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An optimized routing algorithm for the automated assembly of standard multimode ribbon fibers in a full-mesh optical backplane

机译:用于在全网状光背板上自动组装标准多模带状光纤的优化路由算法

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摘要

In this paper a parametric, modular and scalable algorithm allowing a fully automated assembly of a backplane fiber-optic interconnection circuit is presented. This approach guarantees the optimization of the optical fiber routing inside the backplane with respect to specific criteria (i.e. bending power losses), addressing both transmission performance and overall costs issues. Graph theory has been exploited to simplify the complexity of the NxN full-mesh backplane interconnection topology, firstly, into N independent sub-circuits and then, recursively, into a limited number of loops easier to be generated. Afterwards, the proposed algorithm selects a set of geometrical and architectural parameters whose optimization allows to identify the optimal fiber optic routing for each sub-circuit of the backplane. The topological and numerical information provided by the algorithm are then exploited to control a robot which performs the automated assembly of the backplane subcircuits. The proposed routing algorithm can be extended to any array architecture and number of connections thanks to its modularity and scalability. Finally, the algorithm has been exploited for the automated assembly of an 8x8 optical backplane realized with standard multimode (MM) 12-fiber ribbons.
机译:在本文中,提出了一种参数化,模块化和可扩展的算法,该算法可实现底板光纤互连电路的全自动组装。这种方法可确保根据特定标准(即弯曲功率损耗)优化背板内部的光纤路由,从而解决传输性能和总体成本问题。已经利用图论来简化NxN全网状背板互连拓扑的复杂性,首先简化为N个独立的子电路,然后递归地简化为有限数量的易于生成的环路。然后,所提出的算法选择一组几何和建筑参数,通过优化这些参数,可以为底板的每个子电路确定最佳的光纤路由。然后利用算法提供的拓扑和数字信息来控制执行底板子电路自动组装的机器人。由于其模块化和可扩展性,所提出的路由算法可以扩展到任何阵列架构和连接数量。最终,该算法已被用于自动组装由标准多模(MM)12光纤带实现的8x8光学背板。

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