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eHomeSeniors Dataset: An Infrared Thermal Sensor Dataset for Automatic Fall Detection Research
Indexado
WoS WOS:000497864700213
Scopus SCOPUS_ID:85073730136
DOI 10.3390/S19204565
Año 2019
Tipo artículo de investigación

Citas Totales

Autores Afiliación Chile

Instituciones Chile

% Participación
Internacional

Autores
Afiliación Extranjera

Instituciones
Extranjeras


Abstract



Automatic fall detection is a very active research area, which has grown explosively since the 2010s, especially focused on elderly care. Rapid detection of falls favors early awareness from the injured person, reducing a series of negative consequences in the health of the elderly. Currently, there are several fall detection systems (FDSs), mostly based on predictive and machine-learning approaches. These algorithms are based on different data sources, such as wearable devices, ambient-based sensors, or vision/camera-based approaches. While wearable devices like inertial measurement units (IMUs) and smartphones entail a dependence on their use, most image-based devices like Kinect sensors generate video recordings, which may affect the privacy of the user. Regardless of the device used, most of these FDSs have been tested only in controlled laboratory environments, and there are still no mass commercial FDS. The latter is partly due to the impossibility of counting, for ethical reasons, with datasets generated by falls of real older adults. All public datasets generated in laboratory are performed by young people, without considering the differences in acceleration and falling features of older adults. Given the above, this article presents the eHomeSeniors dataset, a new public dataset which is innovative in at least three aspects: first, it collects data from two different privacy-friendly infrared thermal sensors; second, it is constructed by two types of volunteers: normal young people (as usual) and performing artists, with the latter group assisted by a physiotherapist to emulate the real fall conditions of older adults; and third, the types of falls selected are the result of a thorough literature review.

Revista



Revista ISSN
Sensors 1424-8220

Métricas Externas



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Disciplinas de Investigación



WOS
Chemistry, Analytical
Instruments & Instrumentation
Engineering, Electrical & Electronic
Electrochemistry
Scopus
Sin Disciplinas
SciELO
Sin Disciplinas

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Publicaciones WoS (Ediciones: ISSHP, ISTP, AHCI, SSCI, SCI), Scopus, SciELO Chile.

Colaboración Institucional



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Autores - Afiliación



Ord. Autor Género Institución - País
1 RIQUELME-CSORI, FABIAN Hombre Universidad de Valparaíso - Chile
2 Espinoza, Cristina Mujer
3 Rodenas, Tomas Hombre Universidad de Valparaíso - Chile
4 Minonzio, Jean-Gabriel Hombre Universidad de Valparaíso - Chile
5 TARAMASCO-TORO, CARLA Mujer Universidad de Valparaíso - Chile

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Financiamiento



Fuente
Comisión Nacional de Investigación Científica y Tecnológica
Consejo Nacional de Innovacion, Ciencia y Tecnologia
Fondef project from Consejo Nacional de Innovacion, Ciencia y Tecnologia (CONICYT)
Consejo Nacional de Rectores

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Agradecimientos



Agradecimiento
This research was funded by Fondef project number ID18I10212 from Consejo Nacional de Innovacion, Ciencia y Tecnologia (CONICYT).
This research was funded by Fondef project number ID18I10212 from Consejo Nacional de Innovación, Ciencia y Tecnología (CONICYT).

Muestra la fuente de financiamiento declarada en la publicación.