Abstract
In wireless communications, in-phase (I) and quadrature-phase (Q) imbalance is a well-understood issue, and an extensive body of different I/Q imbalance estimation and compensation algorithms exists in the literature. Many of these algorithms, including those in this work, focus on mitigating I/Q imbalance on the receiver side. We consider frequency-independent (FID) estimators that operate as so-called blind algorithms, where little to no knowledge about the transmitted data is required. However, little effort has been made to compare the required resources for implementing these algorithms in hardware. In this work, we compare a comprehensive list of such algorithms with regard to their logic utilization, required registers, and embedded multipliers when implementing them on a field-programmable gate array (FPGA). Subsequently, we provide synthesis results based on the SkyWater 130nm open-source process design kit (PDK), which enables comparisons of the required chip areas for the corresponding application-specific integrated circuit (ASIC) designs. We optimize the fixed-point bit-widths, and other hardware implementation specific parameters of the individual estimators to provide meaningful results. This optimization aims to achieve a common performance target for a typical orthogonal frequency-division multiplexing (OFDM) signal scenario.
| Originalsprache | Englisch |
|---|---|
| Aufsatznummer | 112421 |
| Seitenumfang | 8 |
| Fachzeitschrift | Microelectronic Engineering |
| Volume | 302 |
| Frühes Online-Datum | 03 Nov. 2025 |
| DOIs | |
| Publikationsstatus | Veröffentlicht - 11 Jän. 2026 |
Wissenschaftszweige
- 202015 Elektronik
- 202030 Nachrichtentechnik
- 202028 Mikroelektronik
- 202027 Mechatronik
- 102019 Machine Learning
- 202040 Übertragungstechnik
- 202 Elektrotechnik, Elektronik, Informationstechnik
- 202025 Leistungselektronik
- 202041 Technische Informatik
- 202037 Signalverarbeitung
- 202023 Integrierte Schaltkreise
- 202036 Sensorik
- 202022 Informationstechnik
- 202034 Regelungstechnik
JKU-Schwerpunkte
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Projekte
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Christian Doppler Labor für digital unterstützte Hochfrequenz-Transceiver in zukünftigen mobilen Kommunikationssystemen
Auer, C. (Forscher*in), Buckel, T. (Forscher*in), Gebhard, A. (Forscher*in), Hager, E. (Forscher*in), Hamidovic, D. (Forscher*in), Hofstadler, M. (Forscher*in), Markovic, J. (Forscher*in), Motz, C. (Forscher*in), Nyamangoudar, R. (Forscher*in), Paireder, T. (Forscher*in), Ploder, O. (Forscher*in), Preissl, C. (Forscher*in), Pretl, H. (Forscher*in), Preyler, P. (Forscher*in), Pühringer, B. (Forscher*in), Huemer, M. (Projektleiter*in) & Springer, A. (Projektleiter*in)
01.01.2017 → 31.12.2024
Projekt: Geförderte Forschung › CDG - Christian Doppler Forschungsgesellschaft
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