Title :
Access Policy Design for Cognitive Secondary Users Under a Primary Type-I HARQ Process
Author :
Joda, Roghayeh ; Zorzi, Michele
Author_Institution :
Dept. of Commun. Technol., Iran Telecommun. Res. Center, Tehran, Iran
Abstract :
In this paper, an underlay cognitive radio network that consists of an arbitrary number of secondary users (SU) is considered in which the primary user (PU) employs type-I hybrid automatic repeat request (HARQ). Exploiting the redundancy in PU retransmissions, each SU receiver applies forward interference cancelation to remove a successfully decoded PU message in the subsequent PU retransmissions. The knowledge of the PU message state at the SU receivers and the ACK/NACK message from the PU receiver are sent back to the transmitters. With this approach and using a constrained Markov decision process (CMDP) model and constrained multi-agent MDP (CMMDP), centralized and decentralized optimum access policies for SUs are proposed to maximize their average sum throughput under a PU throughput constraint. In the decentralized case, the channel access decision of each SU is unknown to the other SU. Numerical results demonstrate the benefits of the proposed policies in terms of sum throughput of SUs. The results also reveal that the centralized access policy design outperforms the decentralized design especially when the PU can tolerate a low average long term throughput. Finally, the difficulties in decentralized access policy design with partial state information are discussed.
Keywords :
Markov processes; automatic repeat request; cognitive radio; interference suppression; radio receivers; radiofrequency interference; ACK/NACK message; HARQ; access policy design; cognitive radio network; cognitive secondary users; constrained Markov decision process model; constrained multi-agent MDP; interference cancelation; primary user; receiver; type-I hybrid automatic repeat request; Automatic repeat request; Cognitive radio; Degradation; Interference; Receivers; Sun; Throughput; Cognitive radio network; HARQ; Markov decision processes; interference cancelation; resource allocation;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2015.2480846