Literature DB >> 27654978

Deep Neural Networks for Identifying Cough Sounds.

Justice Amoh, Kofi Odame.   

Abstract

In this paper, we consider two different approaches of using deep neural networks for cough detection. The cough detection task is cast as a visual recognition problem and as a sequence-to-sequence labeling problem. A convolutional neural network and a recurrent neural network are implemented to address these problems, respectively. We evaluate the performance of the two networks and compare them to other conventional approaches for identifying cough sounds. In addition, we also explore the effect of the network size parameters and the impact of long-term signal dependencies in cough classifier performance. Experimental results show both network architectures outperform traditional methods. Between the two, our convolutional network yields a higher specificity 92.7% whereas the recurrent attains a higher sensitivity of 87.7%.

Mesh:

Year:  2016        PMID: 27654978     DOI: 10.1109/TBCAS.2016.2598794

Source DB:  PubMed          Journal:  IEEE Trans Biomed Circuits Syst        ISSN: 1932-4545            Impact factor:   3.833


  12 in total

1.  FluNet: An AI-Enabled Influenza-Like Warning System.

Authors:  Ryan J Ward; Fred Paul Mark Jjunju; Isa Kabenge; Rhoda Wanyenze; Elias J Griffith; Noble Banadda; Stephen Taylor; Alan Marshall
Journal:  IEEE Sens J       Date:  2021-09-16       Impact factor: 3.301

2.  FluSense: A Contactless Syndromic Surveillance Platform for Influenza-Like Illness in Hospital Waiting Areas.

Authors:  Forsad Al Hossain; Andrew A Lover; George A Corey; Nicholas G Reich; Tauhidur Rahman
Journal:  Proc ACM Interact Mob Wearable Ubiquitous Technol       Date:  2020-03-18

3.  Project Achoo: A Practical Model and Application for COVID-19 Detection From Recordings of Breath, Voice, and Cough.

Authors:  Alexander Ponomarchuk; Ilya Burenko; Elian Malkin; Ivan Nazarov; Vladimir Kokh; Manvel Avetisian; Leonid Zhukov
Journal:  IEEE J Sel Top Signal Process       Date:  2022-01-13       Impact factor: 7.695

4.  Cough detection using a non-contact microphone: A nocturnal cough study.

Authors:  Marina Eni; Valeria Mordoh; Yaniv Zigel
Journal:  PLoS One       Date:  2022-01-19       Impact factor: 3.240

5.  Automatic Recognition, Segmentation, and Sex Assignment of Nocturnal Asthmatic Coughs and Cough Epochs in Smartphone Audio Recordings: Observational Field Study.

Authors:  Filipe Barata; Peter Tinschert; Frank Rassouli; Claudia Steurer-Stey; Elgar Fleisch; Milo Alan Puhan; Martin Brutsche; David Kotz; Tobias Kowatsch
Journal:  J Med Internet Res       Date:  2020-07-14       Impact factor: 5.428

Review 6.  The present and future of cough counting tools.

Authors:  Jocelin Isabel Hall; Manuel Lozano; Luis Estrada-Petrocelli; Surinder Birring; Richard Turner
Journal:  J Thorac Dis       Date:  2020-09       Impact factor: 3.005

7.  End-to-End AI-Based Point-of-Care Diagnosis System for Classifying Respiratory Illnesses and Early Detection of COVID-19: A Theoretical Framework.

Authors:  Abdelkader Nasreddine Belkacem; Sofia Ouhbi; Abderrahmane Lakas; Elhadj Benkhelifa; Chao Chen
Journal:  Front Med (Lausanne)       Date:  2021-03-31

8.  Cough Sound Detection and Diagnosis Using Artificial Intelligence Techniques: Challenges and Opportunities.

Authors:  Kawther S Alqudaihi; Nida Aslam; Irfan Ullah Khan; Abdullah M Almuhaideb; Shikah J Alsunaidi; Nehad M Abdel Rahman Ibrahim; Fahd A Alhaidari; Fatema S Shaikh; Yasmine M Alsenbel; Dima M Alalharith; Hajar M Alharthi; Wejdan M Alghamdi; Mohammed S Alshahrani
Journal:  IEEE Access       Date:  2021-07-15       Impact factor: 3.367

9.  COVID-19 cough classification using machine learning and global smartphone recordings.

Authors:  Madhurananda Pahar; Marisa Klopper; Robin Warren; Thomas Niesler
Journal:  Comput Biol Med       Date:  2021-06-17       Impact factor: 4.589

10.  Diagnosis of COVID-19 and non-COVID-19 patients by classifying only a single cough sound.

Authors:  Mesut Melek
Journal:  Neural Comput Appl       Date:  2021-07-30       Impact factor: 5.102

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