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NTT Group Outlines All-Photonics Network Components and Phased Evolution Strategy

Techzine Global Japan
Overview
NTT Group’s IOWN concept and All-Photonics Network (APN) aim to eliminate bottlenecks from optical-electrical signal conversion, enabling end-to-end photonic data transmission. NTT employs a phased miniaturization approach to bring photonic connectivity closer to computation, currently achieving switch-level connections. The next step, Photonic Electronics Convergence (PEC-2) devices, plans to achieve board-level optical fiber connectivity.
In Depth

Key Findings

The All-Photonics Network (APN), central to NTT Group’s IOWN (Innovative Optical and Wireless Network) concept, aims to entirely eliminate power consumption and latency bottlenecks arising from optical-to-electrical signal conversions. This strategy focuses on maintaining end-to-end data transmission as pure optical signals, with NTT adopting a phased miniaturization approach to physically bring photonic connectivity closer to where computations occur.

Technical / Clinical Details

  • Elimination of Optical-Electrical Conversion: In traditional networks, data transmission involves multiple conversions between optical and electrical signals, which are primary sources of power consumption and latency. APN dramatically improves overall network efficiency by minimizing or entirely eliminating these optical-to-electrical conversions.
  • Phased Miniaturization Approach: NTT’s APN strategy is characterized by ‘phased miniaturization,’ physically bringing photonic connections closer to data processing sites.
    • Current Achievement (Switch-Level): The current APN achieves optical fiber connectivity at the data center switch level. This enables high-speed, low-latency communication between server racks.
    • Next Step (Board-Level: PEC-2): Development of PEC-2 (Photonic Electronics Convergence) devices is underway for the next evolutionary stage. PEC-2 integrates optical and electrical components at the board level, bringing optical fiber connections directly to the board to achieve even lower latency and higher bandwidth.
    • Ultimate Goal (Chip-Level): The ultimate goal is ‘chip-level photonics,’ where optical engines are integrated directly onto processing chips like CPUs and GPUs, aiming to achieve ultimate performance and efficiency.
  • High Capacity, Low Latency, Low Power Consumption: Through these technological advancements, APN delivers terabit-class high-capacity communication, microsecond-level ultra-low latency, and significantly reduced power consumption compared to conventional networks.

Background & Context

The advancements in AI, IoT, 5G, and other technologies are imposing unprecedented data volume and speed demands on data centers and network infrastructure. Relying solely on existing electrical communication technologies makes it challenging to meet these demands and achieve sustainable growth. NTT’s IOWN concept, envisioning the future of such a digital society, aims to innovate the entire digital infrastructure by maximizing the utilization of optical technology. Specifically, end-to-end optical transmission via APN holds crucial significance for addressing data center power consumption issues and enabling real-time applications.

Strategic Significance & Outlook

NTT’s APN strategy will play a significant role in shaping the future of digital infrastructure. The board-level integration of PEC-2 devices, and ultimately the realization of chip-level photonics, will enable new breakthroughs in various fields such as AI computing, quantum communication, and smart cities. The evolution of this technology demonstrates Japan’s potential to lead global communication technology, and further acceleration is expected through international standardization and collaborations with other companies. Improved energy efficiency will also contribute to realizing a sustainable society.

Source: https://www.techzine.eu/blogs/infrastructure/143644/what-are-the-components-of-an-all-photonics-network/

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