Enabling security and High Energy Efficiency in the Internet of Things with Massive MIMO Hybrid Precoding
Pith reviewed 2026-05-25 16:18 UTC · model grok-4.3
The pith
Hybrid precoding lifts secure energy efficiency in massive MIMO IoT networks over existing physical layer security methods
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
Core claim
The SEEHP algorithm, which uses hybrid precoding to address a transformed secure energy efficiency optimization problem in IoT networks with massive MIMO, achieves higher secure energy efficiency than three existing physical layer security algorithms, especially when the number of transmit antennas is large.
What carries the argument
The SEEHP algorithm that solves a transformed secure energy efficiency optimization problem using hybrid precoding in massive MIMO IoT systems
If this is right
- The SEEHP algorithm provides better secure energy efficiency than existing physical layer security methods in IoT networks
- The performance advantage grows with larger numbers of transmit antennas
- Hybrid precoding mitigates the extra power cost of artificial noise while maintaining security
Where Pith is reading between the lines
- The optimization approach might extend to other massive MIMO wireless systems beyond IoT
- Practical deployments could test the method under realistic channel conditions not covered in the simulations
Load-bearing premise
The non-convex secure energy efficiency problem can be transformed into a tractable suboptimal form whose solution still delivers the claimed performance advantage over existing algorithms
What would settle it
Numerical results in which the SEEHP algorithm fails to achieve higher secure energy efficiency than the three existing physical layer security algorithms when the number of transmit antennas is large
read the original abstract
Recently, the security of Internet of Things (IoT) has been an issue of great concern. Physical layer security methods can help IoT networks achieve information-theoretical secrecy. Nevertheless, utilizing physical security methods, such as artificial noise (AN) may cost extra power, which leads to low secure energy efficiency. In this paper, the hybrid precoding technique is employed to improve the secure energy efficiency of the IoT network. A secure energy efficiency optimization problem is formulated for the IoT network. Due to the non-convexity of the problem and the feasible domain, the problem is firstly transformed into a tractable suboptimal form. Then a secure hybrid precoding energy efficient (SEEHP) algorithm is proposed to tackle the problem. Numerical results indicate that the proposed SEEHP algorithm achieves higher secure energy efficiency compared with three existing physical layer security algorithms, especially when the number of transmit antennas is large.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The paper formulates a non-convex secure energy efficiency (SEE) maximization problem for an IoT network that employs massive MIMO hybrid precoding and artificial noise for physical-layer security. The problem is transformed into a tractable suboptimal form and solved by the proposed SEEHP algorithm (based on successive convex approximation). Numerical results are presented showing that SEEHP yields higher SEE than three existing physical-layer security algorithms, with the advantage becoming more pronounced as the number of transmit antennas grows.
Significance. If the reported numerical gains hold under the stated channel and power models, the work supplies a concrete hybrid-precoding design that mitigates the power penalty of artificial noise while preserving secrecy, which is relevant for energy-constrained massive-MIMO IoT deployments. The explicit comparison across antenna counts provides a falsifiable scaling claim that can be checked by independent simulation.
minor comments (3)
- [Optimization formulation and algorithm derivation] The abstract states that the non-convex problem is transformed into a 'tractable suboptimal form' but does not quantify the approximation gap; a brief bound or sensitivity plot in the optimization section would strengthen the link between the surrogate and the claimed SEE gains.
- [Numerical results] The three baseline algorithms are referred to only generically; naming them and citing the exact references in the simulation section would improve reproducibility.
- [System model] Power-splitting factor between information and artificial noise appears as a free parameter; clarify whether it is jointly optimized or fixed in the reported curves.
Simulated Author's Rebuttal
We thank the referee for the positive summary of our work and the recommendation for minor revision. The report accurately reflects the paper's focus on formulating and solving the secure energy efficiency maximization problem via the SEEHP algorithm in massive-MIMO IoT networks with hybrid precoding and artificial noise. No major comments were listed in the report.
Circularity Check
No significant circularity in derivation or claims
full rationale
The paper states a secure energy efficiency maximization problem for an IoT network using hybrid precoding and artificial noise, notes its non-convexity, applies a standard transformation to a tractable suboptimal form, and solves it with the proposed SEEHP algorithm (successive convex approximation). The central evidence is numerical simulation showing SEEHP outperforming three existing algorithms, especially at large antenna counts. No equation reduces the reported efficiency metric to a fitted constant, a quantity defined by the authors' prior work, or a self-citation chain. The performance numbers are generated from the optimization procedure applied to the stated model and are not tautological with the inputs. The derivation chain is self-contained against external benchmarks and does not invoke load-bearing self-citations or uniqueness theorems from the same authors.
Axiom & Free-Parameter Ledger
free parameters (1)
- Power splitting factor between information and artificial noise
axioms (2)
- domain assumption Perfect channel state information is available at the transmitter for precoder design.
- ad hoc to paper The non-convex problem admits a useful suboptimal convex surrogate whose solution remains competitive.
Reference graph
Works this paper leans on
-
[1]
Internet of Thing s (IoT): A vision, architectural elements, and future directions,
J. Gubbi, R. Buyya, S. Marusic, et al., “Internet of Thing s (IoT): A vision, architectural elements, and future directions,” Future generation computer systems, vol. 29, No. 7, pp. 1645–1660, Feb. 2013
work page 2013
-
[2]
Interne t of things: A survey on enabling technologies, protocols, and applicat ions,
A. Al-Fuqaha, M. Guizani, M. Mohammadi, et al., “Interne t of things: A survey on enabling technologies, protocols, and applicat ions,” IEEE Communications Surveys & Tutorials , vol. 17, No. 4, pp. 2347–2376, June 2015
work page 2015
-
[3]
J. Lin, W. Y u, N. Zhang, et al., “A survey on internet of thi ngs: Architec- ture, enabling technologies, security and privacy, and app lications,” IEEE Internet of Things Journal , vol. 4, No. 5, pp. 1125–1142, Mar. 2017
work page 2017
-
[4]
Internet of Things-New security and privac y challenges,
R. H. Weber, “Internet of Things-New security and privac y challenges,” Computer law & security review , vol. 26, No. 1, pp. 23–30, Jan. 2010
work page 2010
-
[5]
Securing the I nternet of Things: A standardization perspective,
S. L. Keoh, S. S. Kumar, and H. Tschofenig, “Securing the I nternet of Things: A standardization perspective,” IEEE IoT J. , vol. 1, no. 3, pp. 265–275, Jun. 2014
work page 2014
-
[6]
Security for th e Internet of Things: A survey of existing protocols and open research iss ues,
J. Granjal, E. Monteiro, and J. S. Silva, “Security for th e Internet of Things: A survey of existing protocols and open research iss ues,” IEEE Commun. Surv. Tutor ., vol. 17, no. 3, pp. 1294–1312, Aug. 2015
work page 2015
-
[7]
On secur e wireless communications for IoT under eavesdropper collusion,
Y .Zhang, Y .Shen, H.Wang, J.Y ong,and X.Jiang, “On secur e wireless communications for IoT under eavesdropper collusion,” IEEE Trans. Autom. Sci. Eng. , vol. PP , no. 99, pp. 1–13, Dec. 2015. 11
work page 2015
-
[8]
A.Mukherjee, “Physical-layer security in the Internet of Things:Sensing and communication confidentiality under resource constrai nts,” Proc. IEEE, vol. 103, no. 10, pp. 1747–1761, Oct. 2015
work page 2015
-
[9]
D. J. Bernstein, Introduction to post-quantum cryptography//Post- quantum cryptography, Springer, 2009
work page 2009
-
[10]
D. R. Stinson, Cryptography: theory and practice , CRC press, 2005
work page 2005
-
[11]
A. D. Wyner, “The wire-tap channel,” Bell system technical journal , vol. 54, no. 8, pp. 1355–1387, Oct. 1975
work page 1975
-
[12]
Broadcast channels with confi dential mes- sages,
I. Csiszar and J. Korner, “Broadcast channels with confi dential mes- sages,” IEEE Trans. Inf. Theory , vol. 24, no. 3, pp. 339–348, 1978
work page 1978
-
[13]
Towards the secrecy capacity o f the Gaussian MIMO wire-tap channel: the 2-2-1 channel,
S. Shafiee and S. Ulukus, “Towards the secrecy capacity o f the Gaussian MIMO wire-tap channel: the 2-2-1 channel,” IEEE Trans. Inf. Theory, vol. 55, no. 9, pp. 4033–4039, Sept. 2009
work page 2009
-
[14]
Transmit ante nna selection for security enhancement in MIMO wiretap channels,
N. Y ang, P . L. Y eoh, M. Elkashlan, et al., “Transmit ante nna selection for security enhancement in MIMO wiretap channels,” IEEE Transactions on Communications , vol. 61, no. 1, pp. 144–154, Oct. 2013
work page 2013
-
[15]
On the secrecy capaci ty of fading ?channels,
P . Gopala, L. Lai, and H. El Gamal, “On the secrecy capaci ty of fading ?channels,” IEEE Trans. Inf. Theory , vol. 54, no. 10, pp. 4687-4698, Oct. 2008
work page 2008
-
[16]
Large-scale MIMO rela ying tech- niques for physical layer security: AF or DF?
X. Chen, L. Lei, H. Zhang, et al., “Large-scale MIMO rela ying tech- niques for physical layer security: AF or DF?” IEEE Transactions on Wireless Communications, vol. 14, no. 9, pp. 5135–5146, May 2015
work page 2015
-
[17]
Secure transmissio n in multicell massive MIMO systems,
J. Zhu, R. Schober, V . X. Bhargava, “Secure transmissio n in multicell massive MIMO systems,” IEEE Transactions on Wireless Communica- tions, vol. 13, no. 9, pp. 4766–4781, July 2014
work page 2014
-
[18]
X. Chen, L. Lei, H. Zhang, et al., “On the secrecy outage c apacity of physical layer security in large-scale MIMO relaying syste ms with im- perfect CSI,” in Proc. IEEE International Conference on Communication (ICC), June 2014, pp. 2052–2057
work page 2014
-
[19]
Guaranteeing secrecy using artificia l noise,
S. Goel, R. Negi, “Guaranteeing secrecy using artificia l noise,” IEEE transactions on wireless communications , vol. 7, no. 6, pp. 2180–2189, June 2008
work page 2008
-
[20]
Jamming-aided secure c ommunication in massive MIMO Rician channels,
J. Wang, J. Lee, F. Wang, et al., “Jamming-aided secure c ommunication in massive MIMO Rician channels,” IEEE Transactions on Wireless Communications, vol. 14, no. 12, pp. 6854–6868, July 2015
work page 2015
-
[21]
Artificial noise assiste d secure transmission under training and feedback,
H. M. Wang, C. Wang, D. W. K. Ng, “Artificial noise assiste d secure transmission under training and feedback,” IEEE Transactions on Signal Processing, vol. 63, no. 23, pp. 6285–6298, Aug. 2015
work page 2015
-
[22]
Physical layer s ecurity in het- erogeneous cellular networks,
H. M. Wang, T. X. Zheng, J. Y uan, et al., “Physical layer s ecurity in het- erogeneous cellular networks,” IEEE Transactions on Communications , vol. 64, no. 3, pp. 1204–1219, Jan. 2016
work page 2016
-
[23]
Achieving high energy e fficiency and physical-layer security in AF relaying,
D. Wang, B. Bai, W. Chen, et al., “Achieving high energy e fficiency and physical-layer security in AF relaying,” IEEE Transactions on Wireless Communications, vol. 15, no. 1, pp. 740–752, Sep. 2016
work page 2016
-
[24]
Energy-efficient prec oder design for MIMO wiretap channels,
H. Zhang, Y . Huang, S. Li, et al., “Energy-efficient prec oder design for MIMO wiretap channels,” IEEE Communications Letters , vol. 18, no. 9, pp. 1559–1562, July 2014
work page 2014
-
[25]
Secure green communica tion via un- trusted two-way relaying: A physical layer approach,
D. Wang, B. Bai, W. Chen, et al., “Secure green communica tion via un- trusted two-way relaying: A physical layer approach,” IEEE Transactions on Communications , vol. 64, no. 5, pp. 1861–1874, March 2016
work page 2016
-
[26]
Energy efficiency o f confidential multi-antenna systems with artificial noise and statistica l CSI,
A. Zappone, R. H. Lin, E. Jorswieck, “Energy efficiency o f confidential multi-antenna systems with artificial noise and statistica l CSI,” IEEE Journal of Selected Topics in Signal Processing , vol. 10, no. 8, pp. 1462– 1477, Sep 2016
work page 2016
-
[27]
Channel esti mation and hybrid precoding for millimeter wave cellular systems,
A. Alkhateeb, O. El Ayach, G. Leus, et al., “Channel esti mation and hybrid precoding for millimeter wave cellular systems,” IEEE Journal of Selected Topics in Signal Processing , vol. 8, no. 5, pp. 831–846, July 2014
work page 2014
-
[28]
Joint Optimiz ation of Computation and Communication Power in Multi-user Massive MIMO Systems,
X. Ge, Y . Sun, H. Gharavi and J. Thompson, “Joint Optimiz ation of Computation and Communication Power in Multi-user Massive MIMO Systems,” IEEE Transactions on Wireless Communications , V ol. 17, No. 6, pp. 4051–4063, June 2018
work page 2018
-
[29]
Phase only RF precoding for massive MIMO systems with limited RF chains,
A. Liu, V . Lau, “Phase only RF precoding for massive MIMO systems with limited RF chains,” IEEE Transactions on Signal Processing , vol. 62, no. 17, pp. 4505–4515, July 2014
work page 2014
-
[30]
Energy efficiency opti mization of 5G radio frequency chain systems,
R. Zi, X. Ge, J. Thompson, et al., “Energy efficiency opti mization of 5G radio frequency chain systems,” IEEE Journal on Selected Areas in Communications, vol. 34, no. 4, pp. 758–771, March 2016
work page 2016
-
[31]
C. Jeong, I. M. Kim, D. I. Kim, “Joint secure beamforming design at the source and the relay for an amplify-and-forward MIMO unt rusted relay system,” IEEE Transactions on Signal Processing , vol. 60, no. 1, pp. 310–325, Oct. 2012
work page 2012
-
[32]
Secrecy Rate Op timizations for a MIMO Secrecy Channel With a Multiple-Antenna Eavesdro pper,
K. Cumanan, Z. Ding, B. S. Sharif, et al, “Secrecy Rate Op timizations for a MIMO Secrecy Channel With a Multiple-Antenna Eavesdro pper,” IEEE Trans. V ehicular Technology, vol. 63, no. 4, pp. 1678–1690, May 2014
work page 2014
-
[33]
Outage constrain ed secrecy throughput maximization for DF relay networks,
T. X. Zheng, H. M. Wang, F. Liu, et al., “Outage constrain ed secrecy throughput maximization for DF relay networks,” IEEE Transactions on Communications, vol. 63, no. 5, pp. 1741–1755, March 2015
work page 2015
-
[34]
X. Zhou and M. R. McKay, “Secure transmission with artifi cial noise over fading channels: achievable rate and optimal power all ocation,” IEEE Trans. V eh. Technol., vol. 59, no. 7, pp. 3831–3842, Jul. 2010
work page 2010
-
[35]
Secure massive MIMO systems with limited RF chains,
J. Zhu, W. Xu, N. Wang, “Secure massive MIMO systems with limited RF chains,” IEEE Trans. V eh. Technol. , vol. 66, no. 6, pp. 5455–5460, June 2017
work page 2017
-
[36]
Low-complexity hybrid precod ing in mas- sive multiuser MIMO systems,
L. Liang, W. Xu, X. Dong, “Low-complexity hybrid precod ing in mas- sive multiuser MIMO systems,” IEEE Wireless Communications Letters , vol. 3, no. 6, pp. 653–656, Dec. 2014
work page 2014
-
[37]
Secure transmissio n in multicell massive MIMO systems,
J. Zhu, R. Schober, V . R. Bhargava, “Secure transmissio n in multicell massive MIMO systems,” IEEE Transactions on Wireless Communica- tions, vol. 13, no. 9, pp. 4766–4781, Sep. 2014
work page 2014
-
[38]
On nonlinear fractional programming,
W. Dinkelbach, “On nonlinear fractional programming, ” Management Science, vol. 13, no. 7, pp. 492–498, Mar. 1967
work page 1967
-
[39]
Fractional programming. II, on Dinkelba ch’s algorithm,
S. Schaible, “Fractional programming. II, on Dinkelba ch’s algorithm,” Managment Science, vol. 22, no. 8, pp. 868–873, Apr. 1976
work page 1976
-
[40]
Energy-efficient re source allocation in multi-cell OFDMA systems with limited backha ul capacity,
D. W. K. Ng, E. S. Lo, and R. Schober, “Energy-efficient re source allocation in multi-cell OFDMA systems with limited backha ul capacity,” IEEE Trans. Wireless Commun. , vol. 11, no. 10, pp. 3618–3631, Oct. 2012
work page 2012
-
[41]
M. S. Bazaraa, H. D. Sherali, and C. M. Shetty, Nonlinear Programming: Theory and Algorithms , John Wiley & Sons, 2013
work page 2013
-
[42]
Recent advances in DC program ming and DCA,
T. P . Dinh and H. A. L. Thi, “Recent advances in DC program ming and DCA,” Transactions on Computational Intelligence XIII. Springe r, V ol. 8342, pp. 1–37, 2014
work page 2014
-
[43]
Beamfo rming optimization in multi-user amplify-and-forward wireless relay networks,
A. H. Phan, H. D. Tuan, H. H. Kha, and H. H. Nguyen, “Beamfo rming optimization in multi-user amplify-and-forward wireless relay networks,” IEEE Trans. Wireless Commun., vol. 11, no. 4, pp. 1510–1520, Apr. 2012
work page 2012
-
[44]
X. Chen, L. Lei, “Energy-efficient optimization for phy sical layer security in multi-antenna downlink networks with QoS guara ntee,” IEEE Communications Letters , vol. 17, no. 4, pp. 637–640, Apr. 2013
work page 2013
-
[45]
Hybrid Analog-Di gital Precoding Design for Secrecy mmWave MISO-OFDM Systems,
Y . R. Ramadan, H. Minn, A. S. Ibrahim, “Hybrid Analog-Di gital Precoding Design for Secrecy mmWave MISO-OFDM Systems,” IEEE Transactions on Communications , vol. 65, no. 11, pp. 5009–5026, Nov. 2017
work page 2017
discussion (0)
Sign in with ORCID, Apple, or X to comment. Anyone can read and Pith papers without signing in.