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1. Accelerated Stochastic Variance Reduction Gradient Algorithms for Robust Subspace Clustering.

2. Weighted Aggregating Stochastic Gradient Descent for Parallel Deep Learning.

3. Group Better-Worse Algorithm: A Superior Swarm-based Metaheuristic Embedded with Jump Search.

4. Fast Objective & Duality Gap Convergence for Non-Convex Strongly-Concave Min-Max Problems with PL Condition.

5. Stochastic Variance Reduced Gradient Method Embedded with Positive Defined Stabilized Barzilai-Borwein.

6. Distributed Stochastic Consensus Optimization With Momentum for Nonconvex Nonsmooth Problems.

7. Policy Gradient Importance Sampling for Bayesian Inference.

8. Decentralized Learning: Theoretical Optimality and Practical Improvements.

9. Powered stochastic optimization with hypergradient descent for large-scale learning systems.

10. When is the Convergence Time of Langevin Algorithms Dimension Independent? A Composite Optimization Viewpoint.

11. Asymptotic Study of Stochastic Adaptive Algorithms in Non-convex Landscape.

12. A stochastic topology optimization algorithm for improved fluid dynamics systems

13. Practical Precoding via Asynchronous Stochastic Successive Convex Approximation.

14. Appropriate Learning Rates of Adaptive Learning Rate Optimization Algorithms for Training Deep Neural Networks