievable at present by conventional electronic processors. In this review, we first introduce the methods of photonic matrix multiplication, mainly including the plane light conversion method, Mach-Zehnder interferometer method and wavelength division multiplexing method. We also summarize the developmental milestones of photonic matrix multiplication and the related applications. Then, we review their detailed advances in applications to optical signal processing and artificial neural networks in recent years. Finally, we comment on the challenges and perspectives of photonic matrix multiplication and photonic acceleration.
Key Findings
1
Key methods for photonic matrix multiplication include plane light conversion, Mach-Zehnder interferometer networks, and wavelength division multiplexing.
2
Photonic matrix multiplication has been applied to optical signal processing and artificial neural networks, showing notable recent progress in these areas.
3
Photonic matrix multiplication is a promising approach to reduce computational overheads in signal processing and AI by performing matrix operations in the optical domain.
4
Recent research has led to developmental milestones and flourishing advances that enable applications in telecommunications and artificial intelligence beyond current electronic processors.
5
There are significant challenges and open perspectives for photonic matrix multiplication and photonic accelerators that need to be addressed for broader adoption.
Research Object
Photonic matrix multiplication implementations (plane light conversion, Mach–Zehnder interferometer, and wavelength-division multiplexing methods)
Research Subject
Acceleration performance, application potential, and implementation advances of photonic matrix multiplication for photonic accelerators, optical signal processing, and artificial neural networks
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2022-02-03
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