Audio content analysis for unobtrusive event detection in smart homes
暂无分享,去创建一个
Dimitrios Tzovaras | Liming Chen | Dimitrios Giakoumis | Konstantinos Votis | Anastasios Vafeiadis | Raouf Hamzaoui | D. Tzovaras | Liming Chen | R. Hamzaoui | K. Votis | Anastasios Vafeiadis | Dimitrios Giakoumis
[1] Ferdinand Fuhrmann,et al. Three Experiments on the Application of Automatic Speech Recognition in Industrial Environments , 2017, SLSP.
[2] Ronald M. Summers,et al. Deep Convolutional Neural Networks for Computer-Aided Detection: CNN Architectures, Dataset Characteristics and Transfer Learning , 2016, IEEE Transactions on Medical Imaging.
[3] Suleyman Bilgin,et al. The impact of Daubechies Wavelet performances on Ventricular Tachyarrhythmia Patients for determination of dominant frequency bands in HRV , 2009, 2009 14th National Biomedical Engineering Meeting.
[4] Igor Bisio,et al. Gender-Driven Emotion Recognition Through Speech Signals For Ambient Intelligence Applications , 2013, IEEE Transactions on Emerging Topics in Computing.
[5] L. Mathew,et al. Increasing trend of wearables and multimodal interface for human activity monitoring: A review. , 2017, Biosensors & bioelectronics.
[6] Bernt Schiele,et al. A tutorial on human activity recognition using body-worn inertial sensors , 2014, CSUR.
[7] Biing-Hwang Juang,et al. Fundamentals of speech recognition , 1993, Prentice Hall signal processing series.
[8] Ning Liu,et al. Bathroom Activity Monitoring Based on Sound , 2005, Pervasive.
[9] Sherali Zeadally,et al. Privacy Issues and Solutions for Consumer Wearables , 2018, IT Professional.
[10] Juan Pablo Bello,et al. A Software Framework for Musical Data Augmentation , 2015, ISMIR.
[11] Nitish Srivastava,et al. Dropout: a simple way to prevent neural networks from overfitting , 2014, J. Mach. Learn. Res..
[12] Chunyan Miao,et al. Towards online and personalized daily activity recognition, habit modeling, and anomaly detection for the solitary elderly through unobtrusive sensing , 2016, Multimedia Tools and Applications.
[13] Miguel A. Labrador,et al. A Survey on Human Activity Recognition using Wearable Sensors , 2013, IEEE Communications Surveys & Tutorials.
[14] Dimitrios Tzovaras,et al. Human Aware Robot Navigation in Semantically Annotated Domestic Environments , 2016, HCI.
[15] Mark D. Plumbley,et al. Acoustic Scene Classification: Classifying environments from the sounds they produce , 2014, IEEE Signal Processing Magazine.
[16] Chung-Hsien Wu,et al. Sound Event Recognition Using Auditory-Receptive-Field Binary Pattern and Hierarchical-Diving Deep Belief Network , 2018, IEEE/ACM Transactions on Audio, Speech, and Language Processing.
[17] Gwo-Lang Yan,et al. Activity Recognition by Detecting Acoustic Events for Eldercare , 2010 .
[18] George Demiris,et al. A systematic review of telehealth tools and interventions to support family caregivers , 2015, Journal of telemedicine and telecare.
[19] Qiang Huang,et al. Unsupervised Feature Learning Based on Deep Models for Environmental Audio Tagging , 2016, IEEE/ACM Transactions on Audio, Speech, and Language Processing.
[20] Geoffrey E. Hinton,et al. ImageNet classification with deep convolutional neural networks , 2012, Commun. ACM.
[21] Heikki Huttunen,et al. Convolutional Recurrent Neural Networks for Polyphonic Sound Event Detection , 2017, IEEE/ACM Transactions on Audio, Speech, and Language Processing.
[22] Justin Salamon,et al. Deep Convolutional Neural Networks and Data Augmentation for Environmental Sound Classification , 2016, IEEE Signal Processing Letters.
[23] Andrey Temko,et al. Acoustic Event Detection and Classification , 2007, Computers in the Human Interaction Loop.
[24] Vesa T. Peltonen,et al. Audio-based context recognition , 2006, IEEE Transactions on Audio, Speech, and Language Processing.
[25] Dimitrios Tzovaras,et al. Recognizing Daily Activities in Realistic Environments Through Depth-Based User Tracking and Hidden Conditional Random Fields for MCI/AD Support , 2014, ECCV Workshops.
[26] João Paulo da Silva Neto,et al. Non-speech audio event detection , 2009, 2009 IEEE International Conference on Acoustics, Speech and Signal Processing.
[27] Colin Raffel,et al. librosa: Audio and Music Signal Analysis in Python , 2015, SciPy.
[28] Jonathan Le Roux,et al. Deep Recurrent Networks for Separation and Recognition of Single-Channel Speech in Nonstationary Background Audio , 2017, New Era for Robust Speech Recognition, Exploiting Deep Learning.
[29] Anil K. Jain,et al. Feature Selection: Evaluation, Application, and Small Sample Performance , 1997, IEEE Trans. Pattern Anal. Mach. Intell..
[30] Jun Zhong,et al. Towards unsupervised physical activity recognition using smartphone accelerometers , 2016, Multimedia Tools and Applications.
[31] Francesc Alías,et al. homeSound: Real-Time Audio Event Detection Based on High Performance Computing for Behaviour and Surveillance Remote Monitoring , 2017, Sensors.
[32] Arthur I. Karshmer,et al. Living assistance systems: an ambient intelligence approach , 2006, ICSE.
[33] Zheng Fang,et al. Comparison of different implementations of MFCC , 2001 .
[34] Brigitte Meillon,et al. The sweet-home project: Audio technology in smart homes to improve well-being and reliance , 2011, 2011 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[35] Yufei Chen,et al. Performance Analysis of Smartphone-Sensor Behavior for Human Activity Recognition , 2017, IEEE Access.
[36] Björn W. Schuller,et al. Large-scale audio feature extraction and SVM for acoustic scene classification , 2013, 2013 IEEE Workshop on Applications of Signal Processing to Audio and Acoustics.
[37] Ian McLoughlin,et al. Continuous robust sound event classification using time-frequency features and deep learning , 2017, PloS one.
[38] Michel Vacher,et al. Sound Environment Analysis in Smart Home , 2012, AmI.
[39] Inma Hernáez,et al. Audio Classification Techniques in Home Environments for Elderly/Dependant People , 2010, ICCHP.
[40] Shrikanth Narayanan,et al. Environmental Sound Recognition With Time–Frequency Audio Features , 2009, IEEE Transactions on Audio, Speech, and Language Processing.
[41] Qiang Yang,et al. Sensor-Based Abnormal Human-Activity Detection , 2008, IEEE Transactions on Knowledge and Data Engineering.