organizations, industries, and the end users.
In spite of the above research works and studies
on remote healthcare delivery, application of sensor-
cloud and sensor virtualization have not received
much focus in healthcare domain. Sensor virtual-
ization for underwater event detection has been dis-
cussed in (Wang et al., 2014) in which the base station
collects measurements from multiple sensor nodes,
and makes a decision based on the sensors reports.
enables the collection of data streams from multiple
heterogeneous geographically dispersed data sources,
as well as their semantic unification and streaming
with a cloud infrastructure. It has been proposed
in (Petrolo et al., 2014) to enable collection of data
streams from multiple heterogeneous geographically
dispersed data sources and their semantic unification
and streaming with a cloud infrastructure for a smart
city solution.
Our research studies the purposes of using virtual
sensors for healthcare services and focuses on intro-
duction of a layer of abstraction to implement virtual
sensors. Use of virtual sensors have been demon-
strated in two scenarios. Currently, we are focusing
on other types of virtual sensors and their implemen-
tation.
6 CONCLUSION
This paper focuses on remote healthcare delivery on
top of a sensor-cloud framework. The paper particu-
larly discusses virtualization of sensors and their ap-
plications in healthcare domain. A remote primary
healthcare delivery application has been dicussed and
its implementation using virtual sensors has been con-
ceptualized. We are currently developing an architec-
ture for implementation of virtual sensors and APIs
for their uses in healthcare services.
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