Title :
An Evolved GSM/EDGE Baseband ASIC Supporting Rx Diversity
Author :
Kroll, Harald ; Zwicky, Stefan ; Weber, Benjamin ; Roth, Christoph ; Tschopp, David ; Benkeser, Christian ; Burg, Andreas ; Qiuting Huang
Author_Institution :
IIS, ETH Zurich, Zurich, Switzerland
fDate :
7/1/2015 12:00:00 AM
Abstract :
In this paper, a baseband ASIC which supports receive diversity and soft-output Viterbi equalization for enhanced 2G networks is presented. It includes a transmitter and receiver with a symbol detector and a decoder with a dedicated incremental redundancy implementation, as well as the necessary control capability to autonomously communicate with the RF-IC. The ASIC is connected to an RF-IC to build a complete Evolved EDGE transceiver system. The transceiver system reaches a measured sensitivity close to -112 dBm for single-antenna GSM voice channels and achieves the reference interference performance for adjacent channels 11.4 dB above 3GPP requirements. It is the first reported solution which fulfills the most demanding 3GPP Downlink Advanced Receive Performance Phase 2 testcases specified for Rx-diversity. The ASIC occupies 6 mm 2 in 130 nm CMOS with a power consumption between 3.9 and 14 mW.
Keywords :
CMOS digital integrated circuits; application specific integrated circuits; cellular radio; diversity reception; radio transceivers; radiofrequency integrated circuits; 3GPP downlink advanced receive performance phase 2 testcases; CMOS; Evolved EDGE transceiver system; RF-IC; Rx-diversity; baseband ASIC; decoder; dedicated incremental redundancy implementation; enhanced 2G networks; power 3.9 mW to 14 mW; receive diversity; receiver; single-antenna GSM voice channels; size 130 nm; soft-output Viterbi equalization; symbol detector; transmitter; Application specific integrated circuits; Baseband; Computer architecture; Decoding; GSM; Modulation; Viterbi algorithm; Baseband ASIC; GSM/EDGE; Rx diversity; enhanced 2G networks; evolved EDGE (E-EDGE); evolved EDGE testbed; hybrid ARQ; incremental redundancy; interference cancellation; internet of things (IoT); machine-to–machine (M2M); space-time processing;
Journal_Title :
Solid-State Circuits, IEEE Journal of
DOI :
10.1109/JSSC.2015.2417802