US2014317042A1PendingUtilityA1

Systems, methods, and devices utilizing cumulitive sleep data to predict the health of an individual

Assignee: BODYMEDIA INCPriority: Feb 16, 2007Filed: Dec 21, 2013Published: Oct 23, 2014
Est. expiryFeb 16, 2027(~0.6 yrs left)· nominal 20-yr term from priority
A61B 5/6802G06Q 30/0271A61B 5/4833G06F 16/285A61B 5/7278A61B 5/7475G16H 50/50G06F 16/248A61B 5/1123G06Q 30/0242A61B 5/7275A61B 5/4836G06Q 30/0251G09B 19/00G06N 5/04A61B 5/6801G06F 16/38G06F 16/90344A61M 2021/005A61B 5/746A61B 5/021A61B 5/4815G06Q 30/0269A61B 5/747A61B 5/4806G06Q 30/0277A61M 2021/0027G06F 16/25A61B 5/0826A61B 5/4812A61B 5/742G06N 20/00A61B 5/7282G16B 99/00A61B 5/1118A61M 21/00A61B 5/72G16H 10/60G16H 50/70G06F 16/24575G06Q 40/08A61M 21/02G09B 5/00G16H 50/20A61B 5/4818A61B 5/168G06F 19/345G16B 50/00G16B 40/00G16H 40/63G16H 50/30
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Claims

Abstract

The methods and systems described herein may involve determining at least one lifeotype of at least one individual, analyzing the at least one lifeotype, and delivering content to at least one individual based on the analysis. The methods and systems described herein may involve providing a game, determining at least one lifeotype of at least one player of the game, analyzing the at least one lifeotype, and affecting the game play based on the analysis. The methods and systems described herein may involve providing an interactive space, determining at least one lifeotype of at least one individual in the space, analyzing the at least one lifeotype, and modifying at least one attribute of the space based on the analysis.

Claims

exact text as granted — not AI-modified
What is claimed is: 
     
         1 . A computer-system-implemented method, the computer system having at least one programmed processor to implement the method, the method comprising:
 continuously collecting data components with respect to an individual from a wearable sensor device; and   collecting another set of data components with respect to the individual from a source separate from the wearable device;   the computer system—
 (i) determining a type for the individual based on at least one of a match and a similarity between the collected data components for the individual and data components for at least one other individual; 
 (ii) determining a state related to sleep based on at least one of data from the wearable sensor device and the collected another set of data components; and 
   (iii) based on the sleep-related state, the determined type, and the data collected from the wearable sensor device, predicting the individual's state of health.   
     
     
         2 . The method of  claim 1 , wherein the sleep-related state is determined based on the output of a plurality of sensors of the wearable sensor device. 
     
     
         3 . The method of  claim 1 , wherein the sleep-related state is a stage of sleep, readiness for sleep, quality of sleep, duration of sleep, duration of a stage of sleep, a pre-sleep state, a post-sleep state, a sleep-dependent health state, a sleep-dependent performance state, and a physiological state during sleep. 
     
     
         4 . The method of  claim 1 , wherein said set of data components from a wearable sensor device is selected from the group consisting of: derived data, analytical status data, contextual data, continuous data, discrete data, time series data, event data, raw data, processed data, metadata, third party data, physiological state data, psychological state data, survey data, medical data, genetic data, environmental data, transactional data, economic data, socioeconomic data, demographic data, psychographic data, sensed data, continuously monitored data, manually entered data, inputted data, continuous data and real-time data. 
     
     
         5 . The method of  claim 1 , wherein at least one data component collected from a wearable sensor device is a data component that is derived from a plurality of sensors that is distinct from the output of any single sensor. 
     
     
         6 . The method of  claim 1 , wherein the prediction of the individual's state of health is based on basal readings during sleep. 
     
     
         7 . The method of  claim 1 , wherein the predicted state of health is a long term health condition. 
     
     
         8 . The method of  claim 7 , wherein the long term health condition is at least one of apnea, a heart condition, elevated blood pressure, diabetes, chronic pain, depression, or a general change in health over time. 
     
     
         9 . The method of  claim 1 , wherein the predicted state of health is a short term condition. 
     
     
         10 . The method of  claim 9 , wherein the short term condition is fatigue.

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