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THE HOTELLING''S TWO-SAMPLE T2 ALGORITHM
Details
Matching algorithms or classifiers determine if a previously enrolled instance matches an observed instance based on some rules. They return a decision, which consists of three possible answers: match, non-match, and unclassified. A classifier assigns a class label to a sample and then checks the new instance with a sample one. Or, the classifier is trained with example instances so that it learns what class label should be applied to future unknown instances. Classifiers are based on statistical, probabilistic, and decision rules. In applying classifiers, the most important issue is finding the matching rates. Two important rates are the false acceptance rate (FAR) and the false rejection rate (FRR). In this work, we determine the FAR and FRR for the Hotelling s two-sample T2 algorithm applied to the application of matching electronic fingerprints of radio frequency identification (RFID) tags in the presence of simulated noise. The algorithm is found to be a robust classifier for this application.
Autorentext
Nurbek P.Saparkhojayev, MS in CSCE: Studied Computer Science and Computer Engineering at University of Arkansas,Fayetteville, AR,USA. Ph.D student at L.N.Gumilyov Eurasian National University,Astana,Kazakhstan. Project Manager in Software Development and Lecturer at Suleyman Demirel University, Almaty,Kazakhstan.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783838326542
- Sprache Englisch
- Genre Maschinenbau
- Anzahl Seiten 80
- Größe H220mm x B150mm x T5mm
- Jahr 2010
- EAN 9783838326542
- Format Kartonierter Einband
- ISBN 3838326547
- Veröffentlichung 15.09.2010
- Titel THE HOTELLING''S TWO-SAMPLE T2 ALGORITHM
- Autor Nurbek Saparkhojayev
- Untertitel STATISTICAL CLASSIFIER: CASE STUDY OF THE HOTELLING''S TWO-SAMPLE T2 ALGORITHM IN THE PRESENCE OF NOISE
- Gewicht 137g
- Herausgeber LAP LAMBERT Academic Publishing