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1.
Neuroinformatics ; 20(2): 285-299, 2022 04.
Article in English | MEDLINE | ID: mdl-33843024

ABSTRACT

Anatomical and dynamical connectivity are essential to healthy brain function. However, quantifying variations in connectivity across conditions or between patient populations and appraising their functional significance are highly non-trivial tasks. Here we show that link ranking differences induce specific geometries in a convenient auxiliary space that are often easily recognisable at mere eye inspection. Link ranking can also provide fast and reliable criteria for network reconstruction parameters for which no theoretical guideline has been proposed.


Subject(s)
Alzheimer Disease , Brain/diagnostic imaging , Brain Mapping , Head , Humans , Magnetic Resonance Imaging , Nerve Net/diagnostic imaging , Neural Pathways/diagnostic imaging
2.
Comput Intell Neurosci ; 2019: 4368036, 2019.
Article in English | MEDLINE | ID: mdl-31341467

ABSTRACT

Speech technologies have been developed for decades as a typical signal processing area, while the last decade has brought a huge progress based on new machine learning paradigms. Owing not only to their intrinsic complexity but also to their relation with cognitive sciences, speech technologies are now viewed as a prime example of interdisciplinary knowledge area. This review article on speech signal analysis and processing, corresponding machine learning algorithms, and applied computational intelligence aims to give an insight into several fields, covering speech production and auditory perception, cognitive aspects of speech communication and language understanding, both speech recognition and text-to-speech synthesis in more details, and consequently the main directions in development of spoken dialogue systems. Additionally, the article discusses the concepts and recent advances in speech signal compression, coding, and transmission, including cognitive speech coding. To conclude, the main intention of this article is to highlight recent achievements and challenges based on new machine learning paradigms that, over the last decade, had an immense impact in the field of speech signal processing.


Subject(s)
Communication Aids for Disabled , Machine Learning , Speech Recognition Software , Humans
3.
Physiol Meas ; 40(3): 035001, 2019 03 22.
Article in English | MEDLINE | ID: mdl-30708353

ABSTRACT

OBJECTIVE: Over the last few decades, there has been significant interest in the automatic analysis of respiratory sounds. However, currently there are no publicly available large databases with which new algorithms can be evaluated and compared. Further developments in the field are dependent on the creation of such databases. APPROACH: This paper describes a public respiratory sound database, which was compiled for an international competition, the first scientific challenge of the IFMBE's International Conference on Biomedical and Health Informatics. The database includes 920 recordings acquired from 126 participants and two sets of annotations. One set contains 6898 annotated respiratory cycles, some including crackles, wheezes, or a combination of both, and some with no adventitious respiratory sounds. In the other set, precise locations of 10 775 events of crackles and wheezes were annotated. MAIN RESULTS: The best system that participated in the challenge achieved an average score of 52.5% with the respiratory cycle annotations and an average score of 91.2% with the event annotations. SIGNIFICANCE: The creation and public release of this database will be useful to the research community and could bring attention to the respiratory sound classification problem.


Subject(s)
Databases, Factual , Respiratory Sounds/diagnosis , Adult , Aged , Algorithms , Child, Preschool , Female , Humans , Male , Pulmonary Disease, Chronic Obstructive/complications , Signal Processing, Computer-Assisted
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