利用纯强度测量快速重建可编程干涉仪

IF 1.4 4区 物理与天体物理 Q3 OPTICS Laser Physics Letters Pub Date : 2023-12-12 DOI:10.1088/1612-202x/ad0caf
B I Bantysh, A Yu Chernyavskiy, S A Fldzhyan, Yu I Bogdanov
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引用次数: 0

摘要

可编程线性光学干涉仪在经典和量子应用领域大有可为。可编程线性光学干涉仪的集成设计使其有可能制造出更具可扩展性和稳定性的设备。要在实践中使用它们,就必须在考虑制造误差的情况下重建整个设备模型。由于无法解决单个干涉仪元件的问题,重构问题变得更加复杂。一种简单的方法是通过复杂的优化程序来训练模型。最近有人提出了一种更快的免优化算法(Bantysh et al 2023 Opt.)然而,它需要完整的传递矩阵层析成像,而更实用的设置只测量干涉仪输出端的场强。在本文中,我们提出了对快速算法的修改,即使用额外的干涉仪配置集,以便在仅测量强度的情况下重建模型。我们的研究表明,这种算法的性能比原始快速算法稍差,但更实用,而且无需进行大量数值优化。
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Fast reconstruction of programmable interferometers with intensity-only measurements
Programmable linear optical interferometers are promising for classical and quantum applications. Their integrated design makes it possible to create more scalable and stable devices. To use them in practice, one has to reconstruct the whole device model taking the manufacturing errors into account. The inability to address individual interferometer elements complicates the reconstruction problem. A naive approach is to train the model via some complex optimization procedure. A faster optimization-free algorithm has been recently proposed (Bantysh et al 2023 Opt. Express 31 16729–42). However, it requires the full transfer matrix tomography while a more practical setup measures only the fields intensities at the interferometer output. In this paper, we propose the modification of the fast algorithm, which uses additional set of interferometer configurations in order to reconstruct the model in the case of intensity-only measurements. We show that it performs slightly worse than the original fast algorithm but it is more practical and still does not require intensive numerical optimization.
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来源期刊
Laser Physics Letters
Laser Physics Letters 物理-仪器仪表
CiteScore
3.30
自引率
11.80%
发文量
174
审稿时长
2.4 months
期刊介绍: Laser Physics Letters encompasses all aspects of laser physics sciences including, inter alia, spectroscopy, quantum electronics, quantum optics, quantum electrodynamics, nonlinear optics, atom optics, quantum computation, quantum information processing and storage, fiber optics and their applications in chemistry, biology, engineering and medicine. The full list of subject areas covered is as follows: -physics of lasers- fibre optics and fibre lasers- quantum optics and quantum information science- ultrafast optics and strong-field physics- nonlinear optics- physics of cold trapped atoms- laser methods in chemistry, biology, medicine and ecology- laser spectroscopy- novel laser materials and lasers- optics of nanomaterials- interaction of laser radiation with matter- laser interaction with solids- photonics
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