Photonic Networks-on-Chip Employing Multilevel Signaling: A Cross-Layer Comparative Study

Author:

Karempudi Venkata Sai Praneeth1ORCID,Sunny Febin2,Thakkar Ishan G.1,Chittamuru Sai Vineel Reddy3,Nikdast Mahdi2,Pasricha Sudeep2

Affiliation:

1. Department of Electrical and Computer Engineering, University of Kentucky, Lexington, Kentucky, USA

2. Department of Electrical and Computer Engineering, Colorado State University, Fort Collins, Colorado, USA

3. Micron Technology, Inc., Austin, TX

Abstract

Photonic network-on-chip (PNoC) architectures employ photonic links with dense wavelength-division multiplexing (DWDM) to enable high throughput on-chip transfers. Unfortunately, increasing the DWDM degree (i.e., using a larger number of wavelengths) to achieve a higher aggregated data rate in photonic links and, hence, higher throughput in PNoCs, requires sophisticated and costly laser sources along with extra photonic hardware. This extra hardware can introduce undesired noise to the photonic link and increase the bit error rate (BER), power, and area consumption of PNoCs. To mitigate these issues, the use of 4-pulse amplitude modulation (4-PAM) signaling, instead of the conventional on-off keying (OOK) signaling, can halve the wavelength signals utilized in photonic links for achieving the target aggregate data rate while reducing the overhead of crosstalk noise, BER, and photonic hardware. There are various designs of 4-PAM modulators reported in the literature. For example, the signal superposition (SS)–, electrical digital-to-analog converter (EDAC)–, and optical digital-to-analog converter (ODAC)–based designs of 4-PAM modulators have been reported. However, it is yet to be explored how these SS-, EDAC-, and ODAC-based 4-PAM modulators can be utilized to design DWDM-based photonic links and PNoC architectures. In this article, we provide a systematic analysis of the SS, EDAC, and ODAC types of 4-PAM modulators from prior work with regards to their applicability and utilization overheads. We then present a heuristic-based search method to employ these 4-PAM modulators for designing DWDM-based SS, EDAC, and ODAC types of 4-PAM photonic links with two different design goals: (i) to attain the desired BER of 10 -9 at the expense of higher optical power and lower aggregate data rate and (ii) to attain maximum aggregate data rate with the desired BER of 10 -9 at the expense of longer packet transfer latency. We then employ our designed 4-PAM SS–, 4-PAM EDAC–, 4-PAM ODAC–, and conventional OOK modulator–based photonic links to constitute corresponding variants of the well-known CLOS and SWIFT PNoC architectures. We eventually compare our designed SS-, EDAC-, and ODAC-based variants of 4-PAM links and PNoCs with the conventional OOK links and PNoCs in terms of performance and energy efficiency in the presence of inter-channel crosstalk. From our link-level and PNoC-level evaluation, we have observed that the 4-PAM EDAC–based variants of photonic links and PNoCs exhibit better performance and energy efficiency compared with the OOK-, 4-PAM SS–, and 4-PAM ODAC–based links and PNoCs.

Funder

NSF

Publisher

Association for Computing Machinery (ACM)

Subject

Electrical and Electronic Engineering,Hardware and Architecture,Software

Reference86 articles.

1. PROBE: Prediction-based optical bandwidth scaling for energy-efficient NoCs

2. OPAL: A multi-layer hybrid photonic NoC for 3D ICs

3. METEOR

4. T. Kao and A. Louri. 2016. Design of high bandwidth photonic network-on-chip architectures using optical multilevel signaling. In Proceedings of 10th IEEE/ACM International Symposium on Networks-on-Chip (NOCS’16), Nara, Japan, 1–4.

5. A comb laser-driven DWDM silicon photonic transmitter based on microring modulators

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