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通过在光子晶格中传播光实现集成随机投影与降维

Integrated random projection and dimensionality reduction by propagating light in photonic lattices.

作者信息

Miri Mohammad-Ali

出版信息

Opt Lett. 2021 Oct 1;46(19):4936-4939. doi: 10.1364/OL.433101.

Abstract

It is proposed that the propagation of light in disordered photonic lattices can be harnessed as a random projection that preserves distances between a set of projected vectors. This mapping is enabled by the complex evolution matrix of a photonic lattice with diagonal disorder, which turns out to be a random complex Gaussian matrix. Thus, by collecting the output light from a random subset of the waveguide channels, one can perform an embedding from a higher- to a lower-dimensional space that respects the Johnson-Lindenstrauss lemma and nearly preserves the Euclidean distances. The distance-preserving random projection through photonic lattices requires intermediate disorder levels that allow diffusive propagation of light. The proposed scheme can be utilized as a simple and powerful integrated dimension reduction stage that can greatly reduce the burden of a subsequent neural computation stage.

摘要

有人提出,光在无序光子晶格中的传播可被用作一种随机投影,该投影能保持一组投影向量之间的距离。这种映射由具有对角无序的光子晶格的复演化矩阵实现,结果表明该矩阵是一个随机复高斯矩阵。因此,通过收集来自波导通道随机子集的输出光,人们可以从高维空间到低维空间进行嵌入,这符合约翰逊 - 林登施特劳斯引理,并且几乎能保持欧几里得距离。通过光子晶格进行的保距随机投影需要中间无序水平,以允许光的扩散传播。所提出的方案可作为一个简单而强大的集成降维阶段,能极大地减轻后续神经计算阶段的负担。

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