Description: Please refer to the section BELOW (and NOT ABOVE) this line for the product details - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - - Title:Machine Learning In Complex NetworksISBN13:9783319792347ISBN10:3319792342Author:Christiano Silva, Thiago (Author), Zhao, Liang (Author)Description:This Book Presents The Features And Advantages Offered By Complex Networks In The Machine Learning Domain In The First Part, An Overview On Complex Networks And Network-Based Machine Learning Is Presented, Offering Necessary Background Material In The Second Part, We Describe In Details Some Specific Techniques Based On Complex Networks For Supervised, Non-Supervised, And Semi-Supervised Learning Particularly, A Stochastic Particle Competition Technique For Both Non-Supervised And Semi-Supervised Learning Using A Stochastic Nonlinear Dynamical System Is Described In Details Moreover, An Analytical Analysis Is Supplied, Which Enables One To Predict The Behavior Of The Proposed Technique In Addition, Data Reliability Issues Are Explored In Semi-Supervised Learning Such Matter Has Practical Importance And Is Not Often Found In The Literature With The Goal Of Validating These Techniques For Solving Real Problems, Simulations On Broadly Accepted Databases Are Conducted Still In This Book, We Present A Hybrid Supervised Classification Technique That Combines Both Low And High Orders Of Learning The Low Level Term Can Be Implemented By Any Classification Technique, While The High Level Term Is Realized By The Extraction Of Features Of The Underlying Network Constructed From The Input Data Thus, The Former Classifies The Test Instances By Their Physical Features, While The Latter Measures The Compliance Of The Test Instances With The Pattern Formation Of The Data We Show That The High Level Technique Can Realize Classification According To The Semantic Meaning Of The Data This Book Intends To Combine Two Widely Studied Research Areas, Machine Learning And Complex Networks, Which In Turn Will Generate Broad Interests To Scientific Community, Mainly To Computer Science And Engineering Areas Binding:Paperback, PaperbackPublisher:SpringerPublication Date:2018-03-30Weight:0 lbsDimensions:Number of Pages:331Language:English
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Book Title: Machine Learning In Complex Networks
Item Length: 9.3in
Item Width: 6.1in
Author: Liang Zhao, Thiago Christiano Silva
Publication Name: Machine Learning in Complex Networks
Format: Trade Paperback
Language: English
Publisher: Springer International Publishing A&G
Publication Year: 2018
Type: Textbook
Item Weight: 19 Oz
Number of Pages: Xviii, 331 Pages