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Equivalency-processing parallel photonic integrated circuit (EP3IC): equivalence search module based on

A Detofsky1, P Y Choo, A Louri

  • 1Department of Electrical and Computer Engineering, the University of Arizona, Tucson, Arizona 85721, USA.

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|March 14, 2008
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We developed a new photonic integrated circuit for high-speed parallel equivalence searches, enabling rapid database word searches. This technology offers significant processing speeds and advantages over traditional methods.

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Area of Science:

  • Optoelectronics
  • Integrated Photonics
  • Computer Science

Background:

  • Database word searches require high-speed processing capabilities.
  • Current methods face limitations in speed and efficiency for large datasets.

Purpose of the Study:

  • To introduce a novel optoelectronic module for high-speed parallel equivalence searches.
  • To leverage photonic integrated circuit technology for enhanced data processing.

Main Methods:

  • Development of the equivalency-processing parallel photonic integrated circuit (EP(3)IC).
  • Integration of a parallel-computation model with multiwavelength photonic integrated-circuit technology.
  • Theoretical design and simulation of the monolithic module.

Main Results:

  • The EP(3)IC module enables single-step, multicomparand, word-parallel, bit-parallel equality searches.
  • Attained an aggregate processing speed of 82 Tbit/s through simulation and analytical computation.
  • Demonstrated advantages including low power, fast switching, compact footprint, and manufacturing ease compared to bulk-optics.

Conclusions:

  • The EP(3)IC offers a powerful solution for high-speed parallel equivalence searches.
  • Photonic integrated circuits provide a viable platform for advanced data processing applications.
  • This technology promises significant advancements in database searching and related computational tasks.