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Publication | Open Access

Automatic sleep stages classification using respiratory, heart rate and movement signals

36

Citations

24

References

2018

Year

Abstract

The results indicate that respiratory, heart rate and movement signals can be used for sleep studies with a reasonable level of accuracy. These inputs can be obtained in a non-invasive way applying it in a home environment. The proposed system introduces a convenient approach for a long-term monitoring system which could support sleep laboratories. The algorithm which was developed allows for an easy adjustment of input parameters that depend on available signals and for this reason could also be used with various hardware systems.

References

YearCitations

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