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- W3116598858 abstract "ABSTRACTThe swift uptake and the advancing demand of wireless services cause unparalleled requirements on wireless networking environment. Upcoming wireless networks have to sustain accelerating wireless traffic volumes with higher data rate and wide range of network coverage to increase user experience. Accelerating higher data rate for unmanned vehicle node can be performed using Long Term Evolution. However, in wireless networks, it is not possible for unmanned vehicle node to be connected directly to LTE all the time. Also, as substantial fragment of energy is utilized during data transmission, methods are required to minimize power consumption. To address these issues in this work, an immense investigation between power saving methods and QoS support, called, Power-efficient Proximate Linear Regression and Relay-propagated Deep Learning (PPLR-RDL) framework is designed for improving data transmission rates and quality of service in wireless networks. The efficiency of PPLR-RDL framework is estimated in terms of average end-to-end delay, energy consumption, packet delivery ratio and latency and compared with the existing methods." @default.
- W3116598858 created "2021-01-05" @default.
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- W3116598858 date "2020-01-01" @default.
- W3116598858 modified "2023-09-25" @default.
- W3116598858 title "Proximate Relay Propagated Deep Learning for Power Efficient Data Transmission in Wireless Networks" @default.
- W3116598858 doi "https://doi.org/10.6180/jase.202003_23(1).0012" @default.
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