Molecular Absorption-Aware User Assignment, Spectrum, and Power Allocation in Dense THz Networks with Multi-Connectivity
Mohammad Amin Saeidi, Hina Tabassum, Mehrazin Alizadeh

TL;DR
This paper presents a comprehensive framework for optimizing user assignment, spectrum, and power allocation in dense THz networks, accounting for molecular absorption, beam-squint, and multi-connectivity, with solutions validated through numerical analysis.
Contribution
It introduces a unified optimization framework that incorporates molecular absorption effects and multi-connectivity, with novel convex approximations and distributed algorithms for practical implementation.
Findings
Optimized user association and spectrum allocation improve network sum-rate.
Proposed algorithms demonstrate convergence and efficiency in dense THz scenarios.
Insights into the impact of molecular absorption and hardware impairments on network performance.
Abstract
This paper develops a unified framework to maximize the network sum-rate in a multi-user, multi-BS downlink terahertz (THz) network by optimizing user associations, number and bandwidth of sub-bands in a THz transmission window (TW), bandwidth of leading and trailing edge-bands in a TW, sub-band assignment, and power allocations. The proposed framework incorporates multi-connectivity and captures the impact of molecular absorption coefficient variations in a TW, beam-squint, molecular absorption noise, and link blockages. To make the problem tractable, we first propose a convex approximation of the molecular absorption coefficient using curve fitting in a TW, determine the feasible bandwidths of the leading and trailing edge-bands, and then derive closed-form optimal solution for the number of sub-bands considering beam-squint constraints. We then decompose joint user associations,…
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Taxonomy
TopicsMolecular Communication and Nanonetworks · Molecular Junctions and Nanostructures · Photonic and Optical Devices
