systems and methods for monitoring the performance of a caregiver are disclosed. The systems may be configured to monitor the movement of each caregiver subject in a network of caregivers subjects. One such system includes a plurality of strips adhered in spaced-apart relation on a mattress pad, upon which a subject is positioned. One or more transmitter is provided coupled to the plurality of strips. A processor is connected to the one or more transmitter. The processor is provided with operating software to record and report caregiver activity or both caregiver activity and subject activity.
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1. A system for monitoring performance of a caregiver, the system comprising:
a mattress pad;
an active capacitance sensor attached to said mattress pad, each said active capacitance sensor capable of sensing movement of a subject and capable of generating a signal resultant from the movement of the subject, wherein said sensor includes a plurality of fabric strips manufactured from a conductive material;
a processor in communication with said active capacitance sensor, said processor being provided with computer readable code for tracking information relative to the caregiver and generating a report related to the performance of the caregiver.
16. A method of monitoring the performance of a caregiver, comprising the steps of:
providing spaced-apart active capacitance electronic sensors along a portion of a subject support device, wherein the sensors are flexible fabric strips;
periodically querying the active capacitance sensors for signals drawn directly from the subject;
converting the signals drawn directly from the subject to data related to the position of the subject;
transmitting the data to a processor;
processing the data to determine whether significant subject movement has occurred;
tracking information relative to the caregiver; and
outputting the data and information in a user-selected manner related to performance of the caregiver.
10. A system for monitoring the performance of a caregiver, the system comprising:
a plurality of mattress pads;
a plurality of strips configured to adhere to each of said plurality of mattress pads, each of said plurality of strips comprises a conductive fabric material having an active capacitance electrical field sensitivity and capable of creating signals based on the electrical field sensed, wherein said electrical field sensed is directly received from a subject positioned on one of said plurality of mattress pads;
a plurality of transmitters, each of said plurality of transmitters being coupled with said plurality of strips adhered to one of said plurality of mattress pads; and
a processor in communication with said plurality of transmitters; said processor being provided with computer readable code for tracking information relative to the caregiver and generating a report related to the performance of the caregiver.
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The present invention relates to systems and methods for monitoring subjects, such as human subjects. More particularly, the present invention relates to systems and methods for monitoring and reporting caregiver performance in a healthcare setting related to care of a subject on a subject support device, such as on a hospital bed or nursing home bed.
Many subjects in nursing homes may not have the physical capability to turn or reposition themselves in a bed and in such a case, depend upon staff members, typically a Certified Nursing Assistant (CNA) or other caregiver, to move them. This scenario may also occur in a hospital or similar setting. In many instances it is a requirement or medical necessity that the subject be turned in bed frequently at a specified interval, such as for example, every two hours, to prevent the development of tissue or skin breakdown, which can severely compromise health, comfort, and quality of life. Failure to periodically move the subject can result in what is commonly known as pressure sores or “bedsores”.
What is needed is a system and method that can monitor the movement of a subject, patient or resident, (hereinafter referred to simply as “subject”) so that movement of the subject can be detected, tracked, recorded and reported. Accordingly, systems have become available which alert a caregiver when a subject has moved or left the bed. Some of these systems have sophisticated means of determining the position of the subject on the bed. As used herein, the terms “CNA” and “caregiver” are used interchangeably and refer to a person providing care to an individual subject or subjects. Such a system and method may be used to monitor when a subject leaves and returns to the bed and detect and monitor patterns of movement. In many cases, subjects are unable to stand or walk from their bed unaided; however, these subjects attempt to exit their bed in a weakened condition and are at risk of falling and associated injuries. The system has the inherent ability to provide a signal when a subject has exited their bed and will notify the responsible caregiver of this situation.
These systems do not have a means to allow nursing home administrators, hospital supervisors or healthcare managers (hereinafter referred to as “clients”) to confirm that a CNA or the like has performed his or her duty to move the monitored subject. The present invention addresses this need.
The present invention is directed to systems and methods for monitoring the performance of a caregiver. Simultaneously, the present invention is directed to systems and methods for monitoring the movement of each subject in a network of subjects and the response of the caregiver.
One system is shown to include a plurality of sensors, preferably in the form of strips disposed in spaced-apart relation to a mattress pad. The strips extend longitudinally from the head end of the mattress pad. The mattress pad is configured to be placed on top of a mattress, and to then be covered by a standard nylon slip-cover or the like that fits over the mattress and the mattress pad.
All software aspects of the invention have been written to be portable to multiple operating systems and hardware platforms. Open source applications and development tools have been used to limit downstream system, licensing and development costs. Web browser based data entry and reporting systems have been used to reduce client costs and allow users to interact with the system on familiar interfaces and hardware. It also allows handheld devices, pagers, cell phones, tablet PCs, etc. to be used without additional software development costs. Raw data is always stored so future enhanced data analysis tools have access to the original data. Multiple levels of security are used to protect the integrity and confidentiality of the data.
This system may include hardware and functionality in order to function as a bedside based undergarment moisture detector. In such a case, transmission of moisture data from patient undergarment to bedside would be performed via Wireless link such as RFID, ZigBee™, IR, Bluetooth™, etc. A small probe, such as a very thin wire is penetrated through the outer plastic surface into absorbency material. The probe could be designed to penetrate the backside of undergarment and be positioned where it could detect moisture. A very thin wire could run from the sensor to a small transmitter which would be attached to the front undergarment waistline of the subject. This front side transmitter could be a low cost, high efficiency, reusable transmitter which would enable data to be transmitted area wide or to the bedside DCT. At a predetermined value, the CNA could be notified that the subject was in need of an undergarment change. The major advantage that the CNA would no longer need to perform periodic checks, but only when specifically needed.
A nurse call module is provided and is adapted to be used as a device able to detect when a nurse call is placed on a conventional system and when it is answered. As the call is placed, the inline module detects a nurse call signal and then independently sends this signal back to the bedside DCT which then transmits it to the central processor where it is time and date stamped, and then incorporated into the database relative to the patient and/or DCT ID. In addition to the conventional audio and visual signals generated during a nurse call, the system also pages, emails or notifies via mobile phone that a subject is in need of assistance. Once the care has been rendered, the CNA would switch off the bedside nurse call device which would also signal the spy device to stamp the database with a time and date. The proposed device would be an in-line component which would be “jacked” into the wall and then the nurse call connector would be snapped into this device. The spy device could communicate to the DCT or other type of bedside transmitter via a hard wire or wireless connection. The major advantage of the system of the present invention is that the existing nurse call system would perform as intended, with the added advantage of verifiable care giver performance response time, thus allowing a better method of caregiver quality control.
A proposed system could also act as a bed alarm, monitoring when the bed is occupied or when it is empty, thus allowing the caregiver to be notified when a high risk “fall” subject is out of bed and in danger of falling while unattended. This warning system could be linked to the existing in-house audio and visual indicators as well as nurse station computer screen notification in addition to mobile phone, pager and other communication systems.
The DCT has an excess of bandwidth in both its wireless and hardwired configurations. This additional capacity combined with its current function as a bedside data collection and transmission device provides tremendous opportunities for additional in-room capabilities. Some of these concepts include voice, data and video communication, including a room call and patient audio and video monitoring. Other capabilities include high bandwidth devices such as sensors or monitors plus in-room internet connectivity.
Additional features of the invention will become apparent to those skilled in the art upon consideration of the following detailed description of preferred embodiments exemplifying the best mode of carrying out the invention as presently perceived.
A detailed description particularly refers to the accompanying figures in which:
A system 31 for monitoring the performance of a caregiver relative to movement of a single subject 32 or a plurality of subjects 32 is shown in
As shown in
The sensors 36 may include electrically conductive strips, which when they are brought into proximity or are permitted to disconnect, undergo a change of state with respect to, for example, opening or closing a circuit.
Other sensors are also contemplated that are capable of sensing a change of position or status of a subject, such as pressure sensors, heat sensors, and so on. The sensors 36 may include conductive material, such as conductive paint, plastic, metal or any other material that when triggered functions to register or detect a change of status of a subject operatively associated with the sensor and generate or permit the generation of a signal or event therefor.
Sensors 36 may communicate with processor 38 via a wireless (WiFi) connection, using wireless transmitters 40 that communicate with a base station 42 that is connected with processor 38. The transmitters, both shown at 40 and 46, and based on a Motorola IC, part no. 33794, are also known as a data collector transmitter (DCT), which is a slave device that transmits data to a master device 38 using a predefined protocol. The protocol is designed to be compatible with a wide range of networks including, but not limited to RS232, multi-drop RS485 as well as higher level networks such as Ethernet, Bluetooth™, ZigBee™, 802.15.4 and WiFi. Addressing and error detection is provided at the lowest level of the protocol for use on simple RS485 type networks.
The data gathering master device of the central processor 38 is used to collect data from the slave DCT units 40, 46. The master device 38 requests data from each DCT 40, 46 at the desired data rate. Preferably, the data gathering master device 38 is a networked PC running applications designed to communicate with as many as several hundred DTC units 40, 46 at the same time. It is a multi-threaded, object oriented, fault tolerant program that can recover from network and DCT 40, 46 problems in real time without affecting data gathering on the rest of the system 31. The device 38 may store all data into a standard SQL relational database 39.
The master device 38 may be a standard PC running a Java application. The program reads and writes to a database 39. The device 38 uses conventional programming to interface with the database 39, so portability to other databases is possible. The device 38 polls the database 39 at regular intervals to determine the number of clients (DCT units or installations) it needs to communicate with. Each DCT device 40, 46 has a unique address and communication rate stored in the database 39. The device and the applications running thereon are multi-threaded so problems with individual devices and network latency do not affect other devices and program performance. If one slave device 40, 46 is not responding, all other devices will still return data at the predetermined rate. The device 38 will continue to try to regain communication with the non-responsive slave until it is successful or the entry in the database is removed. The data received from the slave devices 40, 46 is stored in the database 39. The data is time stamped and referenced to the slave device 40, 46. To reduce the database growth, if there is no movement by the subject, or if the subject is no longer in bed, the recorded sensor values will be at wider intervals. However, once movement is again detected, the system will be triggered to begin collecting data at a more rapid and predetermined pace allowing full resolution of the subject movement. Even if the minimum change amount has not occurred, data will at least be stored at a predetermined interval such as once every 10 seconds, for example, or at any suitable interval. The master device 38 is intended to run autonomously.
The sensor pad 36 is connected to the DCT 46, which includes a microcontroller. The microcontroller has custom software written in the C programming language. The microcontroller constantly polls the sensor 36 looping between the 9 electrodes of the sensor 36 using one of several built in 10-bit analog to digital channels. The microcontroller can calibrate the system to adjust the output of the electrodes so they all read roughly the same value when no subject 32 is in the bed 34. It can also adjust the high and low end points of the sensor values to use the full 10-bit range. The calibration values are stored in non-volatile EEPROM so they are not lost if the power is interrupted or removed. The read values are adjusted by the stored calibration and stored in RAM. The values in RAM are then used to quickly respond to the master device when requested.
All communication is done with the microcontroller using a serial data protocol. The protocol uses an 8-bit address and a 16-bit CRC to insure data integrity. While the address and CRC are not needed with higher-level networks like Ethernet, they allow the use of future, simpler networks like RS485. The DCT 40, 46 currently uses an OEM serial to Ethernet device (not shown), but another embodiment includes integration into the microcontroller.
Although wireless transmitters 40 are shown in
As an alternative, a transmitter 46 may be used, the transmitter 46 having a wired (e.g., Ethernet) connection with processor 38. Illustratively, transmitter 46 uses an Ethernet network consisting of Ethernet cables 48 and an Ethernet hub 50 that is in communication with processor 38. Of course, system 31 may include both wireless and Ethernet elements, and may be connected via other means and/or protocols, such as coaxial cable, electrical wires, radio frequency, Bluetooth™, ZigBee™, 802.15.4 or any other manner for communicating data that is known in the art.
As can be seen in
In the illustrated embodiment, strips 58 are evenly spaced at an interval A (shown in
Mattress pad 54 is illustratively a half-inch thick urethane foam pad that is cut to the same dimensions as a mattress 56 on which it is to be positioned. Such urethane foam is flame retardant, thereby meeting the FF 4-72 (cigarette test) standards for flammability set forth by the Consumer Product Safety Commission. Furthermore, the foam preferably conforms to the California Technical Information Bulletin No. 117 regarding combustibility.
In the illustrated embodiment, nine strips 58 are positioned in parallel orientation to run longitudinally from the head end 60 of mattress pad 54. Each of the strips has an adhesive bottom surface (not shown) that is configured to adhere to the mattress pad 54. The adhesive surface is illustratively a pressure sensitive adhesive (PSA), however, other adhesives are within the scope of this invention. After each of the strips 58 is adhered to a top side 64 of the mattress pad 54, the entire mattress pad is overlaid with a flame retardant polyester cloth 55, (
Strips 58 may be any suitable thickness, such as approximately 0.008 inches thick and made of a conductive laminated fabric. The laminated fabric is flame retardant with a UL 94 V-0 rating. One example of such a fabric is manufactured by Laird Technologies of St. Louis, Mo.
As can best be seen in
As can be seen in
The connector harness 44 links the array of strips 58 to either a wireless transmitter 40 or a standard, wired transmitter 46 (
The end (not shown) of the harness 44 which attaches to the transmitter 40, 46 may include a D-Sub 15-pin male connector. Each of the nine coaxial center leads (not shown) may be individually crimped into a connector pin and inserted into locations within the connector back shell. Each of the nine outer shields from each coaxial conductor may be soldered with a “drain wire” or alternately, stripped and combined into a single termination which may be soldered together to ensure proper termination, and covered with a heat-shrink insulator. All nine drain wires may then be combined into a single conductor and crimped into the conductor as a tenth pin connector. Through the use of coaxial conductors, signal integrity to and from the array of strips 58 tend to be consistent and reliable during operation.
The back shell (not shown) also permits the ability to monitor and verify whether the connector is securely attached to the transmitter 40, 46. A wire loop (not shown) can be configured to connect to two specific pins within the back shell. Alternately, a single wire may be used with the actual metallic back shell, used as the other conductor, and acting as a complete circuit when connected. When the wire completes the simple circuit within the transmitter 40, 46, the electronic circuitry will indicate that all systems are functional. Should the connector unfasten from the back of the transmitter 40, 46 the circuit will be broken, which will immediately flag the system 31, advising that the connection between the array of strips 58 and the transmitter 40 (or 46) has been broken.
The transmitters 40, 46 utilize E-field sensing technology combined with a programmable microcontroller that acts as the computing portion of system 31. The transmitter 40, 46 performs multiple functions by communicating with the array of sensors 36 and then transmitting this information to a remote database 39 (
The database 39 also stores other data related to the installation facility. This allows data to be correlated to the facility, facility zones, caregivers and subjects. The facility information is entered into the system 31 using a web browser. The interface is designed to allow very efficient data entry.
Each DCT 40, 46 generate a unique e-field to each of the nine strips 58 within the array of strips. As each of these strips 58 are energized with a very low e-field, within milliseconds, a unique signal is returned relative to the size and position of the subject 32 above the strip 58. In the present embodiment, this is performed continuously across all nine strips 58, taking full positional information twice every second. Any change in the position of the subject 32 generates a change in the electrical field of the array of strips 58. Other schemes are also contemplated, such that sufficient information is collected to detect movement of the subject 32.
Once a transmitter 40, 46 has received the information from the array of strips 58, the information is converted into a digital code and sent via network to an onsite computer 38 (
Each transmitter 40, 46 can be powered by a 12-volt wall-mounted power supply capable of a maximum 500 milliamp current draw. Alternately, it is envisioned that an internal power source could be utilized in lieu of an external power source. Examples include lead acid, NiMH, and fuel cell type power sources. The transmitter 40, 46 also incorporates a solid state, resettable fuse insuring that the current will be cut off should there be any reason that current is drawn above the required power draw for the device. The housing for the transmitter may be formed by injection molding with ABS plastic having a flame retardant rating of UL94 V0.
Ethernet hub 50 can be a standard 10/100 hub that can be found at any computer or electronic store. Base station 42 can also be a standard wireless/hard-wired base station that can communicate, for example, over the 802.11 standard for wireless communications. It should be understood, however, that other configurations are within the scope of the invention, for example, base station 42 and Ethernet hub 50 could be combined into one device. System 31 can be configured to notify selected persons, i.e. nursing home or hospital management, via pagers 53, cell phones 51, e-mail 49, (see
System 31 can also be connected to the Internet 47 (
A software program manages the microcontroller, providing control of the E-field. It also routes the data out of the transmitter 40, 46 and into the network.
The processor 38 functions in at least two capacities: data gathering and incorporation into a database 39 (
The database 39 stores data from each transmitter 40, 46, which can be time-stamped for analysis and interpretation. Through the use of data analysis processes executed by software (detailed below) meaningful indicators can be established to confirm caregiver activity and the associated subject movement relative to specified medical orders. The output data may be selectable so as to provide a morning report giving a brief overview of caregiver performance on targeted subject rotations. Additionally, weekly and monthly performance reports may be created and can again be arranged by a particular caregiver.
In operation, the system 31 may be used as follows. A facility manager may review a status report displayed on or printed through processor 38 upon his/her arrival at the beginning of the shift. Such a status report could show the performance of caregivers on the prior shift, as well as any movement of the subject 32. The report could correlate movement or caregiver-initiated movement with that ordered by a physician. Other reports may be executed that show movement over a longer period of time, or even that show performance of a particular caregiver over a period of time. Results could also be color coded, could be arranged by building wings or groups of rooms, or arranged in any other manner that is intuitive or preferred to the management. Information could be password protected in order to prevent the breach of security.
It is an advantage of the system 31 that no direct subject contact need occur and the system is nearly completely out of sight from the subject 32. In the event that the system 31 is disabled or switched off, no adverse side effects will occur since the system is not attached to the subject 32. Furthermore, the immediate health of the subject 32 is not dependent upon the operation of the system 31.
The serial data receive process is also interrupt based (
Going back to step 130 if the character is determined not to be the first byte, a determination of whether the index is greater than the length character and whether all the characters are present is made 138. If the determination at step 130 is answered in the affirmative, the process proceeds to step 142; if not the process proceeds to step 140. At step 140 it is determined whether the buffer is full, if it is the buffer index is reset to zero 134 and the interrupt handler exits 136. If the buffer is not full the buffer index is incremented 146 and the interrupt handler exits 136. At step 142 it is determined whether the CRC (Cyclic Redundancy Check) is correct, if it is, the DCT processes the command and the response is returned 144 and the interrupt handler subsequently exits 136. If at step 142 the CRC is found not to be correct, the buffer index is reset to zero 134 and the interrupt handler exits 136.
A general purpose timer (
FIG. 12 13 shows the startup sequence of the data server. The After startup 174, the graphical interface is initialized 176, and then a “collection” is created 178 to track the active slave devices (DCTs). A timer is started 179 that will periodically check the database to determine if new DCTs need to be added to the collection or if any need to be removed. The program startup is complete at step 180.
When the DCT check timer event occurs at step 182, (
Each DCT is communicated with using its own program thread (
When a log timer event occurs 222, a message is sent 224 to the DCT requesting current sensor values as shown in FIG. 18. The thread will then wait until the data received event occurs at step 242 (
When DCT data received events occur at step 198, (
Shown in FIG. 19, when a status-change event occurs, the event handler starts at 228. Once started, the event handler sends the event and its status to the parent 230. The event handler then exits at 240.
The system 31 user software is preferably designed to operate as a web based system with the functionality of being easily accessed on-site or from a remote location using a standard web browser, e.g., Microsoft Internet Explorer™ or an equivalent thereof. The browser enabled interface (see
The home page 100 300 is broken out into two main sections, a report generating portion 102 302 and administrative portion 104 304 including patient, monitor and room information. All of these individual sections may be password protected depending on the pre-determined authorization of the end-user. At any time within the various sub-menus, the logo 106 306 may be clicked which will take the user back to the home page 100 300.
An objective of the system 31 is to insure that while a patient is under the care of a healthcare professional; all rotations are performed at the specified intervals as dictated by medical orders. The system 31 will continuously provide critical caregiver performance data detailing the type of movement performed and most importantly time and date of these interactions insuring that a formal record of performance is established.
The “24 Hour Facility Activity Report,” 110 310,
Three simple visual indicators 112 312 will show green, yellow or red, for example, describing level of performance within the facility. If the indicator is green, this may confirm that all rotations within the facility were performed according to specified medical orders. If the indicator is yellow, this may mean “caution” which points to the fact that specific patients may not have been rotated as required by medical orders and/or at the specified times. Additional investigation may be required to determine what had transpired during the interval under question. The red indicator may specify that there may have been significant portions of the patient rotation regimen not completed. Near the bottom of the page 114 314, the end user can click on the “View Room Groups” to drill down further into caregiver performance data relative to individual caregivers on specific floors or facility wings.
The View Room Groups screen 120 320 (
The Patient, Monitor and Room Status Reports, 130 330, 140 340, and 150 350 (see
The Patient Administration Entry Form 160 360 (see
The New Bed Monitor Entry Form 170 370 (see
The Edit Room Groups Form 180 380 (see
The Edit Room Administration Form 190 390 (see
Other features such as data export, import, analysis and graphic visualizations may be considered important in the expansion and enhancement of the system 31.
While the disclosure is susceptible to various modifications and alternative forms, specific exemplary embodiments thereof have been shown by way of example in the drawings and have herein been described in detail. It should be understood, however, that there is no intent to limit the disclosure to the particular forms disclosed, but on the contrary, the intention is to cover all modifications, equivalents, and alternatives falling within the spirit and scope of the disclosure as defined by the appended claims.
There is a plurality of advantages of the present invention arising from the various features of the subject monitoring system and associated method described herein. It will be noted that alternative embodiments of the subject monitoring system and associated method of the present invention may not include all of the features described yet still benefit from at least some of the advantages of such features. Those of ordinary skill in the art may readily devise their own implementations of a subject monitoring system and associated method that incorporate one or more of the features of the present invention and fall within the spirit and scope of the present invention as defined by the appended claims.
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