Pranav Sharda is a Postdoctoral Research Fellow in the Department of Engineering Science at the University of Oxford, working in the area of optical wireless communications. His research interests include indoor and outdoor optical wireless communications, modeling of wireless communication systems, vehicle-to-vehicle (V2V) and infrastructure-to-vehicle communications, and next-generation intelligent transportation systems.
He earned a PhD in Optical Wireless Communications from IIT Delhi (2018–2023) and has additional training in communication systems through an M.Tech. (gold medal, 10 CGPA) and a B.Tech. in Electronics and Communications Engineering. He has international research exposure as a Research Visitor at Northumbria University’s Optical Communications Research Group, where he designed an experimental testbed for an infrastructure-to-vehicle visible light communications system.
He is an IEEE member and an active reviewer for IEEE journals and conferences, with multiple journal and conference publications in vehicular VLC and FSO/IRS-assisted optical systems.
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Deep-dive investigation into scientific or technical topics, often involving data analysis, experiment design, and evidence synthesis.
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Expertise
Optics
Electrical Engineering
Telecommunications Engineering
Lasers & Photonics
Communications
Telecommunications
Wireless Communication
Professional Summary
Postdoctoral researcher specializing in optical wireless communications with a focus on vehicular visible light communications (V2V and infrastructure-to-vehicle), wireless system modeling, and next-generation intelligent transportation systems. Experienced in academic research delivery, experimental testbed design, mentoring, and laboratory teaching support at Oxford and IIT Delhi.
Work History
Postdoctoral Research Fellow
University of Oxford
2023 - Present
Conducting postdoctoral research in Optical Wireless Communications, focusing on advanced communication systems and experimental research.
Research Visitor
Northumbria University (Optical Communications Research Group – OCRG)
2022 - 2022
Worked under Prof. Zabih (Fary) Ghassemlooy; designed and developed an experimental testbed for Infrastructure-to-Vehicle (I2V) Visible Light Communication (VLC) systems.
Communications Lab Demonstrator
University of Oxford
2024 - 2025
Head Teaching Assistant – Wireless Communications
Indian Institute of Technology (IIT) Delhi
2021 - 2022
Education Summary
Formal training in communications engineering from undergraduate to doctoral levels, culminating in a PhD in Optical Wireless Communications from IIT Delhi, supported by graduate study in Communication Systems (M.Tech., gold medal, 10 CGPA) and a B.Tech. in Electronics and Communications Engineering.
Education History
Ph.D. in Optical Wireless Communications
Indian Institute of Technology (IIT) Delhi, India
2018 - 2023
M.Tech. in Communication Systems
Guru Nanak Dev University, Amritsar, India
2015 - 2017
B.Tech. in Electronics and Communications Engineering
Lovely Professional University, Phagwara, India
2011 - 2015
Publications Summary
Published multiple peer-reviewed journal articles and conference papers focused on vehicular visible light communications and free-space optical systems, including modeling, performance analysis, and diversity/transmission scheme design under practical channel constraints.
Published Works
Next Generation Based Vehicular Visible Light Communications: A Novel Transmission Scheme
In this work, to tackle the line-of-sight (LoS) blockage constraint, a new transmission scheme for vehicle-to-vehicle (V2V) visible light communications (VLC) employing optical reflecting intelligent surfaces (RISs) is proposed and analyzed. To this end, the idea is to address the critical V2V-VLC LoS blockage impact concerning mobility scenarios. Moreover, multiple light-emitting diodes (LEDs)/transmitters-based headlights are employed to enhance the transmission propagation paths. Consequently, it significantly improves the overall reliability of the proposed RIS-aided V2V-VLC model. Further, to emphasize the reliability of the proposed V2V-VLC model, comprehensive path loss and energy efficiency modeling are accentuated. For the realistic V2V-VLC findings, modeling of the path loss corresponding to the intermediate communication links, i.e., between transmitter-RIS and RIS-receiver is emphasized. A novel closed-form expression of a lower bound for the required number of RIS elements to attain a targeted energy efficiency is also developed. Further, to mark interesting research insights, the performance of the proposed RIS-aided V2V-VLC scheme is also compared with the existing scheme. Furthermore, considering the key findings, it is observed that the proposed RIS-aided V2V-VLC scheme offers reliable communication despite mobility-concerned blockage. Moreover, the proposed scheme significantly outperforms the existing scheme concerning the targeted energy efficiency for the reasonable number of required RIS reflection elements.
A Comprehensive Modeling of Vehicle-to-Vehicle Based VLC System Under Practical Considerations, an Investigation of Performance, and Diversity Property
Journal Article
Pranav ShardaGundala S. ReddyManav R. BhatnagarZabih Ghassemlooy
In this work, a vehicle-to-vehicle (V2V) visible light communications (VLC) model for two practical scenarios, is proposed. In scenario 1, the random lateral shift of vehicles and the deterministic longitudinal separation between two communicating vehicles are considered, whereas in scenario 2, longitudinal separation between two vehicles is considered to be random, and lateral shift of vehicles is considered to be deterministic. To this end, we emphasize comprehensive modeling of the practical characteristics of the considered V2V-VLC system, such as random path loss due to the random mobility of the vehicle, random lateral shift and random longitudinal separation of the vehicle. Moreover, we analyze the performance of the proposed V2V-VLC model in terms of different metrics under the consideration of a novel channel model. Considering our findings, it is observed that the random lateral shift of the vehicle and the random longitudinal separation between two vehicles have a significant impact on the V2V-VLC system performance. Further, at a distance of 40 m, for example, the path loss penalties for moderate and dense fog weather scenarios are 2 and 3 dB, respectively, compared with the clear weather. Furthermore, the combined impact of path loss and atmospheric turbulence affects the V2V-VLC performance significantly.
Pranav Sharda is a certified technical and data processing professional with credentials from Aspiring Minds (AMCAT), demonstrating foundational expertise in data processing and technical support services. Certified as both an AMCAT Data Processing Specialist and Technical Support Executive, he possesses structured technical competencies, analytical capability, and problem-solving skills aligned with industry standards. His certifications reflect a strong grounding in technical operations, customer support systems, and information handling processes, highlighting his early commitment to professional development and technical proficiency.
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