Lung sound classification using cepstral-based statistical features
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[1] Jim Euchner. Design , 2014, Catalysis from A to Z.
[2] G. G. Stokes. "J." , 1890, The New Yale Book of Quotations.
[3] Anil K. Bera,et al. Efficient tests for normality, homoscedasticity and serial independence of regression residuals , 1980 .
[4] W. Knowler,et al. Visual lung-sound characterization by time-expanded wave-form analysis. , 1977, The New England journal of medicine.
[5] G R Sutherland,et al. Assessing diagnosis in heart failure: which features are any use? , 1997, QJM : monthly journal of the Association of Physicians.
[6] Simon Haykin,et al. Neural Networks and Learning Machines , 2010 .
[7] Mohammed Bahoura,et al. Pattern recognition methods applied to respiratory sounds classification into normal and wheeze classes , 2009, Comput. Biol. Medicine.
[8] P Nohama,et al. Method for automatic detection of wheezing in lung sounds. , 2009, Brazilian journal of medical and biological research = Revista brasileira de pesquisas medicas e biologicas.
[9] Sonia Charleston-Villalobos,et al. Assessment of multichannel lung sounds parameterization for two-class classification in interstitial lung disease patients , 2011, Comput. Biol. Medicine.
[10] N. P. Jawarkar,et al. Cell Phone Based Remote Early Detection of Respiratory Disorders for Rural Children Using Modified Stethoscope , 2012, 2012 International Conference on Communication Systems and Network Technologies.
[11] Beat Kleiner,et al. Graphical Methods for Data Analysis , 1983 .
[12] D.P. Skinner,et al. The cepstrum: A guide to processing , 1977, Proceedings of the IEEE.
[13] Goutam Saha,et al. Improved Closed Set Text-Independent Speaker Identification by Combining MFCC with Evidence from Flipped Filter Banks , 2008 .
[14] Sridhar Krishnan,et al. Adventitious Sounds Identification and Extraction Using Temporal–Spectral Dominance-Based Features , 2011, IEEE Transactions on Biomedical Engineering.
[15] Martin A. Riedmiller,et al. A direct adaptive method for faster backpropagation learning: the RPROP algorithm , 1993, IEEE International Conference on Neural Networks.
[16] H Hermansky,et al. Perceptual linear predictive (PLP) analysis of speech. , 1990, The Journal of the Acoustical Society of America.
[17] Goutam Saha,et al. In search of an optimization technique for Artificial Neural Network to classify abnormal heart sounds , 2009, Appl. Soft Comput..
[18] Ronald W. Schafer,et al. Introduction to Digital Speech Processing , 2007, Found. Trends Signal Process..
[19] Kenneth Sundaraj,et al. Computer-based Respiratory Sound Analysis: A Systematic Review , 2013 .
[20] Y P Kahya,et al. Comparison of AR-based algorithms for respiratory sounds classification. , 1994, Computers in biology and medicine.
[21] C. Carrington,et al. Crackles (rales) in the interstitial pulmonary diseases. , 1978, Chest.
[22] Zahra Moussavi,et al. Fundamentals of Respiratory Sounds and Analysis , 2006, Fundamentals of Respiratory Sounds and Analysis.
[23] P Forgacs,et al. The functional basis of pulmonary sounds. , 1978, Chest.
[24] J. Blacher,et al. Carotid arterial stiffness as a predictor of cardiovascular and all-cause mortality in end-stage renal disease. , 1998, Hypertension.
[25] A. Bohadana,et al. Fundamentals of lung auscultation. , 2014, The New England journal of medicine.
[26] N. Malmurugan,et al. Neural classification of lung sounds using wavelet coefficients , 2004, Comput. Biol. Medicine.
[27] Christopher M. Bishop,et al. Current address: Microsoft Research, , 2022 .
[28] P. Mayorga,et al. Acoustics based assessment of respiratory diseases using GMM classification , 2010, 2010 Annual International Conference of the IEEE Engineering in Medicine and Biology.
[29] Tan-Hsu Tan,et al. Using K-Nearest Neighbor Classification to Diagnose Abnormal Lung Sounds , 2015, Sensors.
[30] D. Mannino. COPD: epidemiology, prevalence, morbidity and mortality, and disease heterogeneity. , 2002, Chest.
[31] Arnon D. Cohen,et al. Analysis and Automatic Classification of Breath Sounds , 1984, IEEE Transactions on Biomedical Engineering.
[32] Jingzhi Cheng,et al. A cepstral method for analysis of acoustic transmission characteristics of respiratory system. , 1998, IEEE transactions on bio-medical engineering.
[33] Sridhar Krishnan,et al. Signal feature extraction by multi-scale PCA and its application to respiratory sound classification , 2012, Medical & Biological Engineering & Computing.
[34] D. Fabian,et al. The global burden of asthma: executive summary of the GINA Dissemination Committee Report , 2004, Allergy.
[35] Goutam Saha,et al. Design, analysis and experimental evaluation of block based transformation in MFCC computation for speaker recognition , 2012, Speech Commun..
[36] E. Andrès,et al. Analysis of Respiratory Sounds: State of the Art , 2008, Clinical medicine. Circulatory, respiratory and pulmonary medicine.
[37] Gwo-Ching Chang,et al. Performance evaluation and enhancement of lung sound recognition system in two real noisy environments , 2010, Comput. Methods Programs Biomed..
[38] Douglas A. Reynolds,et al. Robust text-independent speaker identification using Gaussian mixture speaker models , 1995, IEEE Trans. Speech Audio Process..
[39] Alvaro D. Orjuela-Cañón,et al. Artificial Neural Networks for Acoustic Lung Signals Classification , 2014, CIARP.
[40] Nizamettin Aydin,et al. Feature extraction using time-frequency/scale analysis and ensemble of feature sets for crackle detection , 2011, 2011 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[41] P. Piirilä,et al. Crackles: recording, analysis and clinical significance. , 1995, The European respiratory journal.
[42] Goutam Saha,et al. On the use of perceptual Line Spectral pairs Frequencies and higher-order residual moments for Speaker Identification , 2010, Int. J. Biom..
[43] Goutam Saha,et al. Reduction of heart sound interference from lung sound signals using empirical mode decomposition technique , 2011, Journal of medical engineering & technology.
[44] Tom Fawcett,et al. An introduction to ROC analysis , 2006, Pattern Recognit. Lett..
[45] Douglas D. O'Shaughnessy. Speech Communications: Human and Machine , 2012 .
[46] Stan Davis,et al. Comparison of Parametric Representations for Monosyllabic Word Recognition in Continuously Spoken Se , 1980 .
[47] Keinosuke Fukunaga,et al. Introduction to Statistical Pattern Recognition , 1972 .
[48] J. Wolf. Efficient Acoustic Parameters for Speaker Recognition , 1972 .
[50] Stephen J. Cox,et al. Evaluating feature set performance using the f-ratio and j-measures , 1997, EUROSPEECH.
[51] P Piirilä,et al. [Analysis of respiratory sounds]. , 1987, Duodecim; laaketieteellinen aikakauskirja.
[52] E. H. Dooijes,et al. Classification of Asthmatic Breath Sounds: Preliminary Results of the Classifying Capacity of Human Examiners versus Artificial Neural Networks , 1999, Comput. Biomed. Res..
[53] Walker Hk,et al. Wheezing and Asthma -- Clinical Methods: The History, Physical, and Laboratory Examinations , 1990 .
[54] Stuart A. Bowyer,et al. Automatic adventitious respiratory sound analysis: A systematic review , 2017, PloS one.
[55] David G. Stork,et al. Pattern Classification , 1973 .
[56] Jen-Chien Chien,et al. Wheeze Detection Using Cepstral Analysis in Gaussian Mixture Models , 2007, 2007 29th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[57] S. Braman. The global burden of asthma. , 2006, Chest.
[58] Jr. Henry Gong,et al. Wheezing and Asthma , 2020, Berkowitz’s Pediatrics Instructor’s Guide.
[59] Mohammed Bahoura,et al. An integrated automated system for crackles extraction and classification , 2008, Biomed. Signal Process. Control..
[60] A. K. Majumder,et al. Frequency analysis of adventitious lung sounds. , 1982, Journal of biomedical engineering.
[61] R. Gonzalez-Camarena,et al. Computerized Classification of Normal and Abnormal Lung Sounds by Multivariate Linear Autoregressive Model , 2005, 2005 IEEE Engineering in Medicine and Biology 27th Annual Conference.
[62] E. Zwicker,et al. Subdivision of the audible frequency range into critical bands , 1961 .
[63] Yasemin P. Kahya,et al. Design of a DSP-based instrument for real-time classification of pulmonary sounds , 2008, Comput. Biol. Medicine.
[64] Y Homma,et al. Spectral and waveform characteristics of fine and coarse crackles. , 1991, Thorax.
[65] B. Atal. Effectiveness of linear prediction characteristics of the speech wave for automatic speaker identification and verification. , 1974, The Journal of the Acoustical Society of America.
[66] Biing-Hwang Juang,et al. Fundamentals of speech recognition , 1993, Prentice Hall signal processing series.
[67] Paul H. King,et al. Representation and Classification of Breath Sounds Recorded in an Intensive Care Setting Using Neural Networks , 2004, Journal of Clinical Monitoring and Computing.
[68] M. Bahoura,et al. Respiratory sounds classification using cepstral analysis and Gaussian mixture models , 2004, The 26th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[69] Rajkumar Palaniappan,et al. Machine learning in lung sound analysis: a systematic review , 2013 .
[70] Daniel P. W. Ellis,et al. Speech and Audio Signal Processing - Processing and Perception of Speech and Music, Second Edition , 1999 .
[71] Ali Abbas,et al. An Automated Computerized Auscultation and Diagnostic System for Pulmonary Diseases , 2010, Journal of Medical Systems.
[72] Z. Moussavi,et al. Heart Sounds Separation From Lung Sounds Using Independent Component Analysis , 2005, 2005 IEEE Engineering in Medicine and Biology 27th Annual Conference.
[73] Sagar V. Kamarthi,et al. Feature Extraction From Wavelet Coefficients for Pattern Recognition Tasks , 1999, IEEE Trans. Pattern Anal. Mach. Intell..
[74] David G. Stork,et al. Pattern Classification (2nd ed.) , 1999 .
[75] Goutam Saha,et al. Detection of Lungs Status Using Morphological Complexities of Respiratory Sounds , 2014, TheScientificWorldJournal.