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1.
Physiol Meas ; 37(12): 2181-2213, 2016 12.
Artículo en Inglés | MEDLINE | ID: mdl-27869105

RESUMEN

In the past few decades, analysis of heart sound signals (i.e. the phonocardiogram or PCG), especially for automated heart sound segmentation and classification, has been widely studied and has been reported to have the potential value to detect pathology accurately in clinical applications. However, comparative analyses of algorithms in the literature have been hindered by the lack of high-quality, rigorously validated, and standardized open databases of heart sound recordings. This paper describes a public heart sound database, assembled for an international competition, the PhysioNet/Computing in Cardiology (CinC) Challenge 2016. The archive comprises nine different heart sound databases sourced from multiple research groups around the world. It includes 2435 heart sound recordings in total collected from 1297 healthy subjects and patients with a variety of conditions, including heart valve disease and coronary artery disease. The recordings were collected from a variety of clinical or nonclinical (such as in-home visits) environments and equipment. The length of recording varied from several seconds to several minutes. This article reports detailed information about the subjects/patients including demographics (number, age, gender), recordings (number, location, state and time length), associated synchronously recorded signals, sampling frequency and sensor type used. We also provide a brief summary of the commonly used heart sound segmentation and classification methods, including open source code provided concurrently for the Challenge. A description of the PhysioNet/CinC Challenge 2016, including the main aims, the training and test sets, the hand corrected annotations for different heart sound states, the scoring mechanism, and associated open source code are provided. In addition, several potential benefits from the public heart sound database are discussed.


Asunto(s)
Acceso a la Información , Algoritmos , Bases de Datos Factuales , Ruidos Cardíacos , Fonocardiografía , Humanos , Procesamiento de Señales Asistido por Computador
2.
Comput Math Methods Med ; 2015: 157825, 2015.
Artículo en Inglés | MEDLINE | ID: mdl-26089957

RESUMEN

This paper considers the problem of classification of the first and the second heart sounds (S1 and S2) under cardiac stress test. The main objective is to classify these sounds without electrocardiogram (ECG) reference and without taking into consideration the systolic and the diastolic time intervals criterion which can become problematic and useless in several real life settings as severe tachycardia and tachyarrhythmia or in the case of subjects being under cardiac stress activity. First, the heart sounds are segmented by using a modified time-frequency based envelope. Then, to distinguish between the first and the second heart sounds, new features, named α(opt), ß, and γ, based on high order statistics and energy concentration measures of the Stockwell transform (S-transform) are proposed in this study. A study of the variation of the high frequency content of S1 and S2 over the HR (heart rate) is also discussed. The proposed features are validated on a database that contains 2636 S1 and S2 sounds corresponding to 62 heart signals and 8 subjects under cardiac stress test collected from healthy subjects. Results and comparisons with existing methods in the literature show a large superiority for our proposed features.


Asunto(s)
Prueba de Esfuerzo/estadística & datos numéricos , Ruidos Cardíacos/fisiología , Adulto , Biología Computacional , Diástole , Electrocardiografía/estadística & datos numéricos , Femenino , Auscultación Cardíaca/estadística & datos numéricos , Frecuencia Cardíaca , Humanos , Masculino , Modelos Cardiovasculares , Modelos Estadísticos , Fonocardiografía/estadística & datos numéricos , Valores de Referencia , Sístole , Factores de Tiempo , Adulto Joven
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