Anil Kumar Nayak

dblp:204/3728 · DBLP profile ↗
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4ranked-venue papers
3as first author
3since 2021 · last 2025
0000-0002-7469-2885ORCID · corroborated

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Systems, architecture and hardware · 3 · 3 first-author · 3 since 2021Databases, data management, data science and information retrieval · 1
YearPublicationVenuePosition
2025 Broadband Tapered Microstrip Line-to-SIW Transition for C/X-Band Applications
abstract
This work proposes a broadband transition from tapered microstrip line-to-substrate-integrated waveguide (SIW) using parallel half-mode SIW (HMSIW) for C/X-band applications. The proposed transition comprises four sections: a microstrip feed, tapered microstrip line, tapered parallel HMSIWs, and a waveguide section (SIW). Placing the parallel HMSIWs section between the tapered microstrip line section and the SIW part improves the S-parameters characteristics of the near-cut-off frequency. The HMSIWs section has a lower cut-off frequency than the SIW part, about 4.6 GHz. The lower cut-off- frequency is obtained by gradually altering the electromagnetic field mode to reduce reflection. Which helps convert from TEM mode to TM conversion. The proposed transition is designed, simulated, fabricated, and experimentally verified in order to compare between simulated and experimental results. For the back-to-back laboratory prototype of the transition, the experimental return loss results are less than 20 dB in the 4.6 to 11 GHz frequency range. At the same time, the measured minimum insertion loss is lower than 0.37 dB (maximum: 1.51 dB).
Anil Kumar Nayak, Igor M. Filanovsky, Kambiz K. Moez, Amalendu Patnaik
ISCAS1
2025 Analysis and Design of Broadband Transitions from Microstrip-to-CV-WSIW for mm-Wave Applications
abstract
The concept of the corrugated via-wall substrate-integrated waveguide (CV-WSIW) reported by the same authors earlier has now been extended to the mm-wave frequency range, and the transitions for this category of SIWs from microstrip line (ML) are presented in this work. A new design of enhanced CV-WSIW for 18-40 GHz frequency range is proposed. The design includes a tapered section of the microstrip line and two rows of metallic vias with the gap between them. They are providing a better impedance match and reduced overall loss. The proposed design offers improved performance in terms of broadband, return loss (RL), insertion loss (IL), and total loss (TL). The laboratory prototypes are developed, and the obtained simulation results show a close agreement with the measured results. The experimental results show the minimum RL of 22dB, IL of 0.22-0.42dB, a fractional bandwidth of 75.80%, a figure-of-merit of 967.9, and the TL below 20% for ML/CV-WSIW transition within 18-40GHz range. Three additional ML/CV-WSIW transitions were also designed and tested, so that four tested transitions cover 8-60GHz range; an additional fifth transition was simulated only in 60-140GHz range.
Anil Kumar Nayak, Igor M. Filanovsky, Kambiz K. Moez, Amalendu Patnaik
ISCAS1
2023 Broadband Conductor Backed-CPW with Tapered Microstrip Line to Corrugated Via Wall-SIW Transition for Different-Bands (2-40 GHz)
abstract
This paper proposes the Corrugated Via-Wall Substrate Integrated Waveguide (CVWSIW) (with enhanced performance compared to the traditional SIW) and the transitions to this newly proposed CVWSIW from a conductor-backed coplanar waveguide (CB-CPW). The CB-CPW slot lines and the gap between two metallic via rows play a prominent role in widening the bandwidth and reducing the loss. The CB-CPW-CVWSIW transition is initially designed in the 4–8 GHz (C-band) range. Following the same design procedure, the transitions are made for other five different bands to cover the frequencies from 2 to 40 GHz. Improved performance in terms of bandwidth, insertion loss, and total loss is the benefit of the designed transitions with the proposed CVWSIW. Laboratory prototypes of the transitions are fabricated and experimentally measured to cross verify the simulation results. The measured results show, for example, the minimum return loss of 15 dB, maximum insertion loss of 0.36 dB, and fractional bandwidth of 62.16% for C-band.
Anil Kumar Nayak, Igor M. Filanovsky, Kambiz K. Moez, Amalendu Patnaik
ISCAS1
2017 ClaimBuster: The First-ever End-to-end Fact-checking System
abstract
Our society is struggling with an unprecedented amount of falsehoods, hyperboles, and half-truths. Politicians and organizations repeatedly make the same false claims. Fake news floods the cyberspace and even allegedly influenced the 2016 election. In fighting false information, the number of active fact-checking organizations has grown from 44 in 2014 to 114 in early 2017. 1 Fact-checkers vet claims by investigating relevant data and documents and publish their verdicts. For instance, PolitiFact.com, one of the earliest and most popular fact-checking projects, gives factual claims truthfulness ratings such as True, Mostly True, Half true, Mostly False, False, and even "Pants on Fire". In the U.S., the election year made fact-checking a part of household terminology. For example, during the first presidential debate on September 26, 2016, NPR.org's live fact-checking website drew 7.4 million page views and delivered its biggest traffic day ever.
Naeemul Hassan, Gensheng Zhang, Fatma Arslan, Josue Caraballo, Damian Jimenez, Siddhant Gawsane, Shohedul Hasan, Minumol Joseph, Aaditya Kulkarni, Anil Kumar Nayak, Vikas Sable, Chengkai Li 0001, Mark Tremayne
Proc. VLDB Endow.10