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Neural Information Processing: 31st International Conference, ICONIP 2024, Auckland, New Zealand, December 26, 2024, Proceedings, Part III [Paperback]

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  • Category: Books (Computers)
  • ISBN-10:  9819665817
  • ISBN-10:  9819665817
  • ISBN-13:  9789819665815
  • ISBN-13:  9789819665815
  • Publisher:  Springer
  • Publisher:  Springer
  • Pages:  410
  • Pages:  410
  • Binding:  Paperback
  • Binding:  Paperback
  • SKU:  9819665817-11-SPRI
  • SKU:  9819665817-11-SPRI
  • Item ID: 106943691
  • List Price: $89.99
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The eleven-volume set LNCS 15286-15296 constitutes the refereed proceedings of the 31st International Conference on Neural Information Processing, ICONIP 2024, held in Auckland, New Zealand, in December 2024.
The 318 regular papers presented in the proceedings set were carefully reviewed and selected from 1301 submissions. They focus on
four main areas, namely: theory and algorithms; cognitive neurosciences; human-centered computing; and applications.

FreeFlow: A Unified Viewpoint on Diffusion Probabilistic Models via Optimal Transport and Fluid Mechanics.- Optimizing CNNs with Gram Schmidt Non-Iterative Learning for Image Recognition.- Improving Multilingual Speech Recognition with Tucker-compressed Mixture of LoRAs.- MetaFix: Semi-Supervised Model Agnostic Meta-Learning using Consistency Regularization.- Towards Private and Fair Machine Learning: Group-Specific Differentially Private Stochastic Gradient Descent with Threshold Optimization.- LogMoE: Optimizing Mixture of Experts for Log Anomaly Detection via Knowledge Distillation.- Cross-Domain Few-Shot Learning with Equiangular Embedding and Dynamic Adversarial Augmentation.- ∞-Net: An Unsupervised Model for Online Graph Time-Series Denoising.- On Learnable Parameters of Optimal and Suboptimal Deep Learning Models.- Aero-engine Condition-Based Maintenance Planning Using  Reinforcement Learning.- Multi-Timescale Processing with Heterogeneous Assembly Echo StateNetworks.- ADERec: Adaptive Data Augmentation Sequence Recommendation Based on Dual Network Architecture.- Pruning neural network parameters using recurrent neural nl2

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