2018
DOI: 10.1109/access.2018.2869897
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Multi-Objective Optimization for Location Prediction of Mobile Devices in Sensor-Based Applications

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Cited by 39 publications
(12 citation statements)
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“…In straightforward terms, mutation might be characterized as a little arbitrary change in the chromosome, to get another arrangement. A case of a mutation administrator includes a likelihood that a discretionary piece in a genetic grouping will be transformed from its unique state [7]. A typical strategy for actualizing the mutation administrator includes producing an irregular variable for each piece in an arrangement.…”
Section: Phase 4: Crossovermentioning
confidence: 99%
“…In straightforward terms, mutation might be characterized as a little arbitrary change in the chromosome, to get another arrangement. A case of a mutation administrator includes a likelihood that a discretionary piece in a genetic grouping will be transformed from its unique state [7]. A typical strategy for actualizing the mutation administrator includes producing an irregular variable for each piece in an arrangement.…”
Section: Phase 4: Crossovermentioning
confidence: 99%
“…Details can be found in Section IV-A. 2 Finally, existing similarity computation methods of users' GPS trajectories fail to meet the distance metric axioms. To address the problem, we convert users' distance to an optimal solution of a balanced transportation problem.…”
Section: Definition 3 (Stay Region): a Stay Region Sr Is A Geographicmentioning
confidence: 99%
“…These data contain valuable information for user behavior analysis. For instance, many efforts have been devoted to analyze users' spatiotemporal data to provide location-based services, such as location prediction [1], [2], location recommendation [3], [4], friend recommendation [5], [6], community discovery [7], [8] and link prediction [9]. For the above applications, the user similarity measure is an extremely important step.…”
Section: Introductionmentioning
confidence: 99%
“…Next, we will carry out further convergence analysis on (36), and prove that the weight vector θ (t) can converge to the eigenvector corresponding to the minimum eigenvalue σ m of the autocorrelation matrix. According to (35) and (45), it can be known that for all t ≥ 0, there are…”
Section: Improved Mca Algorithm With Fast Convergencementioning
confidence: 99%
“…As a powerful tool for data analysis, neural networks has been successfully used in many practical applications [4], [5], [7], [9], [10], [12], [14]- [20], [22]- [24], [28], [33], [36], [37], [40], [43]- [45], in which neural network learning algorithms play an essential role. MCA neural network algorithms are usually represented as Stochastic Discrete Time (SDT) systems.…”
Section: Introductionmentioning
confidence: 99%