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Given that AP J is serving MS j in DL, MS j will be receiving interference from all APs in DL (A d ) except AP J and all MSs in UL (m u ).
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The MS receives interference from BSs that are a mixture of femto and macro-BSs.
As shown in Fig. 7, for a K-user symmetric interference channel, each user receives interference from other K−1 users.
These issues are further aggravated in dense cities where the HAN also receives interference from neighboring HANs.
Unlike the HSPA main carrier (F 1), F 2 does not receive interference from any other layer.
But for the multi-cell scenario, both the BS and D2D users receive interference from the other cell.
Generally, a center SU can receive interference from the PU and interference from other center SUs when an edge SU can only receive interference information from co-channel SUs [17].
In the multi-cell scenario, users receive interference from both cells, while the single-cell scenario's interference is caused within its own cell.
Destination D 1 receives the same signal as it would have in its induced subgraph, and destination D 3 receives interference from source S 2.
As mentioned before, in the deployment scenario, L 4 has been selected to offload traffic from macro-cells because it does not receive interference from any other layer.
In fact, a center SU can receive interference from the PU and interference from other center SUs while an edge SU can only accept interference information from co-channel SUs, as illustrated in [17, 37].
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