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In this case the interference between each node and any other node is prevented.
For simplicity, we assume slow and flat Rayleigh fading between each node, and there is no multipath fading or shadowing.
We achieve this by incorporating coordinated temporal randomization for slot schedules and slot durations between each node and its -hop neighbors.
The sensors always use maximum transmission power to deliver packets because sensors have no internal GPS chip for computing the distance between each node and because real environments involve significant interference and attenuation.
We assume that the channel between each node and fusion node is noiseless and each node sends its quantized (Quantizer, ) and encoded (ENC block) measurement to the fusion node, where decoding and localization are conducted in a distributed manner.
Therefore, we have attached a static routing table to each node and initialized it using Shortest Path First (SPF) algorithm, minimizing the number of hops between each node and any other destination.
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In DEEC, the cluster-heads are elected by a probability based on the ratio between residual energy of each node and the average energy of the network.
In BEENISH, CHs are selected based upon the ratio between residual energy of each node and average energy of the network.
In BEENISH, selection of CHs follow the probability that is the ratio between residual energy of each node and average energy of the network.
Within the network, correlations between estimated rates for each node and the mean estimated rates for their immediate neighbors were estimated using Spearman's ρ.
In order to assign the most suitable workload to each compute node and reasonably partition it between CPU and GPU within each node, and minimize the inter-node and intra-node communication costs, we design a communication-avoiding workload distribution scheme suitable for the parallel two-list algorithm.
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between each word and
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between each feature and
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