EDBT 2026 Demo / reviewers in the wild / expert
Mohamed Malki
dblp:339/0419
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6ranked-venue papers
1as first author
6since 2021 · last 2026
0000-0001-6994-2862ORCID · corroborated
Domains — the database's venue-derived domains; a paper can count in several
Systems, architecture and hardware · 6 · 1 first-author · 6 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2026 | Reflectionless Design in RF Passive and Active Circuits: Recent Advances and Emerging TrendsabstractRF-signal power reflections produced by impedance mismatches remain a critical limitation in high-frequency systems, degrading their operational performance, robustness, and RF-signal integrity. Typical RF-protection mechanisms, such as inter-RF-stage attenuators, isolators$\boldsymbol {/}$circulators, or RF-signal-cancellation loops, often impose penalties in terms of increased in-band insertion-loss levels, size, cost, DC-power consumption, and design complexity. To overcome these challenges, reflectionless or absorptive RF circuits have emerged as an alternative paradigm. They intrinsically absorb undesired stopband$\boldsymbol {/}$non-transmitted RF signals, thereby providing broad-band impedance matching. This overview paper reviews the latest advances on RF reflectionless circuits, covering their fundamental RF design principles and more-recent developments. Beyond the well-established case of RF reflectionless filters illustrated through several state-of-the-art implementations in 3-D and planar technologies, other emerging designs are also addressed. They include reflectionless beyond-transmission-band-flat-group-delay single-ended bandpass filters and balanced lowpass filters for high-data-rate digital communications in planar and integrated RF platforms, and on-chip two-port-absorptive bandstop filters. Furthermore, as key examples of reflectionless RF active devices, millimeter-wave input-absorptive RF amplifiers for beyond-5G wireless scenarios are presented. Cutting-edge applications in antennas, electromagnetic compatibility (EMC), and quantum engineering are also discussed, highlighting the versatility of the reflectionless design philosophy. Roberto Gómez-García, Li Yang 0011, Mohamed Malki, Nasrin Iranpour, Jim Darrel Ang, Zekai Luo, Xi-Bei Zhao, Shiyan Wang, José M. Muñoz-Ferreras, Xi Zhu 0001 |
IEEE Trans. Circuits Syst. I Regul. Pap. | 3 |
| 2024 | High-Order Multilayer Input-Absorptive RF Filter With Wideband Quasi-Flat Group Delay and Multiple Stopband Transmission ZerosabstractThis paper presents a high-order multilayer RF filter with wideband quasi-flat group-delay response and sharp multi-transmission-zero (TZ) stopbands. It is composed of three in-series-cascaded stages of low-order/single-unit input-absorptive wideband bandpass filters (BPFs). Its constituent BPF unit, which is based on a modified two-layer microstrip-to-microstrip vertical transition and a shunt resistivelyterminated microstrip line and exhibits quasi-flat group-delay response and broadband input-absorptive capabilities, is firstly discussed. Due to the employed short-circuit-ended two-section microstrip stub in the modified vertical transition, two close-to-passband TZs are realized to obtain a sharper-rejection BPF response. To achieve highly-attenuated multi-TZ stopbands, a high-order wideband quasi-flat-group-delay BPF with three in-series-cascaded single-unit BPFs using different impedanceparameter values for the short-circuit-ended microstrip stubs is then studied. For experimental-validation purposes, a 2-GHz proof-of-concept microstrip prototype in a two-layer substrate is simulated, built, and tested. The measured input-absorptive BPF is centered at 1.956 GHz with 3-dB absolute bandwidth of 0.828 GHz and maximum group-delay variation of ± 0.05 ns from 1.387 to 2.618 GHz (i.e., 1.231-GHz absolute bandwidth). Li Yang 0011, Mohamed Malki, José M. Muñoz-Ferreras, Xi Zhu 0001, Roberto Gómez-García |
ISCAS | 2 |
| 2024 | Frequency-Transformation-Based Co-Designed Lowpass-Single/Multi-Passband-Highpass RF FiltersabstractThe theoretical design and practical development of RF analog filtering devices with co-integrated lowpass, single$\bm{/}$multi-band bandpass, and highpass transfer functions is reported. For this purpose, two different classes of generalized frequency transformation that convert the equivalent normalized lowpass filter prototype into the desired RF filter with several co-designed filtering actions are proposed. They realize a frequency mapping of the reactance of a normalized unitary capacitor into that of a one-port single$/$multi-resonance cell with added lowpass and highpass filtering capabilities. For these devised frequency transformations, the theoretical foundations and various illustrative filter examples designed at the ideal-circuit-model level are presented. In addition, higher-selectivity filter architectures based on the generation of additional out-of-band transmission zeros (TZs) by means of cross-coupling techniques are shown. Afterwards, the extension of this design methodology to RF multi-functional filtering components, such as input-reflectionless$\bm{/}$absorptive filters based on complementary-diplexer circuit networks and two-way filtering power-distribution circuits, is also demonstrated. Furthermore, two design examples of distributed-element and inverterless lumped-element RF filters are provided. Besides, for the distributed-element circuit, a proof-of-concept microstrip prototype is manufactured and measured as experimental validation. Roberto Gómez-García, Li Yang 0011, Mohamed Malki, José M. Muñoz-Ferreras |
IEEE Trans. Circuits Syst. I Regul. Pap. | 3 |
| 2024 | Multilayer Reflectionless RF Bandpass Filters With Wideband Quasi-Constant Group-Delay ResponsesabstractA class of reflectionless RF bandpass filters (BPFs) with wideband quasi-constant in-band group-delay response in transmission for high-data-rate digital-communication systems is presented. These BPFs are developed by exploiting multilayer wideband microstrip-to-microstrip vertical transitions and lossy multi-section microstrip lines in complementary-diplexer-based architectures. A two-port-reflectionless wideband BPF with low-in-band-variation equi-ripple-type group-delay characteristics is firstly realized by using two resistively-terminated one-section microstrip lines. To further flatten its passband group delay, its counterpart based on lossy two-section microstrip lines is then conceived to attain extremely-flat wideband group-delay pattern. Subsequently, by means of a modified wideband microstrip transition with a short-circuit-ended two-section microstrip line and a resistively-terminated two-section microstrip line, an input-reflectionless BPF with two close-to-passband transmission zeros (TZs) and wideband in-band flat group-delay profile is reported. In order to obtain a higher-order flat-group-delay wideband BPF response with more TZs, its structure shaped by two in-series-cascaded units of the previous input-absorptive BPF section with two TZs is engineered, in which different impedance values for their constituent short-circuit-ended microstrip lines are utilized. The operational foundations of all the proposed wideband flat-group-delay RF BPFs are described in detail. Furthermore, for practical-validation purposes, three 2-GHz microstrip prototypes of these reflectionless wideband RF BPFs with quasi-constant group-delay responses beyond their 3-dB absolute bandwidths (BWs) are designed, simulated, manufactured, and characterized. Li Yang 0011, Mohamed Malki, José M. Muñoz-Ferreras, Xi Zhu 0001, Roberto Gómez-García |
IEEE Trans. Circuits Syst. I Regul. Pap. | 2 |
| 2023 | Flat-Group-Delay RF Planar Filters With Transmission Zeros Using Transversal CircuitsabstractVarious families of flat-in-band-group-delay RF planar bandpass filters (BPFs) with multiple out-of-band transmission zeros (TZs) in their filtering transfer function are presented. As the first approach, a type of BPFs with theoretically-constant group-delay profile and perfect two-port-reflectionless behavior is proposed. The theoretical sufficient conditions to obtain a frequency-constant group delay in a generalized form of transfer function for these BPFs are derived. They are then particularized in transmission-line-based transversal-circuit realizations with flat-in-band-group-delay and quasi-reflectionless characteristics. Afterwards, a class of reflective-type BPFs based on directional power couplers that are arranged in transversal-mode topologies are addressed toward its practical demonstration for the first time. These BPFs, which exhibit flat in-band group delay, are compared with their classic Bessel-type BPF counterparts without TZs. Moreover, discrete-time models of such BPFs are derived, analyzed, and discussed. For experimental-validation purposes, proof-of-concept microstrip prototypes centered at 2.5-GHz of the engineered quasi-absorptive/reflective-type flat-in-band-group-delay BPFs are designed, manufactured, and characterized. Roberto Gómez-García, Li Yang 0011, Mohamed Malki, José M. Muñoz-Ferreras |
IEEE Trans. Circuits Syst. I Regul. Pap. | 3 |
| 2023 | Input-Reflectionless Quasi-Elliptic-Type Single- and Dual-Band Bandpass Filters Based on Passive Channelized PrinciplesabstractAn approach to design quasi-elliptic-type planar filters with single- and dual-band bandpass transfer functions and input-absorptive capabilities is presented. Two-branch channelized passive circuit configurations are exploited for this purpose, in which the low-order reflective-type filtering profile of their branches is converted into the desired sharp-rejection input-reflectionless filtering action in the overall circuit. This is achieved by means of fully-destructive and frequency-selective transversal signal-interference effects at the total input and output accesses of the channelized filter, respectively. The theoretical operational principles of the proposed concept of single/dual-passband input-reflectionless two-branch channelized filter are detailed, along with design considerations for their RF transmission-line-based implementation. Besides, its generalization to$\boldsymbol {N}$-channel architectures is also analyzed. Furthermore, as the fundamental elements of the devised channelized filtering philosophy to increase selectivity, alternative solutions to realize their output phase-delay sections for a more-flexible control of the transmission zeros in the overall transfer function are discussed. For experimental-demonstration purposes, two microstrip proof-of-concept prototypes are developed and measured. They consist of 3-GHz single-band and$2.58/3.43$-GHz dual-band designs with input-quasi-reflectionless spectral ratio above 2.5:1 and 3:1, respectively. Mohamed Malki, Li Yang 0011, Roberto Gómez-García |
IEEE Trans. Circuits Syst. I Regul. Pap. | 1 |