Statistical analysis techniques in particle physics : fits, density estimation and supervised learning /

Modern analysis of HEP data needs advanced statistical tools to separate signal from background. This is the first book which focuses on machine learning techniques. It will be of interest to almost every high energy physicist, and, due to its coverage, suitable for students.

Λεπτομέρειες βιβλιογραφικής εγγραφής
Κύριοι συγγραφείς: Narsky, Ilya (Συγγραφέας), Porter, Frank Clifford (Συγγραφέας)
Μορφή: Ηλ. βιβλίο
Γλώσσα:English
Έκδοση: Weinheim : Wiley-VCH, 2013.
Θέματα:
Διαθέσιμο Online:Full Text via HEAL-Link
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049 |a MAIN 
100 1 |a Narsky, Ilya,  |e author. 
245 1 0 |a Statistical analysis techniques in particle physics :  |b fits, density estimation and supervised learning /  |c Ilya Narsky and Frank C. Porter. 
264 1 |a Weinheim :  |b Wiley-VCH,  |c 2013. 
264 4 |c ©2014 
300 |a 1 online resource (xvii, 441 pages) :  |b illustrations 
336 |a text  |b txt  |2 rdacontent 
337 |a computer  |b c  |2 rdamedia 
338 |a online resource  |b cr  |2 rdacarrier 
588 0 |a Print version record. 
500 |a Includes index. 
520 |a Modern analysis of HEP data needs advanced statistical tools to separate signal from background. This is the first book which focuses on machine learning techniques. It will be of interest to almost every high energy physicist, and, due to its coverage, suitable for students. 
505 0 |a Why We Wrote This Book and How You Should Read It -- Parametric Likelihood Fits -- Goodness of Fit -- Resampling Techniques -- Density Estimation -- Basic Concepts and Definitions of Machine Learning -- Data Preprocessing -- Linear Transformations and Dimensionality Reduction -- Introduction to Classification -- Assessing Classifier Performance -- Linear and Quadratic Discriminant Analysis, Logistic Regression, and Partial Least Squares Regression -- Neural Networks -- Local Learning and Kernel Expansion -- Decision Trees -- Ensemble Learning -- Reducing Multiclass to Binary -- How to Choose the Right Classifier for Your Analysis and Apply It Correctly -- Methods for Variable Ranking and Selection -- Bump Hunting in Multivariate Data -- Software Packages for Machine Learning -- Appendix A: Optimization Algorithms. 
504 |a Includes bibliographical references and index. 
650 0 |a Particles (Nuclear physics)  |x Statistical methods. 
650 0 |a Physics. 
650 0 |a Condensed matter. 
650 4 |a Density. 
650 4 |a Statistical physics. 
650 7 |a SCIENCE  |x Energy.  |2 bisacsh 
650 7 |a SCIENCE  |x Mechanics  |x General.  |2 bisacsh 
650 7 |a SCIENCE  |x Physics  |x General.  |2 bisacsh 
650 7 |a Condensed matter.  |2 fast  |0 (OCoLC)fst00874443 
650 7 |a Particles (Nuclear physics)  |x Statistical methods.  |2 fast  |0 (OCoLC)fst01054153 
650 7 |a Physics.  |2 fast  |0 (OCoLC)fst01063025 
650 7 |a Science.  |2 ukslc 
655 4 |a Electronic books. 
655 0 |a Electronic books. 
700 1 |a Porter, Frank Clifford,  |e author. 
776 0 8 |i Print version:  |a Narsky, Ilya.  |t Statistical Analysis Techniques in Particle Physics : Fits, Density Estimation and Supervised Learning.  |d Hoboken : Wiley, ©2013  |z 9783527410866  |w (OCoLC)863691504 
856 4 0 |u https://doi.org/10.1002/9783527677320  |z Full Text via HEAL-Link 
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