Indoor 5G 3GPP-like Channel Models for Office and Shopping Mall Environments
Katsuyuki Haneda, Lei Tian, Henrik Asplund, Jian Li, Yi Wang, David, Steer, Clara Li, Tommaso Balercia, Sunguk Lee, YoungSuk Kim, Amitava Ghosh,, Timothy Thomas, Takehiro Nakamura, Yuichi Kakishima, Tetsuro Imai, Haralabos, Papadopoulas, Theodore S. Rappaport

TL;DR
This paper explores the extension of 3GPP indoor channel models to frequencies up to 100 GHz, based on extensive measurements in office and shopping mall environments, highlighting key propagation characteristics and initial model adaptations.
Contribution
It provides the first preliminary overview and validation of extending existing 3GPP indoor channel models to the 100 GHz band for indoor environments.
Findings
Increased sensitivity of propagation to environment scale at higher frequencies
Frequency-dependent path loss and blockage effects observed
Small-scale channel characteristics remain similar across frequency range
Abstract
Future mobile communications systems are likely to be very different to those of today with new service innovations driven by increasing data traffic demand, increasing processing power of smart devices and new innovative applications. To meet these service demands the telecommunications industry is converging on a common set of 5G requirements which includes network speeds as high as 10 Gbps, cell edge rate greater than 100 Mbps, and latency of less than 1 msec. To reach these 5G requirements the industry is looking at new spectrum bands in the range up to 100 GHz where there is spectrum availability for wide bandwidth channels. For the development of new 5G systems to operate in bands up to 100 GHz there is a need for accurate radio propagation models which are not addressed by existing channel models developed for bands below 6 GHz. This paper presents a preliminary overview of the…
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