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Design exploration and verification platform, based on high-level modeling and FPGA prototyping, for fast and flexible digital communication in physics experiments

机译:基于高级建模和FPGA原型设计的设计探索和验证平台,用于物理实验中快速灵活的数字通信

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摘要

In many research fields as high energy physics (HEP), astrophysics, nuclear medicine or space engineering with harsh operating conditions, the use of fast and flexible digital communication protocols is becoming more and more important. The possibility to have a smart and tested top-down design flow for the design of a new protocol for control/readout of front-end electronics is very useful. To this aim, and to reduce development time, costs and risks, this paper describes an innovative design/verification flow applied as example case study to a new communication protocol called FF-LYNX. After the description of the main FF-LYNX features, the paper presents: the definition of a parametric SystemC-based Integrated Simulation Environment (ISE) for high-level protocol definition and validation; the set up of figure of merits to drive the design space exploration; the use of ISE for early analysis of the achievable performances when adopting the new communication protocol and its interfaces for a new (or upgraded) physics experiment; the design of VHDL IP cores for the TX and RX protocol interfaces; their implementation on a FPGA-based emulator for functional verification and finally the modification of the FPGA-based emulator for testing the ASIC chipset which implements the rad-tolerant protocol interfaces. For every step, significant results will be shown to underline the usefulness of this design and verification approach that can be applied to any new digital protocol development for smart detectors in physics experiments.
机译:在苛刻的工作条件下的许多研究领域中,例如高能物理(HEP),天体物理学,核医学或太空工程,使用快速灵活的数字通信协议变得越来越重要。拥有智能的,经过测试的自上而下的设计流程来设计用于前端电子设备的控制/读出的新协议的可能性非常有用。为了达到这个目的,并减少开发时间,成本和风险,本文描述了一种创新的设计/验证流程,将其作为案例研究应用到称为FF-LYNX的新通信协议中。在描述了FF-LYNX的主要功能之后,本文提出:定义用于高级协议定义和验证的基于SystemC的参数化集成仿真环境(ISE);功绩图的建立驱动设计空间的探索;当采用新的通信协议及其接口进行新的(或升级的)物理实验时,使用ISE对可实现的性能进行早期分析;用于TX和RX协议接口的VHDL IP核的设计;它们在基于FPGA的仿真器上进行功能验证的实现,最后是对基于FPGA的仿真器的修改,以测试实现耐辐射协议接口的ASIC芯片组。对于每一步,将显示出重要的结果,以强调该设计和验证方法的实用性,该方法可应用于物理实验中用于智能探测器的任何新数字协议开发。

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