
| Designation | Assistant Professor |
| Years of Experience | 7 |
| Department | ECE |
| Email Id | ganeshmiriyala@mlrit.ac.in |
| JNTUH Unique Id | 0230-160311-114514 |
| Areas of Specialization | Wireless Communications |
| UG Degree | B.Tech - ECE |
| PG Degree | M.Tech in Signal Processing and Control |
| Ph.D | Ph.D |
| Joining Date | 1-9-2023 |
| Nature of Association | Regular |
Journal Publications :
1. Miriyala, G., & Mani, V. V. (2020). A new PAPR reduction technique in DCO-OFDM for visible light communication systems. Optics Communications, 474, 126064.
2. Miriyala, G., & Mani, V. V. (2021). A nonlinear modelled low-complex ADO-OFDM for visible light communication systems. Optik – International Journal for Light and Electron Optics.
3. Miriyala, G., Mallaiah, R., Abhaynarasimha, K. S., & Mani, V. V. (2024). A low-complex OFDM-based DCO-OTFS modulation for VLC systems. Physical Communication, 66, 102471.
4. Abhaynarasimha, K. S., Miriyala, G., Mallaiah, R., & Mani, V. V. (2024). Timing synchronization of LACO-OFDM under non-linear distortions using ELM. AEU – International Journal of Electronics and Communications, 176, 155124.
5. Miriyala, G., Mallaiah, R., Sathyaprasad, A. K., Vejandla, K., & Vakamulla, V. M. (2025). A low-complex and power-efficient optical OFDM for VLC systems. IEEE Journal of Lightwave Technology.
Conference Publications :
1. Miriyala, G., Mani, V. V. (2021). Peak sample detection-based PAPR reduction algorithm in optical-OFDM for VLC systems. In Proceedings of IEEE International Symposium on Wireless Personal Multimedia Communications.
2. Miriyala, G., Kakumanu, A., Swapna, M. P., & Shankar, P. S. (2018). Joint estimation of channel response, frequency offset, and phase noise in OFDM systems. In Proceedings of IEEE International Conference on Intelligent Computing and Control Systems.
3. Miriyala, G., Kaul, A., & Nath, R. (2013). Reduced complexity channel estimation method for MIMO-OFDM systems by subspace tracking. In Proceedings of IEEE International Advance Computing Conference (IACC) (pp. 470–475).
4. Miriyala, G., Vakkalagadda, M., & Yadav, M. N. (2018). MIMO-OFDM system analysis over distinct fading channels with different modulation techniques. In Proceedings of IEEE Conference on Recent Trends in Electronics, Information and Communication Technology.
5. Velpula, V. K., Sivaramakrishna, Y., Miriyala, G., & Geetha, Y. (2024). Pseudocapacitive materials: A critical examination of terminological perspectives. In Journal of Physics: Conference Series, 2837(1), 012043.
6. Mallaiah, R., Miriyala, G., Vakamulla, V. M., & Majhi, S. (2024). OTFS system based on WFrFFT with optimal design complexity. In Proceedings of IEEE Symposium on Personal, Indoor and Mobile Radio Communications.
7. Velpula, V. K., Prasad, S. V. S., Vadlamudi, J., Yechuri, S., Miriyala, G., & Kumar, M. (2024). Traffic sign recognition for automated speed control using deep learning. In Proceedings of IEEE International Conference on Microelectronics.
8. Abhaynarasimha, K. S., Mallaiah, R., Mani, V. V., & Ganesh, M. (2024). Extreme learning approach for timing synchronization of ACO-OFDM under nonlinear distortions. In Proceedings of IEEE Asia Pacific Conference on Communications (APCC) (pp. 83–89).
9. Miriyala, G., Velpula, V. K., Yechuri, S., Sridhar, B., & Vinod, G. V. (2024). A survey on photonics and its applications. In Journal of Physics: Conference Series, 2837(1), 012041.
10. Miriyala, G., Mallaiah, R., & Mani, V. V. (2023). Demonstration of a variably biased asymmetrically clipped optical OFDM for VLC systems. In Proceedings of IEEE Asia Pacific Conference on Communications (APCC).
11. Miriyala, G., Yechuri, S., Velpula, V. K., & Prasad, S. V. S. (2025). High-gain artificial magnetic conductor integrated antenna for 5G communication systems. MDPI.
12. Sivaramakrishna, Y., Anand, M., Sandireddy, R., Velpula, V. K., & Miriyala, G. (2025). Deep learning-based time-frequency attention network model for water body segmentation. MDPI.
13. Miriyala, G., Bhandari, L., Ritika, S., Sowmya, M., & Prasad, S. V. S. (2025). A novel spectrally efficient DCO-OFDM with NERF companding scheme for VLC systems. In Proceedings of IEEE INDISCON.
Signals and Systems and Probability Theory and Stochastic Processing