Pierpaolo Palestri

dblp:85/4010 · DBLP profile ↗
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7ranked-venue papers
1as first author
3since 2021 · last 2023
0000-0002-1672-1166ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Systems, architecture and hardware · 7 · 1 first-author · 3 since 2021
YearPublicationVenuePosition
2023 A Time-Domain Simulation Framework for the Modeling of Jitter in High-Speed Serial Interfaces
abstract
We report on the development of a time-domain numerical modeling framework to estimate timing jitter in High-Speed Serial Interfaces (HSSI) including a wide range of effects such as Inter-Symbol Interference (ISI) due to channel dispersion, phase noise of transmitter (TX) and receiver (RX) frequency synthesizers and use of bang-bang phase detector in the Clock and Data Recovery (CDR) loop. Based on the step response of the channel, the numerical model computes the response of the system to a random sequence of bits and provides information in terms of eye diagram, bathtub plot and jitter histogram. Different definitions of jitter are investigated, and for each of them we consider the physical effects that are included, eventually identifying that the most complete definition is based on the time distance between the edges instants defined by the CDR and the crossing points of the sampled signal. We also found that this definition is consistent with the features of the bathtub plot. A channel compliant with the PCIe 4.0 standard is used as test vehicle, including the main equalization strategies. The numerical model is then compared to a simple analytical model for the CDR jitter that can be augmented by including Data-Dependent Jitter (DDJ). An approach to system-level analysis based on proper combination of the above elements is eventually proposed to provide quick although accurate aid to the design of CDRs in HSSIs.
Alessio Cortiula, Davide Menin, Andrea Bandiziol, Werner Grollitsch, Roberto Nonis, Pierpaolo Palestri
IEEE Trans. Circuits Syst. I Regul. Pap.6
2021 A Fully Integrated 5-mW, 0.8-Gbps Energy-Efficient Chip-to-Chip Data Link for Ultralow-Power IoT End-Nodes in 65-nm CMOS
abstract
The increasing complexity of Internet-of-Things (IoT) applications and near-sensor processing algorithms is pushing the computational power of low-power, battery-operated end-node systems. This trend also reveals growing demands for high-speed and energy-efficient inter-chip communications to manage the increasing amount of data coming from off-chip sensors and memories. While traditional microcontroller interfaces such as SPIs cannot cope with tight energy and large bandwidth requirements, low-voltage swing transceivers can tackle this challenge, thanks to their capability to achieve several Gbps of the communication speed at milliwatt power levels. However, recent research on high-speed serial links focused on high-performance systems, with a power consumption significantly larger than the one of low-power IoT end-nodes, or on stand-alone designs not integrated at a system level. This article presents a low-swing transceiver for the energy-efficient and low-power chip-to-chip communication fully integrated within an IoT end-node system-on-chip, fabricated in CMOS 65-nm technology. The transceiver can be easily controlled via a software interface; thus, we can consider realistic scenarios for the data communication, which cannot be assessed in stand-alone prototypes. Chip measurements show that the transceiver achieves$8.46\times $higher energy efficiency at$15.9\times $higher performance than a traditional microcontroller interface such as a single-SPI.
Hayate Okuhara, Ahmed Elnaqib, Martino Dazzi, Pierpaolo Palestri, Simone Benatti, Luca Benini, Davide Rossi 0001
IEEE Trans. Very Large Scale Integr. Syst.4
2021 Analytical Modeling of Jitter in Bang-Bang CDR Circuits Featuring Phase Interpolation
abstract
This article proposes compact expressions for the jitter in clock and data recovery (CDR) circuits based on bang-bang phase detector including the phase noise of the transmitter and receiver oscillators as well as the quantization noise associated with the finite number of phases of the phase interpolator (PI) that align the receiver clock to the incoming data. Different approaches to perform the Early/Late detection on deserialized data and edge samples are compared: the use of majority voting degrades the CDR bandwidth, increasing the impact of the clock jitter on the CDR jitter; on the other hand, counting the single Early/Late occurrences does not degrade the bandwidth but increases the noise related to the finite phases of the PI. The proposed analytical formulas are validated against event-driven behavioral simulations of the CDR system including free-running oscillators as well as phase-locked loop (PLL) for clock generation.
Pierpaolo Palestri, Ahmed Elnaqib, Davide Menin, Klaid Shyti, Francesco Brandonisio, Andrea Bandiziol, Davide Rossi 0001, Roberto Nonis
IEEE Trans. Very Large Scale Integr. Syst.1
2020 An Energy-Efficient Low-Voltage Swing Transceiver for mW-Range IoT End-Nodes
abstract
As the Internet-of-Things (IoT) applications become more and more pervasive, IoT end nodes are requiring more and more computational power within a few mW of power envelope, coupled with high-speed and energy-efficient inter-chip communication to deal with the growing input/output and memory bandwidth for emerging near-sensor analytics applications. While traditional interfaces such as SPI cannot cope with these tight requirements, low-voltage swing transceivers can tackle this challenge thanks to their capability to achieve several Gbps of bandwidth at extremely low power. However, recent research on high-speed serial links addressed this challenge only partially, proposing only partial or stand-alone designs, and not addressing their integration in real systems and the related implications. In this paper, we present for the first time a complete design and system-level architecture of a low-voltage swing transceiver integrated within a low-power (mW range) IoT end-node processors, and we compare it with existing microcontroller interfaces. The transceiver, implemented in a commercial 65-nm CMOS technology achieves 10.2× higher energy efficiency at 15.7× higher performance than traditional microcontroller peripherals (single lane).
Hayate Okuhara, Ahmed Elnaqib, Davide Rossi 0001, Alfio Di Mauro, Philipp Mayer, Pierpaolo Palestri, Luca Benini
ISCAS6
2018 Design of a half-rate receiver for a 10Gbps automotive serial interface with 1-tap-unrolled 4-taps DFE and custom CDR algorithm
abstract
Robust and reliable operation of high-speed serial interfaces (HSSI) in automotive environment is challenging. In this paper, we present the analysis and design of a 10Gbps receiver with 4-taps decision feedback equalizer (DFE) with 1-tap unrolled. A novel clock-and-data-recovery (CDR) algorithm is presented to consistently deal with the combined effect of Inter-Symbol Interference (ISI) and DFE on data transitions. The receiver, designed with a 28nm technology, consumes 2.05mW/Gbps and post-layout simulations are reported to show the advantage of the proposed architecture.
Andrea Bandiziol, Werner Grollitsch, Francesco Brandonisio, Matteo Bassi, Roberto Nonis, Pierpaolo Palestri
ISCAS6
2018 Sub-mW multi-Gbps chip-to-chip communication Links for Ultra-Low Power IoT end-nodes
abstract
We report on the design of the physical layer of a high-speed serial interface for chip-to-chip communication, targeting low cost and ultra-low power (mW) IoT end-nodes. Two differential lanes (one pair per direction) are used to transmit/receive NRZ symbols at 1Gpbs with embedded clock. The energy-per-bit is lower than 1pJ/bit, thanks to a careful selection of termination impedance and voltage swing, tuned for moderate speed and short distance (2cm). The transceiver is designed to tolerate significant clock jitter, so that it can work with a half-rate clock shared with the rest of the chip, thereby minimizing area and power of supporting circuitry.
Martino Dazzi, Pierpaolo Palestri, Davide Rossi 0001, Andrea Bandiziol, Igor Loi, David E. Bellasi, Luca Benini
ISCAS2
2008 Design of UWB LNA in 45nm CMOS technology: Planar bulk vs. FinFET
abstract
This paper describes the design of a single-stage differential low noise amplifier (LNA) for ultra wide band(UWB) applications, implemented in state of the art Planar and FinFET 45 nm CMOS technologies. A gm-boosted topology has been chosen and the LNA has been designed to work over the whole UWB band (3.1 - 10.6 GHz), while driving a capacitive load. The simulations highlight that, at the present stage of the technology development, the Planar version of the LNA outperforms the FinFET one thanks to the superior cutoff frequency fTof Planar devices in the inversion region, achieving comparable Noise Figure and voltage gain, but consuming less power.
Davide Ponton, Pierpaolo Palestri, David Esseni, Luca Selmi, Marc Tiebout, Bertrand Parvais, Gerhard Knoblinger
ISCAS2