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Optimization of multi-gigabit transceivers for high speed data communication links in HEP Experiments

机译:HEP实验中高速数据通信链路多千兆收发器的优化

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The scheme of the data acquisition (DAQ) architecture in High Energy Physics (HEP) experiments consist of data transport from the front-end electronics (FEE) of the online detectors to the readout units (RU), which perform online processing of the data, and then to the data storage for offline analysis. With major upgrades of the Large Hadron Collider (LHC) experiments at CERN, the data transmission rates in the DAQ systems are expected to reach a few TB/sec within the next few years. These high rates are normally associated with the increase in the high-frequency losses, which lead to distortion in the detected signal and degradation of signal integrity. To address this, we have developed an optimization technique of the multi-gigabit transceiver (MGT) and implemented it on the state-of-the-art 20 nm Arria-10 FPGA manufactured by Intel Inc. The setup has been validated for three available high-speed data transmission protocols, namely, GBT, TTC-PON and 10 Gbps Ethernet. The improvement in the signal integrity is gauged by two metrics, the Bit Error Rate (BER) and the Eye Diagram. It is observed that the technique improves the signal integrity and reduces BER. The test results and the improvements in the metrics of signal integrity for different link speeds are presented and discussed.
机译:高能物理(HEP)实验中的数据采集(DAQ)架构的方案由从在线探测器的前端电子设备(费用)到读出单位(RU)的数据传输组成,该数据传输执行在线处理数据然后到脱机分析的数据存储。随着CERN的大型强子撞机(LHC)实验的重大升级,DAQ系统中的数据传输速率预计将在未来几年内达到几个TB / SEC。这些高速率通常与高频损耗的增加相关,这导致检测信号的失真和信号完整性的劣化。为了解决这个问题,我们已经开发了多千兆收发器(MGT)的优化技术,并在由英特尔公司制造的最先进的20 NM Arria-10 FPGA上实现了它。安装程序已被验证为可用高速数据传输协议,即GBT,TTC-PON和10 Gbps以太网。通过两个度量,误码率(BER)和眼图测量信号完整性的改进。观察到该技术改善了信号完整性并减少了BER。提出和讨论了测试结果和信号完整性度量的改进,并讨论。

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