WO2004034221A2 - Apparatus for detecting, receiving, deriving and displaying human physiological and contextual information - Google Patents
Apparatus for detecting, receiving, deriving and displaying human physiological and contextual information Download PDFInfo
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- WO2004034221A2 WO2004034221A2 PCT/US2003/032103 US0332103W WO2004034221A2 WO 2004034221 A2 WO2004034221 A2 WO 2004034221A2 US 0332103 W US0332103 W US 0332103W WO 2004034221 A2 WO2004034221 A2 WO 2004034221A2
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Definitions
- the present invention relates to an apparatus which includes one or more sensors for collecting data relating to an individual's physiological state and various contextual parameters and a data input and output device for enabling the individual to enter information and for displaying information to the individual.
- the invention according to one aspect, relates to an apparatus and method for tracking caloric consumption and/or caloric expenditure of an individual.
- the present invention relates to an ' apparatus for monitoring human status parameters that includes a sensor device in electronic communication with at least one sensor adapted to generate data indicative of at least a first parameter ofthe individual and an I/O device in electronic communication with the sensor device.
- the I/O device receives the data indicative of at least a first parameter from the sensor device and data indicative of a second parameter of the individual generated by a second sensor. At least one ofthe first parameter and the second parameter are physiological.
- the I/O device generates derived data using the data indicative of at least a first parameter and the data indicative of a second parameter, wherein the derived data comprises a third parameter ofthe individual that is an individual status parameter that cannot be directly detected by the at least one sensor or the second sensor.
- the I/O device further includes means for displaying information based on the third parameter.
- the I/O device may further include means for enabling the individual to enter information relating to the individual into the I/O device.
- the third parameter of the individual may any one of physical activity, sleep activity, nutrition activity, mind centering activity, stress level, metabolic rate, and oxygen consumption rate.
- the third parameter may be data relating to caloric expenditure of said individual.
- the I/O device may include means for enabling the individual to enter infonnation relating to calories consumed by the individual, and the I/O device may generate caloric consumption data using the information relating to calories consumed. Information based on the caloric expenditure data and the caloric consumption data, such as energy balance data, a rate of weight loss or gain, or information relating to one or more goals of said individual may then be displayed.
- the third parameter may also includes data relating to caloric consumption of said individual.
- the information entered into the I/O device may also be used to generate the derived data.
- the present invention relates to an apparatus for detecting at least one of human physiological and contextual information from the body of a wearer that includes a sensor device adapted to be worn on the body having one or more sensors selected from the group consisting of physiological sensors and contextual sensors and an I/O device in electronic communication with said sensor device.
- the I/O device includes means for displaying information and a dial, the dial being supported for rotational movement about an external surface of the I/O device.
- the dial enables the wearer to enter information into the I/O device.
- the I/O device may further include at least one button that also enables the wearer to enter information into the I/O device.
- the processor is programmed to generate data relating to caloric expenditure ofthe individual using the data indicative of a first parameter and a second parameter.
- the I/O device receives the caloric expenditure data from the sensor device.
- the I/O device includes means for enabling the individual to enter information relating to calories consumed by the individual, wherein the information relating to calories consumed is used to generate caloric consumption data.
- the I/O device further includes means for displaying information based on the caloric expenditure data and the caloric consumption data.
- the I/O device may have access to a database of food data comprising food items and associated caloric values, the database being used to generate the caloric consumption data.
- the displayed information may include energy balance data, a rate of weight loss or gain, or information relating to one or more goals ofthe individual.
- the at least two sensors may be included within the sensor device, or at least one ofthe sensors may located separately from the sensor device. At least one of the at least two sensors may be a contextual sensor.
- the I/O device may be adapted to display one or more suggestions for achieving one or more goals based on the caloric consumption data and the caloric expenditure data.
- the present invention relates to an apparatus for tracking caloric information for an individual that includes means for displaying a plurality of classification identifiers for classifying meals consumed by the individual, each ofthe classification identifiers having a corresponding caloric amount, means for selecting, for each meal consumed by the individual, one ofthe classification identifiers, and a processor for generating and storing caloric consumption data for the individual based on the caloric amount corresponding to the classification identifier selected by the individual for each meal consumed by the individual.
- the corresponding caloric amounts may be generic amounts designed to suit the general public or may be tailored specifically for the individual.
- the corresponding caloric amounts may be determined for each ofthe classification identifiers based on an algorithm, which may be a simple look-up table or may be more complicated, in addition, the classification identifiers may each comprise an indication of an estimated size of a meal, such as S, M, L and XL, or may comprise a point value based on an estimated size of a meal. Alternatively, each ofthe classification identifiers may be comprise a plurality of point values forming a grid, each of the point values being based on an estimated size and caloric density associated with a meal.
- the apparatus may further comprise a sensor device adapted to be worn on the individual's body that generates data relating to caloric expenditure of the individual, the sensor device being in electronic communication with the processor.
- the processor receives the caloric expenditure data from the sensor device and generates information based on the caloric expenditure data and the caloric consumption data that may include energy balance data, a rate of weight loss or gain, or information relating to one or more goals of the individual.
- the sensor device may further include a second processor in electronic communication with at least two sensors, at least one sensor being a physiological sensor, the sensors being adapted to generate data indicative of at least a first parameter ofthe individual and a second parameter ofthe individual, the first parameter being physiological.
- the second processor is programmed to generate the caloric expenditure data using the data indicative of a first parameter and a second parameter.
- the apparatus may also further comprise a computing device having software for enabling the individual to enter one or more food items for each meal consumed by the individual and for associating a second caloric amount with the meal based on the food items.
- the processor in this embodiment receiving, for each meal consumed by the individual over a predetermined time period, the second caloric amounts and adjusting for each ofthe classification identifiers the corresponding caloric amount based on the second caloric amounts.
- the software may include a database of food data including the food items and the second caloric amounts.
- Fig. 1 is a diagram of an embodiment of a system for monitoring physiological data and lifestyle over an electronic network according to the present invention
- Fig. 2 is a block diagram of an embodiment ofthe sensor device shown in Fig. 1;
- Fig. 3 is a block diagram of an embodiment ofthe central monitoring unit shown in Fig. 1;
- Fig.4 is a block diagram of an alternate embodiment ofthe central monitoring unit shown in Fig.
- Fig. 5 is a representation of a preferred embodiment ofthe Health Manager web page according to an aspect ofthe present invention.
- Fig. 6 is a representation of a preferred embodiment ofthe nutrition web page according to an aspect ofthe present invention.
- Fig. 7 is a representation of a preferred embodiment ofthe activity level web page according to an aspect of the present invention.
- Fig. 8 is a representation of a preferred embodiment ofthe mind centering web page according to an aspect ofthe present invention.
- Fig. 9 is a representation of a preferred embodiment ofthe sleep web page according to an aspect ofthe present invention
- Fig. 10 is a representation of a preferred embodiment ofthe daily activities web page according to an aspect ofthe present invention.
- Fig. 12 is a front view of a specific embodiment ofthe sensor device shown in Fig. 1;
- Fig. 13 is a back view of a specific embodiment of the sensor device shown in Fig. 1 ;
- Fig. 14 is a side view of a specific embodiment ofthe sensor device shown in Fig. 1;
- Fig. 15 is a bottom view of a specific embodiment ofthe sensor device shown in Fig. 1;
- Figs. 16 and 17 are front perspective views of a specific embodiment ofthe sensor device shown in Fig. 1;
- Fig. 18 is an exploded side perspective view of a specific embodiment ofthe sensor device shown in Fig. 1;
- Fig. 19 is a side view ofthe sensor device shown in Figs. 12 through 18 inserted into a battery recharger unit;
- Fig. 20 is a block diagram illustrating all ofthe components either mounted on or coupled to the printed circuit board forming a part of the sensor device shown in Figs. 12 through 18;
- Fig. 21 is a block diagram of an apparatus for monitoring health, wellness and fitness according to an alternate embodiment ofthe present invention.
- Fig. 22 is a front view of an alternate embodiment of a sensor device according to the present invention
- Fig. 23 is a back view of an alternate embodiment of a sensor device according to the present invention
- Fig. 24 is a cross-sectional view ofthe sensor device shown in Fig. 22 taken along lines A-A;
- Fig. 28 is a front view of an alternate embodiment of a sensor device according to the present invention including an LCD;
- Figs. 30 and 31 are isometric views of an alternate embodiment of a sensor device according to the present invention having a housing adapted to be removably attached to a flexible section;
- Fig. 32 is an isometric view of a further alternate embodiment of a sensor device according to the present invention having a housing adapted to be removably attached to a flexible section;
- Fig. 33 is an isometric view of an embodiment of a sensor device having adjustable operating parameters according to an aspect ofthe present invention
- Fig. 34 is an isometric view of an alternate embodiment of a sensor device according to the present invention having a housing having an adhesive material on an external surface thereof for removably attaching the housing to the body;
- Figs. 35A and B are cross-sectional views of a housing for a prior art sensor device
- Figs. 36C through H are cross-sectional views of various embodiments of a housing for a sensor device according to an aspect ofthe present invention taken along lines C-C in Fig. 23.
- Fig. 36A is a cross-sectional view of a housing for a prior art sensor device
- Fig. 37 is an isometric view of an embodiment of a housing for a sensor device according to the present invention having a bottom or inner surface having a concavity in one direction and a convexity in another direction;
- Fig. 40 is a top plan view of a data input and output device according to the present invention.
- Fig.41 is a partial cross-sectional view ofthe data input and output device shown in Fig.40 taken along lines A-A in Fig. 40;
- Fig. 42 is a block diagram illustrating the operation of prior art software that enables a prior art input device having a dial and a button to control the operation of a computer by identifying and selecting hot spots;
- Figs.43A-F is a top plan view of a data input and output device according to an embodiment of the present invention in which energy related data for an individual is collected or generated by the data input and output device and a sensor device in electrical communication therewith and displayed by the data input and output device on an LCD provided thereon;
- Fig.431 and J are scatter plots between estimates ofthe caloric content in meals consumed using an embodiment ofthe present invention and caloric content computed from full diet diary entries;
- Fig. 44 is a block diagram showing the components attached or otherwise coupled to a printed circuit board housed within a data input and output device according to an embodiment ofthe present invention
- Fig.45 is a partial cross-sectional view of a data input and output device according to an alternate embodiment ofthe present invention having one or more sensors that enable it to collect data indicative of physiological and/or contextual parameters;
- Fig. 48 is a block diagram illustrating an example algorithm for predicting energy expenditure according to the present invention.
- data relating to the physiological state, the lifestyle and certain contextual parameters of an individual is collected and transmitted, either subsequently or in real-time, to a site, preferably remote from the individual, where it is stored for later manipulation and presentation to a recipient, preferably over an electronic network such as the Internet.
- Contextual parameters as used herein means parameters relating to the environment, surroundings and location ofthe individual, including, but not limited to, air quality, sound quality, ambient temperature, global positioning and the like.
- sensor device 10 located at user location 5 is sensor device 10 adapted to be placed in proximity with at least a portion ofthe human body.
- Sensor device 10 is preferably worn by an individual user on his or her body, for example as part of a garment such as a form fitting shirt, or as part of an arm band or the like.
- Sensordevice 10 includes one or more sensors, which are adapted to generate signals in response to physiological characteristics of an individual, and a microprocessor.
- Proximity as used herein means that the sensors of sensor device 10 are separated from the individual's body by a material or the like, or a distance such that the capabilities ofthe sensors are not impeded.
- the microprocessor of sensor device 10 may be programmed to summarize and analyze the data. For example, the microprocessor can be programmed to calculate an average, minimum or maximum heart rate or respiration rate over a defined period of time, such as ten minutes. Sensor device 10 may be able to derive information relating to an individual's physiological state based on the data indicative of one or more physiological parameters. The microprocessor of sensor device 10 is programmed to derive such information using l ⁇ iown methods based on the data indicative of one or more physiological parameters. Table 2 provides examples ofthe type of information that can be derived, and indicates some ofthe types of data that can be used therefor.
- sensor device 10 may also generate data indicative of various contextual parameters relating to the environment surrounding the individual.
- sensor device 10 can generate data indicative ofthe air quality, sound level/quality, light quality or ambient temperature near the individual, or even the global positioning ofthe individual.
- Sensor device 10 may include one or more sensors for generating signals in response to contextual characteristics relating to the environment surrounding the individual, the signals ultimately being used to generate the type of data described above. Such sensors are well known, as are methods for generating contextual parametric data such as air quality, sound level/quality, ambient temperature and global positioning.
- Fig. 2 is a block diagram of an embodiment of sensor device 10.
- Sensor device 10 includes at least one sensor 12 and microprocessor 20.
- the uploading of data from sensor device 10 to central monitoring unit 30 for storage can be accomplished in various ways.
- the data collected by sensor device 10 is uploaded by first transferring the data to personal computer 35 shown in Fig. 1 by means of physical connection 40, which, for example, may be a serial connection such as an RS232 or USB port.
- This physical connection may also be accomplished by using a cradle, not shown, that is electronically coupled to personal computer 35 into which sensor device 10 can be inserted, as is common with many commercially available personal digital assistants.
- the uploading of data could be initiatedby then pressing a button on the cradle or could be initiated automatically upon insertion of sensor device 10.
- the data collected by sensor device 10 may be uploaded by first transferring the data to personal computer 35 by means of short-range wireless transmission, such as infrared or RF transmission, as indicated at 45.
- Sensor device 10 may be provided with a button to be used to time stamp events such as time to bed, wake time, and time of meals. These time stamps are stored in sensor device 10 and are uploaded to central monitoring unit 30 with the rest ofthe data as described above.
- the time stamps may include a digitally recorded voice message that, after being uploaded to central monitoring unit 30, are translated using voice recognition technology into text or some other information format that can be used by central monitoring unit 30.
- such a desktop sensing device could be a bloodpressure monitor in wliich an individual places his or her arm. An individual might also wear a ring having a sensor device 10 incorporated therein.
- a base not shown, could then be provided which is adapted to be coupled to the ring.
- the desktop sensing device or the base just described may then be coupled to a computer such as personal computer 35 by means of a physical or short range wireless connection so that the collected data could be uploaded to central monitoring unit 30 over the relevant electronic network in the manner described above.
- a mobile device such as, for example, a personal digital assistant, might also be provided with a sensor device 10 incorporated therein.
- Feedback may also be provided to a user directly through sensor device 10 in a visual form, for example through an LED or LCD or by constructing sensor device 10, at least in part, of a thermochromatic plastic, in the form of an acoustic signal or in the form of tactile feedback such as vibration.
- Such feedback may be a reminder or an alert to eat a meal or take medication or a supplement such as a vitamin, to engage in an activity such as exercise or meditation, or to drink water when a state of dehydration is detected.
- a reminder or alert can be issued in the event that a particular physiological parameter such as ovulation has been detected, a level of calories burned during a workout has been achieved or a high heart rate or respiration rate has been encountered.
- Database server 110 is made up of two main components: a large scale multiprocessor server and an enterprise type software server component such as the 8/8i component sold by Oracle Corporation of Redwood City, California, or the 5067 component sold by Microsoft Corporation of Redmond, Washington.
- the primary functions of database server 110 are that of providing access upon request to the data stored in network storage device 100, and populating network storage device 100 with new data.
- controller 115 Coupled to network storage device 100 is controller 115, which typically comprises a desktop personal computer, for managing the data stored in network storage device 100.
- Middleware servers 95 a through 95 c also contain software for requesting data from and writing data to network storage device 100 through database server 110.
- the central monitoring unit 30 When an individual user desires to initiate a session with the central monitoring unit 30 for the purpose of entering data into the database of network storage device 100, viewing his or her data stored in the database of network storage device 100, or both, the user visits the home web page of central monitoring unit 30 using a browser program such as Internet Explorer distributed by Microsoft Corporation of Redmond, Washington, and logs in as a registered user.
- Load balancer 90 assigns the user to one o the middleware servers 95a through 95c, identified as the chosen middleware server. A user will preferably be assigned to a chosen middleware server for each entire session.
- This caching system thus ideally requires that only one call to the network storage device 100 be made per session, thereby reducing the traffic that database server 110 must handle. Should a request from a user during a particular session require data that is outside of a predetermined time period of cached data already retrieved, a separate call to network storage device 100 may be performed by the chosen middleware server. The predetermined time period should be chosen, however, such that such additional calls are minimized. Cached data may also be saved in cache memory so that it can be reused when a user starts a new session, thus eliminating the need to initiate a new call to network storage device 100.
- the specific information to be surveyed may include: key individual temperamental characteristics, including activity level, regularity of eating, sleeping, andbowel habits, initial response to situations, adaptability, persistence, threshold of responsiveness, intensity of reaction, and quality of mood; the user's level of independent functioning, i.e., self-organization and management, socialization, memory, and academic achievement skills; the user's ability to focus and sustain attention, including the user's level of arousal, cognitive tempo, ability to filter distractions, vigilance, and self-monitoring; the user's current health status including current weight, height, and blood pressure, most recent general physician visit, gynecological exam, and other applicable physician/healthcare contacts, current medications and supplements, allergies, and a review of current symptoms and/or health-related behaviors; the user's past health history, i.e., illnesses/surgeries, family history, and social stress events, such as divorce or loss of a job, that have required adjustment by the individual; the user's beliefs, values and opinions about health priorities,
- the Mind Centering category relates to the quality and quantity of time a person spends engaging in some activity that allows the body to achieve a state of profound relaxation while the mind becomes highly alert and focused.
- the Sleep category relates to the quality and quantity of a person's sleep.
- the Daily Activities category relates to the daily responsibilities and health risks people encounter.
- the How You Feel category relates to the general perception that a person has about how they feel on a particular day.
- Each category has an associated level indicator or piston that indicates, preferably on a scale ranging from poor to excellent, how the user is performing with respect to that category.
- a profile is generated that provides the user with a summary of his or her relevant characteristics and life circumstances.
- a plan and/or set of goals is provided in the form of a suggested healthy daily routine.
- the suggested healthy daily routine may include any combination of specific suggestions for incorporating proper nutrition, exercise, mind centering, sleep, and selected activities of daily living in the user's life. Prototype schedules may be offered as guides for how these suggested activities can be incorporated into the user's life. The user may periodically retake the survey, and based on the results, the items discussed above will be adjusted accordingly.
- Nutritional information is presented to the user through nutrition web page 160 as shown in Fig. 6.
- the preferred nutritional web page 160 includes nutritional fact charts 165 and 170 which illustrate actual and target nutritional facts, respectively as pie charts, and nutritional intake charts 175 and 180 which show total actual nutritional intake and target nutritional intake, respectively as pie charts.
- Nutritional fact charts 165 and 170 preferably show a percentage breakdown of items such as carbohydrates, protein and fat, and nutritional intake charts 175 and 180 are preferably broken down to show components such as total and target calories, fat, carbohydrates, protein, and vitamins.
- the Mind Centering category of Health Index 155 is designed to help users monitor the parameters relating to time spent engaging in certain activities which allow the body to achieve a state of profound relaxation while the mind becomes focused, and is based upon both data input by the user and data sensed by the sensor device 10.
- a user may input the beginning and end times of relaxation activities such as yoga or meditation.
- the quality of those activities as determined by the depth of a mind centering event can be measured by monitoring parameters including skin temperature, heart rate, respiration rate, and heat flow as sensed by sensor device 10. Percent change in GSR as derived either by sensor device 10 or central monitoring unit 30 may also be utilized.
- the preferred mind centering web page 250 includes the time spent during the session, shown at 255, the target time, shown at 260, comparison section 265 showing target and actual depth of mind centering, or focus, and a histogram 270 that shows the overall level of stress derived from such things as skin temperature, heart rate, respiration rate, heat flow and/or GSR.
- comparison section 265 the human figure outline showing target focus is solid, and the human figure outline showing actual focus ranges from fuzzy to solid depending on the level of focus.
- the Activities of Daily Living category of Health Index 155 is designed to help users monitor certain health and safety related activities and risks and is based entirely on data input by the user.
- the Activities of Daily Living category is divided into four sub-categories: personal hygiene, which allows the user to monitor activities such as brushing and flossing his or her teeth and showering; health maintenance, that tracks whether the user is taking prescribed medication or supplements and allows the user to monitor tobacco and alcohol consumption and automobile safety such as seat belt use; personal time, that allows the user to monitor time spent socially with family and friends, leisure, and mind centering activities; and responsibilities, that allows the user to monitor certain work and financial activities such as paying bills and household chores.
- the Activities of Daily Living Health Index piston level is preferably determined with respect to the healthy daily routine described below.
- activities chart 335 selectable for one or more ofthe sub-categories, shows whether the user has done what is required by the daily routine.
- a colored or shaded box indicates that the user has done the required activity, and an empty, non-colored or shaded box indicates that the user has not done the activity.
- Activities chart 335 can be created and viewed in selectable time intervals.
- Fig. 10 shows the personal hygiene and personal time sub-categories for a particular week.
- daily activities web page 330 may include daily activity hyperlinks 340 which allow the user to directly access relevant news items and articles, suggestions for improving or refining daily routine with respect to activities of daily living and affiliate advertising, and a daily activities calendar 345 for selecting a relevant time interval.
- the items shown at 340 may be selected and customized based on information learned about the individual in the survey and on their performance as measured by the Health Index.
- Health Index web page 350 also includes tracking calculator 365 that displays access information and statistics such as the total number of days the user has logged in and used the Health Manager, the percentage of days the user has used the Health Manager since becoming a subscriber, and percentage of time the user has used the sensor device 10 to gather data.
- opening Health Manager web page 150 may include a plurality of user selectable category summaries 156a through 156f, one corresponding to each of the Health Index 155 categories. Each category summary 156a through 156f presents a pre-selected filtered subset ofthe data associated with the corresponding category.
- Nutrition category summary 156a displays daily target and actual caloric intake.
- Activity Level category summary 156b displays daily target and actual calories burned.
- Mind Centering category summary 156c displays target and actual depth of mind centering or focus.
- Sleep category summary 156d displays target sleep, actual sleep, and a sleep quality rating.
- Daily Activities category summary 156e displays a target and actual score based on the percentage of suggested daily activities that are completed. The How You Feel category summary 156f shows a target and actual rating for the day.
- a user inserts each end 427 of elastic strap 415 into a respective thru-hole 420 of flexible wing body 410. The user then places his arm through the loop created by elastic strap 415, flexible wing body 410 and computer housing 405. By pulling each pull tab 429 and engaging Velcro hook patches 428 with Velcro loops 416 at a desired position along bottom surface 426 of elastic strap 415, the user can adjust elastic strap 415 to fit comfortably. Since Velcro hook patches 428 can be engaged with Velcro loops 416 at almost any position along bottom surface 426, armband sensor device 400 can be adjusted to fit arms of various sizes. Also, elastic strap 415 may be provided in various lengths to accommodate a wider range of arm sizes.
- top portion 435 and a bottom portion 440 Contained within computer housing 405 are printed circuit board or PCB 445, rechargeable battery 450, preferably a lithium ionbattery, and vibrating motor 455 for providing tactile feedback to the wearer, such as those used in pagers, suitable examples of which are the Model 12342 and 12343 motors sold by MG Motors Ltd. ofthe United Kingdom.
- Top portion 435 and bottom portion 440 of computer housing 405 sealingly mate along groove
- GSR sensors 465 are affixed to raised platform 430, preferably comprising electrodes formed of a material such as conductive carbonized rubber, gold or stainless steel. Although two GSR sensors 465 are shown in Fig. 13 , it will be appreciated by one of skill in the art that the number of GSR sensors 465 and the placement thereof on raised platform 430 can vary as long as the individual GSR sensors 465, i.e., the electrodes, are electrically isolated from one another.
- heat flux sensor 460 and GSR sensors 465 are adapted to be in contact with the wearer's slain when armband sensor device 400 is worn.
- Bottom portion 440 of computer housing 405 may also be provided with a removable and replaceable soft foam fabric pad, not shown, on a portion ofthe surface thereof that does not include raised platform 430 and screw holes 438a.
- the soft foam fabric is intended to contact the wearer's skin and make armband sensor device 400 more comfortable to wear.
- heat flux sensor 460, GSR sensors 465, and PCB 445 may be accomplished in one of various known methods.
- suitable wiring may be molded into bottom portion 440 of computer housing 405 and then electrically connected, such as by soldering, to appropriate input locations on PCB 445 and to heat flux sensor 460 and GSR sensors 465.
- thru-holes may be provided in bottom portion 440 through which appropriate wiring may pass. The thru-holes would preferably be provided with a water tight seal to maintain the integrity of computer housing 405. Rather than being affixed to raised platform 430 as shown in Fig.
- computer housing 405 includes a button 470 that is coupled to and adapted to activate a momentary switch 585 on PCB 445.
- Button 470 may be used to activate armband sensor device 400 for use, to mark the time an event occurred or to request system status information such as battery level and memory capacity.
- momentary switch 585 closes a circuit and a signal is sent to processing unit 490 on PCB 445.
- the generated signal triggers one ofthe events just described.
- Computer housing 405 also includes LEDs 475, which may be used to indicate battery level or memory capacity or to provide visual feedback to the wearer. Rather than LEDs 475, computer housing 405 may also include a liquid crystal display or LCD to provide battery level, memory capacity or visual feedback information to the wearer. Battery level, memory capacity or feedback information may also be given to the user tactily or audibly.
- Armband sensor device 400 may be adapted to be activated for use, that is collecting data, when either of GSR sensors 465 or heat flux sensor 460 senses a particular condition that indicates that armband sensor device 400 has been placed in contact with the user's skin. Also, armband sensor device 400 may be adapted to be activated for use when one or more of heat flux sensor 460, GSR sensors 465, accelerometer 495 or 550, or any other device in communication with armband sensor device 400, alone or in combination, sense a particular condition or conditions that indicate that the armband sensor device 400 has been placed in contact with the user's skin for use. At other times, armband sensor device 400 would be deactivated, thus preserving battery power.
- Computer housing 405 is adapted to be coupled to a battery recharger unit 480 shown in Fig. 19 for the purpose of recharging rechargeable battery 450.
- Computer housing 405 includes recharger contacts 485, shown in Figs. 12, 15, 16 and 17, that are coupled to rechargeable battery 450.
- Recharger contacts 485 may be made of a material such as brass, gold or stainless steel, and are adapted to mate with and be electrically coupled to electrical contacts, not shown, provided in battery recharger unit 480 when armband sensor device 400 is placed therein.
- the electrical contacts provided in battery recharger unit 480 may be coupled to recharging circuit 481a provided inside battery recharger unit 480.
- computer housing 405 may be provided with additional electrical contacts, not shown, that would be adapted to mate with and be electrically coupled to additional electrical contacts, not shown, provided in battery recharger unit 480 when armband sensor device 400 is placed therein.
- the additional electrical contacts in the computer housing 405 would be coupled to the processing unit 490 and the additional electrical contacts provided in battery recharger unit 480 would be coupled to a suitable cable that in turn would be coupled to a serial port, such as an RS R32 port or a USB port, of a device such as personal computer 35.
- This configuration thus provides an alternate method for uploading of data from and downloading of data to armband sensor device 400 using a physical connection.
- PCB 445 also includes RF receiver 555 that is coupled to processing unit 490.
- RF receiver 555 may be used to receive signals that are output by another device capable of wireless transmission, shown in Fig. 20 as wireless device 558, worn by or located near the individual wearing armband sensor device 400.
- wireless device 558 may be a chest mounted heart rate monitor such as the Tempo product sold by Polar Electro of Oulu, Finland. Using such a heart rate monitor, data indicative ofthe wearer's heart rate can be collected by armband sensor device 400.
- top portion 435 of computer housing 405 is preferably formed first, such as by a conventional molding process, and flexible wing body 410 is then overmolded on top of top portion 435. That is, top portion 435 is placed into an appropriately shaped mold, i.e., one that, when top portion 435 is placed therein, has a remaining cavity shaped according to the desired shape of flexible wing body 410, and flexible wing body 410 is molded on top of top portion 435. As a result, flexible wing body 410 and top portion 435 will merge or bond together, forming a single unit.
- information may be output or transmitted from stand alone sensor device 700 in a number of ways.
- Such information may include the data indicative of various physiological parameters and/or contextual parameters, the data derived therefrom, the data manually input by the user, the analytical status data, or any combination thereof.
- information may be output or transmitted in an audible fashion such as by a series of tones or beeps or a recorded voice by a device such as a speaker, in a visual fashion such as by one or more LEDs, or in a tactile fashion such as by vibration.
- Stand alone sensor device 700 may be adapted to interact with and influence an interactive electronic media device, such as a video game, or non-interactive electronic media device, such as on a display device such as a DVD or digital video disc player playing a digitally recorded movie.
- stand alone sensor device 700 may be adapted to transmit information relating to the physiological state ofthe wearer to the video game, which in turn adjusts the characteristics ofthe game, such as the level of difficulty.
- stand alone sensor device 700 may be adapted to transmit information relating to the physiological state ofthe wearer to the device displaying the digitally recorded movie which in turn adjusts the characteristics, such as the outcome, ofthe movie.
- computing device 750 could be so programmed.
- stand alone sensor device 700 collects and/or generates the data indicative of various physiological and/or contextual parameters ofthe user, the data manually input by the user, and/or data input as a result of device-to-device interaction shown at 720 and 725, all of which is stored in the memory provided in stand alone sensor device 700. This data is then periodically uploaded to computing device 750 which in turn generates derived data and/or analytical status data.
- Near-body ambient temperature thermistor 880 is thermally coupled to ambient temperature interface component 850 by thermally conductive interface material 875.
- a preferred embodiment of sensor device 800 includes a particular embodiment of an apparatus for measuring heat flux between a living body and the ambient environment described in co-pending application Serial No. 09/822,890, the disclosure of which is inco ⁇ orated herein by reference in its entirety.
- heat conduit 885 is provided within housing 805.
- the term heat conduit refers to one or more heat conductors which are adapted to singly or j ointly transfer heat from one location to another, such as a conductor made of stainless steel.
- Heat conduit 885 is thermally coupled to heat flux skin interface component 835 by thermally conductive interface material 875.
- a first heat flux thermistor 890A is provided on the bottom side of PCB 860
- a second heat flux thermistor 890B is provided on the top side of PCB 860.
- PCB 860 acts as a base member for supporting these components. It will be appreciated that a base member separate and apart from PCB 860 may be substituted therefor as an alternative configuration.
- a suitable example of both heat flux thermistors 890A and 890B is the. Heat flux Thermistor 890A and 890B are soldered to pads provided on PCB 860.
- Battery monitor 945 preferably comprising a voltage divider with low pass filter to provide average battery voltage, monitors the remaining power level of rechargeable battery 950.
- Rechargeable battery 950 is preferably a Lilon LiPolymer 3.7 V Cell.
- Rechargeable battery 950 which is the main power source for sensor device 800, is coupled to processing unit 900 through voltage regulator 955.
- Rechargeable battery 950 may be recharged either using recharger 960 or USB cable 965, both of which may be coupled to sensor device 800 through USB interface 970.
- USB interface 970 is hermetically sealable, such as with a removable plastic or rubber plug, to protect the contacts of USB interface 970 when not in use.
- ECG sensor 980 or impedance sensor 985 may be dedicated electrodes for such sensors, or may be the electrodes from GSR sensors 825 multiplexed for appropriate measurements.
- ECG sensor 980 and impedance sensor 985 are each coupled to A D converter 915.
- PCB 860 further includes RF transceiver 990, coupled to processing unit 900, and antenna 995 for wirelessly transmitting and receiving data to and from wireless devices in proximity to sensor device 800.
- Sensor device 800 may also be provided with sensors in addition to those shown in Fig. 27, such as those taught by United States Patent No. 5,853,005, the disclosure of which is inco ⁇ orated herein by reference.
- the ' 005 patent teaches a sound transducer coupled to a pad containing an acoustic transmission material. The pad and sound transducer may be used to sense acoustic signals generated by the body which in turn may be converted into signals representative of physiological parameters such as heart rate or respiration rate.
- a sensing apparatus as taught by the '005 patent may be provided separate from sensor device 800 and be coupled, wired or wirelessly, to sensor device 800.
- Non-ECG heart parameter sensing devices include, for example, those based on micro-power impulse radar technology, those based on the use of piezo-electric based strain gauges, and those based onplethysmography, which involves the measurement of changes in the size of abody part as modified by the circulation of blood in that part. It will be appreciated that the performance of these devices may also be enhanced through the use of data integration as described herein.
- Another sensor that may be inco ⁇ orated into the sensor device 800 measures the pressure with which sensor device 800 is held against the body ofthe wearer. Such a sensor could be capacitive or resistive in nature.
- Such a display is described in United States Patent No. 6,368,287 Bl, the disclosure of wliich is inco ⁇ orated herein by reference, and includes a plurality of markers comprising a miniature heating element and a coating of heat sensitive material. When current is passed through one of the heating elements, it heats up, thereby inducing a change in the color ofthe coating material. The color change is permanent, even after the heating element cools down.
- Oscillator 1030 is provided on PCB 860 and supplies the system clock to processing unit 900.
- housing 805 may be provided with adhesive material 1085 on a back side thereof to enable housing 805 to be removably attached to selected portions of the body, such as the upper left chest over the heart, without flexible section 810.
- Adhesive material 1085 may be any well-known adhesive that would securely attach housing 805 to the body and enable it to be worn for a period of time, but that would also readily enable housing 805 to be removed from the body after use.
- Adhesive material 1085 may comprise, for example, a double sided adhesive foam backing that would allow for comfortable attachment of housing 805 to the body.
- housing 805 may be made of a well-known flexible plastic film or the like, such as that taught in United States Patent No.
- housing 1100 When housing 1100 is caused to be removed in this manner, the ability ofthe prior art sensor device to accurately make measurements and collect data will be jeopardized, especially for any readings to be taken near the center ofthe cross-section indicated by the arrows in Fig. 35B.
- Fig.35G A solution to this problem is illustrated in Fig.35G, wherein the lateral ends 1120A and 1120B ofhousing805 are provided with radiused portions 1125 A and 1125B, respectively adjacent to and including opposite lateral ends of bottom surface 1115. Radiused portions 1125A and 1125B enable housing 805 to sit lower and fit into the concavity created when body 1110 flexes to an extreme degree. In addition, radiused portions 1125 A and 1125B provide for more comfortable wear as they eliminate sha ⁇ edges 1130A and 1130B shown in Fig. 35F that contact body 1110. Fig.
- FIG. 35H shows how body 1110 will tend to conform to the shape of housing 805 due at least in part to the viscosity ofthe skin when body 1110 is in a relaxed condition.
- Fig. 36A shows a cross-section of housing 1100 of prior art sensor device talcen along a line pe ⁇ endicular to the line on which the cross-section shown in Figs. 35A and 35B was talcen.
- Fig.36A when housing 1100 is placed on a convex portion of body 1110, significant portions of housing 1100, specifically the lateral ends thereof indicated by the arrows in Fig. 36A, are not in contact body 1110.
- housing 805 may have tapered sides 1160A and 1160B such that the width of housing 805 decreases in the direction from bottom surface 1115 to top surface 1150.
- top surface 1150 ofhousing 805 may have a convex shape.
- housing 805 maybe provided with radiused portions 1165 A and 1165B that meet with radiused portions 1135A and 1135B such that the lateral ends ofhousing 805 have a substantially semicircular shape. As shown in Fig.
- housing 805 may have both tapered sides 1160A and 1160B and a top surface 1150 with a convex shape.
- Fig. 39E is a modification ofhousing 805 shown in Fig. 39E in which the points 1170A and 1170B where radiused portions 1135A and 1135B meet tapered sides 1160A and 1160B, respectively, are themselves radiused.
- Fig. 39F is a variation of housing 805 shown in Fig. 39E having elongated tapered sides 1160 A and 1160B.
- Fig. 39G shows how the ability ofhousing 805, such as the embodiment shown in Fig.
- Sensor device 1201 detects human physiological and/or contextual parameters, and may be any one of sensor device 400 shown in Figs. 12-17, stand alone sensor device 700 shown in Fig. 21, or sensor device 800 shown in Figs. 22-26.
- I/O device 1200 includes housing 1205 and LCD 1210 attached to housing 1205.
- LCD 1210 may display information relating to the human physiological and/or contextual parameters detected by sensor device 1201 that is transmitted to I/O device by sensor device 1201 over communications connection 1230.
- I/O device 1200 may perform the manual data entry functions indicated by and described in connection with reference numeral 715 in Fig. 21. Furthermore, in this embodiment, I/O device 1200 may be the computing device 750 shown in Fig. 21. As described in connection with Fig. 21, this configuration provides several possibilities for data collection, generation and display. Specifically, sensor device 1201 , as described in connection with stand alone sensor device 700 shown in Fig.
- I/O device 1200 may be in electronic communication with and transmit data to still another device, such as a computing device or an ea ⁇ iece or tactile communications device worn by a firefighter or other first responder or a runner.
- I/O device 1200 acts as a relay of information.
- the data may indicate an important physiological state, such as level of hydration, as determined by sensor device 1201 , and in the case of a runner, the data may indicate caloric expenditure or distance traveled.
- 5,959,611 the disclosure of wliich is inco ⁇ orated herein by reference, describes a portable computer system including a CPU, an input interface, a display and an input device, wherein the input device comprises a rotary switch or dial and three on/off switches.
- the rotary switch may be a 16 position, binary coded rotary switch which outputs a four-digit gray code representing the position ofthe switch.
- a gray code is a special binary encoding scheme in which adjacent numbers or positions have codes that differ in only one bit position.
- the on/of switches may be momentary push button switches positioned so as to surround the rotary switch.
- step 6800 a determination is made as to whether the rotary switch has been rotated in a clockwise direction. If so, process control proceeds with step 7200 wherein the next hot spot becomes the active hot spot. If the rotary switch has been rotated in a counter-clockwise direction, process control proceeds with step 7000 in which the previous hot spot becomes the current hot spot. After either step 7000 or 7200, process control returns to step 6400 to await additional user input.
- Highlighted items may be selected and a corresponding action commenced by pressing button 1215, or alternatively dial 1220 itself, in which case dial 1220 acts as both a dial and a button as those terms are used herein such that the device in question would be considered to have both a dial and a button.
- dial 1220 is the knob on the side of a watch that rotates about the side external surface ofthe watch.
- I/O device 1200 may be provided with access to a user accessible database of foods and corresponding caloric value.
- a database may be provided as part of I/O device 1200 itself, as in the case ofthe preferred embodiment ofthe present invention, or I/O device 1200 may be able to access a database stored and maintained on a computing device located separately from the I/O device such as through short or long distance wireless or wired communications.
- LCD 1210 is shown displaying an ENTER NUTRITION menu screen that may be accessible from, for example, a main menu screen presented on LCD 1210 using dial 1220 and button 1215.
- 43 J shows the relationship between the estimates ofthe caloric content based on the present invention and those computed from the full diet diary entries for the three-day.
- the correlation between the estimates ofthe in-house study and the diet diary caloric totals was 0.80, and the estimates ofthe three-day study and the diet diary caloric totals was 0.57, without any normalization by each subject's basal metabolic rate.
- This data, talcen with the most simple of the embodiments ofthe system strongly supports the premise that diet recording using a quick entry system can result in reasonably accurate estimates of a user's daily caloric intake.
- I/O device 1200 can take the information it has accumulated over time and provide information automatically for a user. For example, if a user forgets to enter a lunch value, I/O device may be programmed to enter the average of a predetermined number of, such as the last ten or even all, lunch values for the missing lunch. This may be done automatically, or only after prompting the user for verification ofthe values and authorization to do so. Alternatively, I/O device may fill in such gaps by matching that days routine to a previous day's routine, and using the lunch or other missing value from that day, thereby taking advantage ofthe fact that people tend to be creatures of habit.
- Another aspect ofthe invention is that of automatic adaptation of feedback given to the user by sensor device 1201 or I/O device 1200.
- the feedback given to the user in this invention e.g. "you might want to run an extra 10 minutes today" can be given exactly when appropriate by talcing advantage ofthe system's ability to detect contexts and to auto-journal as describe elsewhere herein. For example, feedback for eating might be best given just before a meal, and exercise feedback might be best given right when the user is most likely to exercise. Furthermore, if the system has detected that the user has already jogged that day, then an alternate suggestion can be given. Finally, the user's response to feedback can be utilized to further adapt the choice ofthe given feedback. If the user never takes exercise suggestions, advice can focus instead on nutrition.
- the second method involves repeating the training procedures (or a subset thereof) every so often.
- One example of this would be for a glucose level prediction algorithm where, each week (for example), the user performs a finger-prick glucose test to calibrate the prediction system.
- the third method involved doing continual training while the user is using the system including sensor device 1201.
- the system described above that utilizes discrepancies in predicted weights between the system's prediction and that reported by a scale to adjust the estimated caloric amounts for each category is an example of this type of training.
- Fig. 44 is a block diagram showing the components attached or otherwise coupled to a printed circuit board (not shown) housed within housing 1205 of an embodiment of I/O device 1200. Included among these components is processing unit 1300, which maybe a microprocessor, a microcontroller, or any other processing device that can be adapted to perform the functionality described herein. Connected to processing unit 1300 are non-volatile data storage device 1305, such as a flash memory, chip for storing information input and/or transmitted to I/O device 1200, and non-volatile program storage device 1310, such as a FLASH ROM chip, for storing the programs required for operation of I/O device 1200. Also provided is reference database 1315 which may, as described in connection with Figs.
- reference database 1315 includes a software component for organizing and accessing data, and a memory component for physically storing data.
- wireless link 1320 such as an RF transceiver
- hardware interface 1330 such as a USB port
- Driver 1350 and ringer/buzzer 1345 may also be connected to processing unit 1300 to provide audible and/or tactile feedback to a user.
- I/O device 1200 may act as a hub or terminal for collection and, in a specific embodiment, processing data received from a variety of sources.
- I/O device 1200 may be used as a hub or terminal in health club 1500 to collect and, in a specific embodiment, process data relating to a user's activities in health club 1500 received from a variety of devices located in health club 1500.
- I/O device 1200 may act as a hub or terminal for collection and, in a specific embodiment, processing data received from a variety of sources.
- I/O device 1200 may be used as a hub or terminal in health club 1500 to collect and, in a specific embodiment, process data relating to a user's activities in health club 1500 received from a variety of devices located in health club 1500.
- I/O device 1200 may act as a hub or terminal for collection and, in a specific embodiment, processing data received from a variety of sources.
- I/O device 1200 may be used as a hub or terminal in health club 1500 to collect and, in a specific embodiment
- the tracking may be based on information received from the apparatus, such as repetitions on a weight machine or distances run on or heart rate measured by a treadmill, and may also be based on parameters being measured by sensor device 1201 or I/O device 1200 such as energy expenditure. I/O device 1200 may also adjust/control the apparatus the user is interacting with to maximize the performance toward the goal, such as by adjusting the treadmill angle and/or resistance to decrease heart rate or energy expenditure rate ofthe individual. Such adjustment may be important if, for example, the individual is a CVD patient that needs to watch how much they exert themselves.
- I/O device 1200 can adjust the program or regimen so that the next time the user uses the apparatus, the program or regimen will have been adjusted to comply with the progress or lack of progress the person has made.
- This adjustment could also include free-living exercise and other information that gets collected between periods of use ofthe apparatus. For example, if the person walked the rest ofthe week according to their program or regimen, the next time they come to use the apparatus, instead of using the same now outdated program/regimen, the program/regimen is adjusted to meet the user's new capabilities.
- the principle just described could also apply to interaction with other types of equipment other than exercise equipment, such as medication dispensers, CPAP machines used in sleep therapy, or even a thermostat in the house.
- a health club may include a number of television monitors, with each monitor providing a different channel of programming. Users are able to listen to the audio portions accompanying the programming while exercising by plugging headphones into an access device provided adjacent to each piece of exercise equipment, and may use the access device to select among the audio portions ofthe various programming channels.
- I/O device 1200 maybe in electronic communication through communications connection 1230 with entertainment equipment 1510, which comprises an access device or similar equipment as just described provided adjacent to exercise equipment 1505 that allows a user to select among various entertainment options.
- users may be able to choose to view and or listen to a prescribed program such as a health education program or a motivational program.
- I/O device 1200 and entertainment equipment 1510 may be adapted to enable I/O device 1200 to collect from entertainment equipment 1510 and store data relating to the various entertainment or other programming options selected by the user.
- health club 1500 includes computing device 1515, which may be a PC or a server computer or the like.
- I/O device 1200 is adapted to be in electronic communication with computing device 1515 through communications connection 1230 to enable the data collected, stored and, in a specific embodiment, processed by I/O device 1200 to be transmitted to computing device 1515.
- a wireless interface device in electronic communication with computing device 1515 could be placed near the front desk of health club 1500.
- the wireless interface device could be replaced by a docking station or a jack device that requires I/O device to be physically coupled thereto to establish an electronic communications path.
- I/O device 1200 may also be used to collect data from devices located outside of health club 1500 that have capabilities and functionality that are similar to exercise equipment 1505 or entertainment equipment 1510. For example, a user that normally exercises at health club 1500 may be out of town for a period of time and, while out of town, may exercise at another facility. I/O device 1200 may be used to collect data from exercise and/or entertainment equipment used at the other facility, provided such equipment has capabilities and functionality similar to that of exercise equipment 1505 and entertainment equipment 1510. I/O device 1200 may also be used to collect data when a user is exercising or watching or listening to some sort of programming, as described herein, at home using compatible equipment.
- I/O device 1200 can collect relevant information while the user is not at health club 1500 through ways other than from compatible equipment. For example, if a user takes a walk at home, I/O device 1200 could collect data relating to the walk from sensor device 1201 or from manual entry. When the user returns to health club 1500, he or she can transmit the data collected while he or she was away or while exercising or engaging in other activities at home to computing device 1515, thereby eliminating gaps in data collection that otherwise would have occurred while the user was away from health club 1500. By eliminating such gaps, a program being followed by the user or goals set by the user can be more accurately monitored and modified, for example by a personal trainer or though an artificial intelligence program or algorithm employed by I/O device 1200.
- a mathematical model is built that relates the raw data to the corresponding gold standard labeled data.
- machine learning techniques are used to generate two types of algorithms : 1 ) algorithms Icnown as feature detectors that produce a result that is highly correlated with the lab-measured level (e.g. V02 level information from a metabolic cart, douglas bag, or doubly labeled water), and 2) algorithms known as context detectors that predict various contexts (e.g., running, exercising, lying down, sleeping, driving) useful for the overall algorithm.
- non-linear functions and/or machine learning method examples include the following: conditionals, case statements, logical processing, probabilistic or logical inference, neural network processing, kernel based methods, memory-based lookup (kNN, SOMs), decision lists, decision-tree prediction, support vector machine prediction, clustering, boosted methods, cascade-correlation, Boltzmann classifier, regression trees, case-based reasoning, Gaussians, Bayes nets, dynamic Bayesian networks, HMMs, Kalman filters, Gaussian processes, algorithmic predictors (e.g. learned by evolutionary computation or other program synthesis tools).
- each regression algorithm 1610 for each context shown as Ai through A N
- the weights Wi through W N are combined in a post-processor 1615 which outputs the parameter of interest being measured or predicted by the algorithm, shown in box 1620.
- the post-processor 1615 can consist of any of many methods for combining the separate contextual predictions, including committee methods, boosting, voting methods, consistency checking, or context based recombination.
- Fig. 48 an example algorithm for measuring energy expenditure of an individual is shown conceptually. This example algorithm may be run on sensor device 1201 having at least an accelerometer, a heat flux sensor and a GSR sensor, or I/O 1200 that receives data from such a sensor device.
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JP2004543640A JP4813058B2 (en) | 2002-10-09 | 2003-10-09 | Device for detecting, receiving, deriving and displaying human physiological and contextual information |
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