Proceedings of ELM-2014 Volume 2

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This book contains some selected papers from the International Conference on Extreme Learning Machine 2014, which was held in Singapore, December 8-10, 2014. This conference brought together the researchers and practitioners of Extreme Learning Machine (ELM) from a variety of fields to promote research and development of learning without iterative tuning. The book covers theories, algorithms and applications of ELM. It gives the readers a glance of the most recent advances of ELM.


Recent research on Extreme Learning Machines Results of the International Conference on Extreme Learning Machines (ELM-2014) held at Marina Bay Sands, Singapore, December 8-10, 2014 Presents Theory, Algorithms and Applications

Inhalt
Using Extreme Learning Machine for Filamentous Bulking Prediction and Forecast in Wastewater Treatment Plants.- Extreme Learning Machine for Linear Dynamical Systems Classification: Application to Human Activity Recognition.- Lens Distortion Correction Using ELM.- Pedestrian Detection in Thermal Infrared Image using Extreme Learning Machine.- Dynamic Texture Video Classification Using Extreme Learning Machine.- Uncertain XML Documents Classification Using Extreme Learning Machine.- Encrypted traffic identification based on randomness sparse feature and extreme learning machine.- Network Intrusion Detection Based on Extreme Learning Machine.- A Study on Three-dimensional Motion History Image and Extreme Learning Machine Oriented Body Movements Trajectory Recognition.- An Improved ELM Algorithm for the Measurement of Hot Metal Temperature in Blast Furnace.- Wi-Fi and Motion Sensors based Indoor Localization Combining ELM and Particle Filter.- Online Sequential Extreme Learning Machine for Watermarking.- Adaptive neural control of quadrotor helicopter with extreme learning machine.- Keyword Search on Probabilistic XML Data based on ELM.- A Novel HVS Based Gray Scale Image Watermarking Scheme Using Fast Fuzzy - ELM Hybrid Architecture.- Wearable EyeGlass based Fall Detection using Weighted ELM.- Concise Feature Extraction based ELM for Active Service Quality Prediction.- Multi-class AdaBoost ELM and Its Application in LBP Based Face Recognition.- Detecting Copy Directions among Programs Using Extreme Learning Machines.- Extreme learning machine for reservoir parameter estimation in heterogeneous reservoir.- Multifault Diagnosis for Rolling Element Bearings Based on Extreme Learning Machine.- Gradient-based No-Reference Image Blur Assessment Using Extreme Learning Machine.- RFID Enabled Indoor Positioning for Real-time Manufacturing Execution System based on OS-ELM.- An Online Sequential Extreme Learning Machine for Tidal Prediction based on Improved Gath-Geva Fuzzy Segmentation.- Recognition of Human Stair Ascent and Descent Activities based on Extreme Learning Machine.- ELM Based Dynamic Modeling for Online Prediction of Content in Molten Iron.- Distributed Learning over Massive XML Documents in ELM Feature Space.- Hyperspectral Image Nonlinear Unmixing by Ensemble ELM Regression.- Text-Image Separation and Indexing in Historic Patent Document Image Based on Extreme Learning Machine.- Anomaly Detection with ELM-based Visual Attribute and Spatio-temporal Pyramid.- Modelling and Prediction of Surface Roughness and Power Consumption using Parallel Extreme Learning Machine based Particle Swarm Optimization.- OS-ELM based Emotion Recognition for Empathetic Elderly Companion.- Access Behavior Prediction in Distributed StorageSystem using Regularized Extreme Learning Machine.- ELM Based Fast CFD Model with Sensor Adjustment.- Melasma Image Segmentation Using Extreme Learning Machine.- Detection of Drivers' Distraction Using Semi-Supervised Extreme Learning Machine.- Driver Workload Detection in On-road Driving Environment using Machine Learning.

Weitere Informationen

  • Allgemeine Informationen
    • GTIN 09783319140650
    • Auflage 2015
    • Editor Jiuwen Cao, Kezhi Mao, Kar-Ann Toh, Zhihong Man, Erik Cambria
    • Sprache Englisch
    • Genre Allgemeines & Lexika
    • Lesemotiv Verstehen
    • Größe H241mm x B160mm x T28mm
    • Jahr 2014
    • EAN 9783319140650
    • Format Fester Einband
    • ISBN 3319140655
    • Veröffentlichung 29.12.2014
    • Titel Proceedings of ELM-2014 Volume 2
    • Untertitel Applications
    • Gewicht 776g
    • Herausgeber Springer International Publishing
    • Anzahl Seiten 408

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