000790084 000__ 04654cam\a2200517Ii\4500 000790084 001__ 790084 000790084 005__ 20230306143357.0 000790084 006__ m\\\\\o\\d\\\\\\\\ 000790084 007__ cr\cn\nnnunnun 000790084 008__ 170627s2017\\\\si\a\\\\ob\\\\001\0\eng\d 000790084 019__ $$a992335026$$a992729455 000790084 020__ $$a9789811043222$$q(electronic book) 000790084 020__ $$a9811043221$$q(electronic book) 000790084 020__ $$z9789811043215 000790084 020__ $$z9811043213 000790084 035__ $$aSP(OCoLC)ocn991854423 000790084 035__ $$aSP(OCoLC)991854423$$z(OCoLC)992335026$$z(OCoLC)992729455 000790084 040__ $$aN$T$$beng$$erda$$epn$$cN$T$$dGW5XE$$dN$T$$dEBLCP$$dYDX$$dUAB 000790084 049__ $$aISEA 000790084 050_4 $$aRC71.6 000790084 08204 $$a616.07/5$$223 000790084 1001_ $$aZhang, David,$$eauthor. 000790084 24510 $$aBreath analysis for medical applications /$$cDavid Zhang, Dongmin Guo, Ke Yan. 000790084 264_1 $$aSingapore :$$bSpringer,$$c2017. 000790084 300__ $$a1 online resource (xiii, 309 pages) :$$billustrations. 000790084 336__ $$atext$$btxt$$2rdacontent 000790084 337__ $$acomputer$$bc$$2rdamedia 000790084 338__ $$aonline resource$$bcr$$2rdacarrier 000790084 504__ $$aIncludes bibliographical references and index. 000790084 5050_ $$aPreface; Contents; Background; 1 Introduction; 1.1 Background and Motivation; 1.1.1 Why Is Breath Analysis Used in Disease Diagnosis?; 1.1.2 Why Should Breath Analysis System Be Developed?; 1.1.3 Why Should Specific Algorithms Be Designed for Breath Analysis?; 1.2 Relative Technologies; 1.3 Outline of the Work; References; 2 Literature Review; 2.1 Introduction; 2.2 Development of Breath Analysis; 2.3 Breath Analysis by GC; 2.3.1 Lung Cancer; 2.3.2 Lipid Peroxidation; 2.3.3 Renal Diseases; 2.3.4 Liver Diseases; 2.3.5 Breast Cancer; 2.3.6 Diabetes; 2.3.7 Pulmonary Tuberculosis; 2.3.8 Summary 000790084 5058_ $$a2.4 Breath Analysis by E-Nose2.5 Summary; References; Breath Acquisition Systems; 3 A Novel Breath Acquisition System Design; 3.1 Introduction; 3.2 Breath Analysis; 3.3 Description of the System; 3.3.1 Breath Gas Collecting; 3.3.2 Signal Sampling; 3.3.3 Data Analysis; 3.4 Experiments; 3.4.1 Evaluating Outcomes of Hemodialysis; 3.4.2 Distinguishing Between Subject Breath Samples; 3.5 Results and Discussion; 3.5.1 Results Evaluating Outcomes of Hemodialysis; 3.5.2 Results Distinguishing Between Subject Breath Samples; 3.6 Summary; References; 4 An LDA-Based Sensor Selection Approach 000790084 5058_ $$a4.1 Introduction4.2 LDA-Based Approach: Definition and Algorithm; 4.2.1 Data Expression; 4.2.2 Find Out the Optimum Direction by LDA; 4.2.3 Difference Between Two Classes as the Linear Combination of Sensors; 4.2.4 Weight of Sensor; 4.2.5 Algorithm Conclusion; 4.3 Sensor Selection in Breath Analysis System; 4.3.1 Sensor Selection for Disease Diagnosis; 4.3.2 Evaluating the Medical Treatment; 4.4 Comparison Experiment and Performance Analysis; 4.4.1 Sensor Selection for Disease Diagnosis; 4.4.2 Evaluating the Medical Treatment; 4.5 Summary; References 000790084 5058_ $$a5 Sensor Evaluation in a Breath Acquisition SystemAbstract; 5.1 Introduction; 5.2 System Description; 5.2.1 Framework of the Device; 5.2.2 Sensor Array; 5.2.3 Sampling Procedure; 5.2.4 Data Analysis; 5.3 Sensor Evaluation Methods; 5.3.1 Cumulative Sensor Importance; 5.3.2 Average Accuracy Improvement; 5.3.3 Sensor Inter-relationship; 5.4 Experiments and Discussion; 5.4.1 Experiment Configuration; 5.4.2 Sensor Evaluation Results; 5.4.3 Discussion; 5.5 Summary; References; Breath Signal Pre-processing; 6 Improving the Transfer Ability of Prediction Models; 6.1 Introduction 000790084 5058_ $$a6.2 Design of Methods6.2.1 Windowed Piecewise Direct Standardization (WPDS); 6.2.2 Standardization-Error-Based Model Improvement (SEMI); 6.3 Experimental Details; 6.3.1 E-nose Module; 6.3.2 Dataset; 6.3.3 Preprocessing and Feature Extraction; 6.3.4 Data Analysis Procedure; 6.4 Results and Discussion; 6.4.1 Standardization; 6.4.2 Prediction; 6.5 Summary; References; 7 Learning Classification and Regression Models Based on Transfer Samples; Abstract; 7.1 Introduction; 7.2 Related Work; 7.3 Transfer-Sample-Based Multitask Learning (TMTL); 7.3.1 Transfer-Sample-Based Coupled Task Learning (TCTL) 000790084 506__ $$aAccess limited to authorized users. 000790084 588__ $$aOnline resource; title from PDF title page (SpringerLink, viewed June 28, 2017). 000790084 650_0 $$aDiagnosis. 000790084 650_0 $$aBreath tests. 000790084 650_0 $$aBiochemical markers. 000790084 7001_ $$aGuo, Dongmin,$$eauthor. 000790084 7001_ $$aYan, Ke,$$eauthor. 000790084 77608 $$iPrint version:$$z9789811043215$$z9811043213$$w(OCoLC)973920456 000790084 852__ $$bebk 000790084 85640 $$3SpringerLink$$uhttps://univsouthin.idm.oclc.org/login?url=http://link.springer.com/10.1007/978-981-10-4322-2$$zOnline Access$$91397441.1 000790084 909CO $$ooai:library.usi.edu:790084$$pGLOBAL_SET 000790084 980__ $$aEBOOK 000790084 980__ $$aBIB 000790084 982__ $$aEbook 000790084 983__ $$aOnline 000790084 994__ $$a92$$bISE