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This is derived by employing the technique of re-timing; further the architecture is also reconfigured to support various wireless standards.
Promising efforts are underway to improve interoperability and align various wireless standards, such as ZigBee and Z-Wave, in order to simplify how IoT devices and sensors interact with one another.
Hence, MIMO-OFDM is an ideal combination for applying MIMO technology in frequency fading channels and has been included in various wireless standards such as IEEE 802.11n [3] and IEEE 802.16e [4].
The multiple-input multiple-output (MIMO) architecture has been demonstrated to be an effective means to boost the capacity of wireless communication systems [1], and has evolved to become an inherent component of various wireless standards, including the next-generation cellular systems 3GPP long term evolution (LTE) and LTE advanced.
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This paper proposes an optimal and multiplier-less implementation of a baseband channel filter for supporting the bandwidth requirements of various wireless communication standards.
It's also ready to work with various wireless connectivity standards like Motient's DataTAC, Cingular's Mobitex and any Cellular Digital Packet Data networks.
Our approach is based on physical-layer measurements and has the advantage of being practically applicable to various wireless communication standards.
Because of the gains like diversity, throughput, and the coverage extension provided by the multiple-input multiple-out (MIMO) systems, it has been part of the various wireless communications standards.
Orthogonal frequency division multiplexing (OFDM) systems have been adopted in various wireless communications standards due to their high spectrum efficiency and robustness against the frequency selective fading channels [1, 13].
Orthogonal frequency division multiplexing (OFDM) modulation technique is a multicarrier transmission scheme that recently has been widely adopted in various wireless communication standards (WLAN, DVB-T…), thanks to its high spectral efficiency and robustness offered, especially for the frequency selective channels [1, 2].
In this paper, the non-uniform CMFB is designed for various existing wireless standards.
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