Systems, methods, and apparatus for reducing nicotine intake
The vape monitoring system addresses nicotine dependence by tracking vaping habits and providing personalized interventions, improving the chances of quitting through real-time data analysis and behavioral support.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- NIX LABS LLC
- Filing Date
- 2024-02-05
- Publication Date
- 2026-06-02
AI Technical Summary
Smoking and vaping are difficult to quit due to nicotine dependence, and existing cessation methods have limited success, especially as e-cigarettes deliver nicotine and pose health risks, with limited social acceptance leading to challenges in finding places to smoke or vape.
A system comprising a vape monitoring device that attaches to existing vaping devices, tracks hits, and sends data to a smartphone or server for analysis, providing insights and interventions to reduce nicotine intake, including location tracking and personalized feedback.
The system effectively monitors vaping habits, provides timely interventions, and encourages users to reduce nicotine intake, enhancing the chances of quitting by offering personalized feedback and behavioral changes.
Smart Images

Figure 2026517543000001_ABST
Abstract
Description
Technical Field
[0001] Numerous studies have associated smoking with many diseases, including lung cancer, heart attacks, and strokes. It is difficult to find people who doubt these research results. However, there are more than 30 million smokers in the United States alone, and it is estimated that more than 16 million Americans have smoking-related diseases. According to the World Health Organization, smoking is the world's leading preventable cause of death. More than 1.1 billion people smoke worldwide.
Background Art
[0002] The tobacco industry makes billions of dollars in profit each year and sells tobacco, nicotine-containing liquids, and many tobacco-related products. At the same time, there is a secondary industry aimed at assisting tobacco users in reducing or completely stopping their nicotine intake. This industry sells self-help guides, nicotine patches, nicotine gum, and the like.
[0003] Nevertheless, many people start smoking every year, often to fit in with their peer group or because they grew up in a smoking household. These young people often start smoking before they can recognize the true dangers of smoking or believe they can stop before any harm occurs. In short, these people underestimate the dependence on nicotine-containing products.
[0004] Unfortunately, once smoking has started, it is very difficult to quit. Nicotine is the main by-product of tobacco and vaping devices. Nicotine is a dependence-producing substance. When it enters the brain, nicotine causes the release of dopamine, which makes the smoker feel good. When a smoker quits, the lack of dopamine causes a state of discomfort, and the former smoker feels anxious and depressed.
[0005] Some studies have shown that quitting smoking is as difficult as breaking a cocaine or heroin habit.
[0006] In recent years, there has been a shift from traditional tobacco (including pipes and cigars) to e-cigarettes (vaping). These e-cigarettes are marketed as a healthier alternative because tobacco does not actually burn, and therefore the smoke or mist produced by e-cigarettes does not contain many toxic chemicals. However, e-cigarettes still deliver nicotine to the user's lungs, and emissions from e-cigarettes contain other potentially dangerous chemicals such as formaldehyde. Furthermore, e-cigarettes are thought to expose those around the user to less secondhand smoke.
[0007] Recently, smokers have found it increasingly difficult to smoke anywhere other than in their cars and homes. Local and state ordinances are being enacted to ban smoking in restaurants, bars, public buildings, and even on beaches. Many hospitals, which previously had designated smoking areas, are now non-smoking zones, and smoking is prohibited in parking lots, sidewalks, or anywhere else near the hospital.
[0008] Despite a full understanding of the risks of smoking, the difficulty in finding places to smoke, and the reduced social acceptance in some groups, smokers of tobacco and e-cigarettes find it extremely difficult or impossible to quit on their own. This situation has led to the development of many smoking cessation support tools, such as nicotine gum, nicotine patches, and medications to help with quitting. The idea is that once a smoker stops using tobacco, the brain receives the nicotine from the supplement that it needs to continue releasing dopamine. In addition, support groups (such as Alcoholics Anonymous - AA or Narcotics Anonymous - NA) and smoking cessation hotlines have been established to help smokers quit. Therefore, smokers may need tools that help provide a supplemental supply of nicotine and encourage behavioral change. For example, many smokers fall into specific situational habits, such as smoking while talking on the phone or in a bar.
[0009] Furthermore, other psychosocial smoking cessation methods, including hypnotherapy, are being introduced.
[0010] Even so, many smokers want to quit smoking or vaping, but their success rate in quitting is limited. [Overview of the project] [Problems that the invention aims to solve]
[0011] It is necessary to help users reduce their nicotine intake, including a system that monitors vaping and provides insights and smoking cessation support. [Means for solving the problem]
[0012] A system for monitoring vaping includes a vape monitoring device that attaches to an existing vaping device. The vape monitoring device detects when a hit (inhalation) occurs from the existing vaping device and sends packets of hit data (e.g., hit time and duration) to a local device such as a smartphone. Upon receiving the hit data packets, in some embodiments, the local device adds location information. The hit data packets (hit data), with or without location information, are sent from the local device to a server. Software running on the server analyzes the hit data, and if the software determines that an action should be taken, it communicates with the local device to influence the action. Sample actions include displaying an inspirational message, making a suggestion, or calling a challenge.
[0013] In one embodiment, a system for monitoring vaping, including a vape monitoring device, is disclosed. The vape monitoring device comprises logic (or a processor), a hit detector, and a wireless transmitter. The vape monitoring device is configured to connect to an existing vaping device, and when a hit is drawn in from the mouthpiece of the existing vaping device, air flows through a channel to the vape monitoring device. The hit detector is in fluid communication with the channel, and when a hit is drawn in, the air flowing through the channel is detected by the hit detector, and the logic (or processor) causes the transmitter to transmit hit data. The hit data includes the time of the hit and the duration of the hit. The system for monitoring vaping includes a device comprising a processor, non-temporary memory, a transceiver, means for communicating with a server (e.g., by cellular data or Wi-Fi), means for determining the location of a device (e.g., GPS), and software running on the processor from the non-temporary memory. In response to the device receiving hit data, the device reads the location, and the device transmits the hit data with the location data to the server. The server software runs on the server processor of the server. Upon receiving hit data containing location data, the server software processes the hit data to determine when an action is required. If an action is required, the server software sends a transaction to the device, which indicates the action to be taken. In response to receiving the transaction in the device, the software running on the processor performs actions such as displaying an inspirational message, making a suggestion, or calling a challenge.
[0014] In another embodiment, a system for monitoring vaping is disclosed, which includes a vape monitoring device having an enclosure. Inside the enclosure are logic with memory, a hit detector, and a wireless transmitter. The enclosure is configured to connect to an existing vaping device (e.g., by sealing to one end of an existing vaping device), and when a hit is made from the mouthpiece of the existing vaping device, air flows through an internal cavity of the enclosure to the vape monitoring device, and the hit detector is in fluid communication with the internal cavity, and when a hit occurs, the air flowing through the internal cavity is detected by the hit detector, and the logic records the hit in memory. The system includes means for transmitting the hit record to a user device (e.g., a smartphone) using the wireless transmitter, where the hit record is processed.
[0015] In another embodiment, a method for monitoring vaping is disclosed, which includes the steps of determining when a hit has occurred from the vaping device, recording details of the hit (e.g., recording when the hit occurred, where the hit occurred, and / or the duration of the hit in the hit record), and transmitting the hit details to a device such as a smartphone that stores the hit details. After the device receives multiple details (e.g., multiple hit records), statistics are generated and / or reported from the multiple details.
[0016] In another embodiment, a vape monitoring device is disclosed, which includes an enclosure configured to connect to an existing vaping device. In such a case, when a hit is made from the mouthpiece of the existing vaping device, air flows from the intake port of the enclosure into the internal cavity of the enclosure and into the intake port of the existing vaping device. The vape monitoring device includes logic located within the enclosure. The logic includes memory, a hit detector, and a wireless transmitter. The hit detector is in fluid communication with the internal cavity, and when a hit is made from the mouthpiece of the existing vaping device, air is drawn from the internal cavity into the intake port of the existing vaping device, reducing the air pressure within the internal cavity, allowing the hit detector to detect the hit, and the logic records the hit in memory. To power the logic, a power supply (e.g., a battery or capacitor) is located within or attached to the vape monitoring device.
[0017] The present invention can be best understood by those skilled in the art by referring to the following detailed description, when considered in conjunction with the accompanying drawings. [Brief explanation of the drawing]
[0018] [Figure 1] Data connection diagram for a system to monitor vaping [Figure 2] Schematic diagram of a typical cell phone used in a system for monitoring vaping. [Figure 3] Schematic diagram of a typical computer system, such as a server, used in a system for monitoring vaping. [Figure 4] Schematic diagram of a vape monitoring device for a system to monitor vaping. [Figure 5] A diagram showing the user interface for setting up a system to monitor vaping. [Figure 6] A diagram showing the daily status and user interface for feedback of a system for monitoring vaping. [Figure 7]Figure showing an exemplary enclosure of a vape monitoring device of a system for monitoring vaping [Figure 7A] Figure showing an exemplary enclosure of a vape monitoring device of a system for monitoring vaping [Figure 8] Figure showing a second embodiment of an exemplary enclosure of a vape monitoring device of a system for monitoring vaping [Figure 8A] Figure showing a second embodiment of an exemplary enclosure of a vape monitoring device of a system for monitoring vaping [Figure 9] Second schematic diagram of a vape monitoring device of a system for monitoring vaping [Figure 10] Figure showing an exemplary learning implementation form of a vape monitoring system [Figure 11] Figure showing an exemplary stop implementation form of a vape monitoring system [Figure 12] Exemplary learning flowchart of a vape monitoring system [Figure 13] Exemplary stop flowchart of a vape monitoring system [Figure 14] Figure showing another user interface for providing competition among friends of a user of a system for monitoring vaping [Figure 15] Figure showing another user interface for providing inspiration to a user of a system for monitoring vaping
Embodiments for Carrying Out the Invention
[0019] Here, the presently preferred embodiments of the present invention are referred to in detail, and examples thereof are shown in the accompanying drawings. Throughout the following detailed description, the same reference numerals in all figures refer to the same elements.
[0020] Generally, systems for monitoring vaping interface with existing vaping devices, store / transfer vaping data / activity to a local device such as a smartphone, then store / transfer it to a server where the data / activity is analyzed and fed back to the user, providing the function of measuring the usage of the existing vaping device in order to improve the user's chances of reducing nicotine intake and ultimately quitting.
[0021] Referring to Figure 1, a data connection diagram of a system for monitoring vaping is shown. In this embodiment, the vape monitoring device 300 is attached to an existing vaping device 100. As shown, the vape monitoring device 300 collects hit data 315 when the existing vaping device 100 is used for vaping, which is referred to as a hit occurring. The hit data 315 includes the time and duration of each hit, or the start and end times of each hit.
[0022] When a connection (either wirelessly or wired) is established between the vape monitoring device 300 and the user's smartphone 108, hit data 315 for one or more hits is transferred from the vape monitoring device 300 to the local device, which is hereby referred to as the smartphone 108. It should be noted that the system for monitoring vaping utilizes the local device for feedback and reporting, and therefore the local device is assumed to be the smartphone 108 or other similar user devices such as a tablet, laptop, desktop computer, or smartwatch. There are no restrictions on the local device, except that it communicates with the vape monitoring device 300 at least occasionally. For the remainder of this specification, the local device is referred to as the smartphone 108.
[0023] In some embodiments, the vape monitoring device 300 periodically connects to the user's smartphone 108 (or other device) and uploads hit data 315 for one or more hits to the smartphone 108. The vape monitoring device 300 has storage, such as persistent memory 674 (see Figure 4), for storing the hit data 315 during times when the vape monitoring device 300 cannot connect to the smartphone 108 (or other local device), and it is fully assumed that the stored hit data 315 will be uploaded to the smartphone 108 (or other local device) when the vape monitoring device 300 can finally connect to the smartphone 108.
[0024] In embodiments using a smartphone 108, the smartphone communicates with a server computer 102 (a dedicated server or a cloud-based server) via any known or future network topology. In the embodiment shown in Figure 1, the smartphone 108 communicates with the server computer 102 via a cellular network 103 and / or a data network 107 (e.g., the Internet).
[0025] In embodiments where the vape monitoring device 300 connects to the smartphone 108 via a wireless connection, the vape monitoring device 300 is assumed to be local to the smartphone 108. Therefore, when the smartphone 108 receives hit data 315, which includes either the time and duration of each hit, or the start and end times of each hit, the software running on the smartphone 108 reads the global positioning subsystem 91 (see Figure 2) or any positioning system, and the software adds the location of the smartphone 108 to the hit data 315 before transferring the hit data 315 to the server computer 102 in embodiments having a server computer 102. It is assumed that the location is used by the server computer 102 to identify the user's location at the time each hit is performed. For example, if the server computer 102 has information about the user's home and work locations, and multiple records of the hit data 315 indicate hits made while the user was traveling between their home and work locations, the server computer 102 can deduce that the hits were made while commuting to / from work.
[0026] In embodiments having a server computer 102, the server computer 102 has access to persistent memory 574 for storing various data, including hit data 315, received from the user's smartphone 108. One path between the smartphone 108 and the server computer 102 is via the cellular network 103 and the data network 107, as shown in the figure, but any known data path is assumed. For example, the Wi-Fi transceiver 96 of the smartphone 108 (see Figure 2) is used to communicate directly with the data network 107, including the internet, and therefore with the server computer 102.
[0027] The server computer 102 communicates with the smartphone 108 via the network 103 / 107, displays a user interface on the smartphone 108's display 86 (see Figure 2), exchanges hit data 315 received from the vape monitoring device 300, and transmits information such as status and advice regarding discontinuation.
[0028] The server computer 102 communicates with applications running on the smartphone 108 and / or standardized applications (e.g., a browser) running on the smartphone 108.
[0029] The diagram shows a single vape monitoring device 300 and a single smartphone 108, but the number of vape monitoring devices 300 and smartphones 108 (or other local devices) is not limited. Furthermore, since a user may have multiple existing vaping devices 100, it is conceivable that two or more vape monitoring devices 300 could be configured to communicate with the user's smartphone 108. Similarly, although the server computer 102 is shown as a single computer, it is quite conceivable that multiple computers would work together to provide server functionality.
[0030] Referring to Figure 2, a schematic diagram of a smartphone 108 is shown. The exemplary smartphone 108 represents a typical telephone device used to access the user interface of a system for monitoring vaping (see, for example, Figures 5 and 6). This exemplary smartphone 108 is shown in a typical form. Different architectures are known that achieve similar results in similar embodiments, and the present invention is not limited in any way to any particular smartphone 108 system architecture or implementation form. In this exemplary smartphone 108, the processor 70 executes a program in random access memory 75. The program is typically stored in persistent memory 74 and loaded into random access memory 75 as needed. Also accessible by the processor 70 is a SIM card 88 (subscriber information module) with subscriber identification. The processor 70 is any processor, typically a processor designed for telephones. The persistent memory 74, random access memory 75, and SIM card are connected to the processor, for example, by a memory bus 72. The random access memory 75 is any memory suitable for connection and operation with the selected processor 70, such as SRAM, DRAM, SDRAM, RDRAM, DDR, DDR-2, etc. Persistent memory 74 is any type, configuration, and capacity of memory suitable for permanently storing data, such as flash memory, read-only memory, or battery backup memory. In some smartphones 108, persistent memory 74 is removable in the form of a memory card in the appropriate format, such as an SD (Secure Digital) card or a microSD card.
[0031] The processor 70 is also connected to a system bus 82 for connecting to peripheral subsystems such as a cellular network interface 80, a graphics adapter 84, and a touchscreen interface 92. The graphics adapter 84 receives commands from the processor 70 and controls what is displayed on the display 86. The touchscreen interface 92 provides navigation and selection functions.
[0032] Generally, the persistent memory 74 and / or a portion of the SIM card 88 are used to store programs, executable code, phone numbers, contacts, and data, etc. In some embodiments, other data such as audio files, video files, and text messages are stored in the persistent memory 74.
[0033] Peripheral devices are illustrative examples, and other devices such as the global positioning subsystem 91, speaker, microphone, USB interface, Bluetooth® transceiver 94, Wi-Fi transceiver 96, camera 93, microphone 95, and image sensor are known in the industry, and their details are not shown for brevity and clarity.
[0034] The cellular network interface 80 connects the smartphone 108 to the cellular network 103 via the wireless medium 78, using any cellular band and protocol such as GSM®, TDMA, or LTE. There are no restrictions on the type of cellular connection used. The cellular network interface 80 provides voice calls, data, and messaging services to the smartphone 108 via the cellular network.
[0035] For local communication, many smartphones 108 are equipped with a Bluetooth transceiver 94, a Wi-Fi transceiver 96, or both. Such a feature of the smartphone 108 provides data communication between the smartphone 108, the vape monitoring device 300, and the server computer 102.
[0036] Referring to Figure 3, a schematic diagram of a typical computer (e.g., server computer 102) is shown. The exemplary computer system represents a typical computer system used for backend processing, report generation, data display, etc. This server computer 102 is shown in its simplest form, as different architectures are known that achieve similar results in similar or different aspects, and the present invention is not limited in any particular computer system architecture or implementation form. In some embodiments, server computer 102 is part of an array of server computers, and in some embodiments, it is a cloud computing resource.
[0037] In this exemplary computer system, processor 570 executes programs in random access memory 575. Programs are typically stored in persistent memory 574 and loaded into random access memory 575 as needed. Processor 570 is any processor, typically a processor designed for a computer system having any number of core processing elements, etc. Random access memory 575 is connected to the processor by, for example, a memory bus 572. Random access memory 575 is any memory suitable for connection and operation with the selected processor 570, such as SRAM, DRAM, SDRAM, RDRAM, DDR, DDR-2, etc. Persistent memory 574 is any type, configuration, and capacity of memory suitable for persistently storing data, such as magnetic storage, flash memory, read-only memory, battery-backed memory, etc. Persistent memory 574 is typically interfaced to processor 570 via a system bus 582 or any other interface known in the industry.
[0038] A network interface 580 (for example, connecting to data network 107), an optional graphics adapter 584, and a keyboard interface 592 (for example, a universal serial bus USB) are also shown to be connected to the processor 570 via the system bus 582. The graphics adapter 584 receives commands from the processor 570 and controls what is displayed on the display image on the display 586. The keyboard interface 592 provides navigation, data input, and selection functions.
[0039] Generally, a portion of the persistent memory 574 is used to store programs, executable code, hit data 315 from the vape monitoring device 300, and other data, etc.
[0040] The peripheral devices listed are illustrative examples; other devices known in the industry, such as speakers, microphones, USB interfaces, Bluetooth transceivers, Wi-Fi transceivers, image sensors, and temperature measurement devices, are not shown in detail for brevity and clarity.
[0041] Referring to Figure 4, a schematic diagram of the vape monitoring circuit 301 is shown. While it is known that similar functionality can be implemented using logic or gate arrays, the embodiment shown in Figure 4 uses a processor 670 to execute or run a program in random access memory 675. Any implementation is well conceivable and is included herein.
[0042] The program is generally stored in persistent memory 674 and loaded into random access memory 675 as needed, although in some embodiments the program is executed from persistent memory 674. The processor 670 is any processor, typically a processor designed for embedded systems. The random access memory 675 is connected to the processor as is known in the industry. In some embodiments the random access memory 675 is integrated into or built into the processor 670. The random access memory 675 is any memory suitable for connection and operation with the selected processor 670, such as SRAM, DRAM, SDRAM, RDRAM, DDR, DDR-2, etc. The persistent memory 674 is any type, configuration, and capacity of memory suitable for persistently storing data, such as flash memory, read-only memory, battery-backed memory, etc. The persistent memory 674 is typically interfaced to the processor 670 via the system bus 682 or any other interface known in the industry, and in some embodiments the persistent memory 674 is built into the processor 670.
[0043] Also shown is a wireless transceiver 676 connected to the processor 670 via the system bus 682 (for example, to connect to a smartphone 108 or other local device - in some embodiments, only a transmitter).
[0044] In some embodiments, the time function circuit 680 is connected to the system bus 682 or integrated into the processor 670. The time function circuit 680 provides the processor with time values to be appended to the hit record.
[0045] The hit detector 690 detects when a user inhales air (or vape) using the existing vaping device 100. In some embodiments, the hit detector 690 identifies the start and end times of a hit. The processor then records the start time of the hit (using the time function circuit 680) and the end time of the hit (similarly using the time function circuit 680). Thus, each time a user performs a hit with the existing vaping device 100, the processor records a hit data record in persistent memory, including either the start time of the hit and the duration of the hit (e.g., 7 seconds) or the end time of the hit. Note that in some embodiments, if the processor 670 is connected to the smartphone 108 via the wireless transceiver 676, the hit data record is immediately transmitted to the smartphone 108 via the wireless transceiver 676. In some embodiments, if the processor 670 lacks a connection to the smartphone 108, one or more hit data records are recorded in persistent memory and then transmitted to the smartphone 108 via the wireless transceiver 676 (or transmitter) when a connection becomes available.
[0046] In some embodiments, the wireless transceiver 676 is a wireless transceiver that uses any transmission protocol and frequency band, such as Bluetooth or Wi-Fi. In some embodiments, the wireless transceiver 676 may also be a wireless transceiver that uses a proprietary protocol. In some embodiments, the wireless transceiver 676 is wired, and data is stored in persistent memory and then transferred from the vape monitoring device 300 to the smartphone 108 when a wired connection is made, for example when charging the vape monitoring device 300.
[0047] In some embodiments, the vape monitoring circuit 301 further includes a positioning circuit, such as a global positioning circuit 679 (e.g., a GPS receiver), which reports the location of the vape monitoring circuit 301 to the processor 670. In such embodiments, the vape monitoring circuit 301 may cache hit records so that the location of the vape monitoring circuit 301 when each hit was taken is appended to each hit record.
[0048] Generally, a portion of the persistent memory 574 is used to store programs, executable code, and vape monitoring data, etc.
[0049] As shown in Figure 4, there is a hit detector 690 interfaced to the processor, for example, via the system bus 682. The hit detector 690 is a sensor that detects when a user receives a hit from the existing vaping device 100 (e.g., inhaling nicotine). The vape monitoring device 300 is interfaced to the existing vaping device 100, and the airflow through the opening of the existing vaping device 100 flows through the housing of the vape monitoring device 300. For example, if the existing vaping device 100 has a mouthpiece at one end and an exhaust port at the other, external air is drawn into the opening by inhalation from the mouthpiece. In such a case, the vape monitoring device 300 is attached to the existing vaping device 100, and the air flowing into the opening comes from the housing of the vape monitoring device 300. Thus, the hit detector 690 is in fluid communication with the airflow entering the opening of the existing vaping device 100 and monitors when a user receives a hit from the existing vaping device 100. For example, one possible hit detector is a pressure sensor. When the vape monitoring circuit 301 is initialized, a base pressure measurement is taken from the pressure sensor. When a user receives a hit from the existing vaping device 100, air is drawn into the existing vaping device 100 through an opening located within the vape monitoring device 300. During the hit, the pressure inside the vape monitoring device 300, as measured by the pressure sensor (hit detector 690), drops below the base pressure measurement. Naturally, such pressure drops or changes are expected to occur due to movement (e.g., in a train entering or exiting a tunnel) or weather (e.g., when a front is approaching), but such pressure deviations are often negligible because their duration is often much shorter or longer than a typical hit taken by the user. Any hit detector is envisioned, including but not limited to pressure switches, pressure sensors, and turbines or fans that rotate during suction (e.g., coupled to optical interrupters, magnetic detectors, or other means of detecting rotation).
[0050] Another embodiment of the hit detector 690 is a diaphragm interfaced to either a force sensor or a switch (e.g., a magnet and reed switch or similar interfaced to the diaphragm). The diaphragm has external air pressure on one side and internal air pressure of the vape monitoring device 300 on the other side. When air is drawn in through the opening during a hit, the air pressure inside the vape monitoring device 300 decreases, while the air pressure outside the vape monitoring device 300 remains relatively constant.
[0051] Another embodiment of the hit detector 690 is a turbine or fan blade, which is positioned so that the airflow entering the opening of the existing vaping device 100 from outside the vape monitoring device 300 flows through the turbine or fan blade, causing it to rotate while the user performs a hit. Any known means of detecting when the turbine or fan blade is rotating is assumed, and includes, but is not limited to, interrupting a light beam directed to an optical sensor, detecting eddy currents caused by the turbine or fan blade passing through a coil of wire, or detecting magnetic changes from a small magnet on the turbine or fan blade.
[0052] There are many methods for detecting airflow or pressure drop in this technology, and all of them are included herein; therefore, there are no limitations on the hit detector 690. For example, there are MEMS flow sensors that detect 0-1 LPM. Some airflow sensors use a microheating element and multiple temperature transducers placed near the microheating element. In the absence of airflow, the heat from the heating element heats the temperature transducers evenly, but when airflow is present, one or more temperature transducers are cooled by the airflow and detected by the hit detector 690. Another airflow sensor is a deflection plate or similar that moves when air flows, and the movement of the deflection plate is measured by a photodetector, vortex detector, magnetic detector, camera, etc. Many newer types of flow detectors are being developed daily for use, for example, in instantaneous water heaters, and any such device is included herein as the hit detector 690.
[0053] As discussed below, software running on processor 670 monitors hit detector 690. When a hit is detected, the software reads time function circuit 680 and records the start time of the hit. When the hit weakens, the software records the end time of the hit. The software then creates hit data 315 for this hit. Note that the hit data includes a timestamp of the hit (either the start time or the end time) and the duration of the hit (e.g., 7 seconds) or both the start and end times of the hit. The software then stores the hit data 315 in persistent memory 674 and / or, if the software can connect to smartphone 108, transmits the hit data 315 via wireless transceiver 676 (or transmitter).
[0054] Referring to Figure 5, an exemplary smartphone user interface 400 for a system for monitoring vaping is shown. While many user interfaces are conceivable, one exemplary user interface is a text input interface used to collect data from the user when the user first begins using the system for monitoring vaping.
[0055] Demographic information 401 is collected from the user, such as the user's name, age, years of smoking, and any other data that may help the user reduce their nicotine intake and, preferably, quit vaping completely.
[0056] Intent information 402 is collected from the user, such as how much the user wants to quit, how quickly the user wants to quit, and how much vaping product the user consumes over a certain period (e.g., daily, weekly).
[0057] Once the user has finished entering the information, the user invokes the "Done" function 406, and the information is saved and / or transferred to the server computer 102 for remote storage.
[0058] It should be noted that user interface 400 is also expected to collect other information, such as the addresses of users within a group (for example, to help create competition among users).
[0059] Referring to Figure 6, a second exemplary smartphone user interface 410 for a system for monitoring vaping is shown. While many user interfaces are conceivable, one exemplary user interface is a display interface used to provide information and encouragement to the user of the system for monitoring vaping.
[0060] For identification purposes, the user's name, 411, is displayed.
[0061] In some embodiments, vaping statistics 412 are displayed, showing the user how many minutes of vaping have been performed the previous day and the current day (only two days are shown for brevity and clarity).
[0062] In some embodiments, an encouragement message 413 is displayed. In this embodiment, the system for monitoring vaping identifies when the user is approaching a time when they frequently vape, for example, when the user is driving to work or entering a bar. This encouragement message 413 is somewhat challenging to the user, asking them not to vape for 10 minutes, and if the user can refrain from vaping for 10 minutes, they are awarded 3 points. Note that in some embodiments, the system for monitoring vaping uses a reward system to encourage vaping reduction, such as a points system, as shown in Figure 6. As the user accumulates points, the points can be exchanged for various items such as gift cards, products, etc.
[0063] The user receives an instruction 416 to exit the user interface 410.
[0064] Referring to Figures 7, 7A, 8, and 8A, exemplary enclosures 360 / 370 of the vape monitoring device 300 for monitoring vaping are shown. While Figures 7 and 8 show two exemplary physical embodiments of the vape monitoring device 300, there are no limitations on the shape, size, or method by which the physical vape monitoring device 360 can be mounted to an existing vape device 100A / 100B / 100C. Figures 7A and 8A are cross-sectional views showing existing vape devices 100A / 100B / 100C installed within their respective enclosures 360 / 370 that house the vape monitoring device 300 circuitry.
[0065] The physical enclosure 360 / 370 can be attached to various known existing vaping devices 100A / 100B / 100C, and the illustrated existing vaping devices 100A / 100B / 100C are intended to be such embodiments and are not exhaustive. Since manufacturers of existing vaping devices 100A / 100B / 100C are free to produce variations in size and shape of the existing vaping devices 100A / 100B / 100C, in some embodiments the physical enclosure 360 / 370 is fabricated from an elastic material such as silicone. In such cases, the receiving channel 362 / 372 of the physical enclosure 360 / 370 extends over a portion of the existing vaping device 100A / 100B / 100C, not only holding the existing vaping device 100A / 100B / 100C but also providing a seal to the surface of the existing vaping device 100A / 100B / 100C, reducing air noise and leakage.
[0066] Since the existing vape devices 100A / 100B / 100C have inlets 112A / 112B / 112C, the physical enclosure 360 / 370 covers the inlets 112A / 112B / 112C. When a user inhales through the mouthpiece 110A / 110B / 110C of the existing vape device 100A / 100B / 100C, air flows into the physical enclosure 360 / 370 through the inhalation port 364, through the internal cavity within the physical enclosure 360 / 370, and into the air inlets 112A / 112B / 112C of the existing vape device 100A / 100B / 100C. The hit detector 690 is interfaced to the internal cavity, and when the user inhales through the mouthpiece 110A / 110B / 110C, the airflow is detected by the hit detector 690 and registers that a hit has been taken. In some embodiments, the size of the inhalation port 364 is adjusted to a size that produces a specific pressure drop within the internal cavity during inhalation.
[0067] For example, using Figure 8A, if the hit detector 690 is a pressure sensor, when a user of an existing vape device 100C inhales through the mouthpiece HOC, air is drawn in through the air intake port 112C, creating a pressure drop within the internal cavity of the physical enclosure 370, which is measured by the hit detector 690, since this hit detector 690 is a pressure sensor. Eventually, the air flows into the internal cavity through the intake port 364, and the pressure within the internal cavity returns to its previous pressure until another hit is taken. The vape monitoring circuit 301 monitors these pressure changes and, upon recognizing the pressure drop, records the hit in the hit recorder.
[0068] In some embodiments, hit records are transmitted to the user device (e.g., smartphone 108) in real time (e.g., when a hit is taken). In such cases, after receiving the hit records, in some embodiments, the user device (or software running on the user device) adds the time and / or location of the hit to the hit records and then stores the hit records for future processing and / or reporting. In some embodiments where there is no connected or intermittent connection between the vape monitoring device and the user device (e.g., smartphone), the hit records are recorded in the user device's memory, and when a connection is made between the vape monitoring device and the user device, multiple hit records are transmitted from the vape monitoring device to the user device. In such cases and in some embodiments, the vape monitoring device has a clock and / or positioning service, and the monitoring device adds the time and / or location of the hit to the hit records.
[0069] Referring to Figure 9, a second schematic diagram of the vape monitoring circuit 301 of the system for monitoring vaping is shown. The program is generally stored in persistent memory 674, which is shown as flash memory in this example. The processor 670 is an arbitrary processor, typically a processor designed for embedded systems, and often has embedded random access memory 675.
[0070] 8 is shown integrated into processor 670. The time function circuit 680 provides the processor with time values.
[0071] The optional identifier 302 is shown integrated into the processor 670, but in some embodiments, if the optional identifier 302 is present, it is assumed that the optional identifier 302 is outside the processor 670 and is programmed, for example, in persistent memory 674 (e.g., flash) or located in a separate device (not shown). In embodiments having the optional identifier 302, it is assumed that the vape monitoring circuit 301 includes an identifier value read from the optional identifier 302 in the hit data 315 to further identify the origin of the hit data.
[0072] In this embodiment, the hit detector 690 is interfaced to the processor 670, for example, via an input port. It should be noted that many methods are known for interfaceping the hit detector 690 to the processor 670, and all of them are included herein.
[0073] In this embodiment, the processor 670 and the wireless transceiver 676 are powered by a power storage device 320, which is any known or future power storage device, such as a battery, battery pack, one or more capacitors, and one or more supercapacitors. The power storage device 320 is charged by a charge / data circuit 322, which receives power from a connector 324 that receives power from an external power source, such as a USB charging brick. Note that in some embodiments, the connector 324 is a wireless charging interface known in the industry.
[0074] In this embodiment, the wireless transceiver 676 is a wireless transceiver or radio that uses any transmission protocol and frequency band, e.g., Bluetooth, Wi-Fi, or a proprietary protocol, and has an antenna 676A. In some embodiments, the functions of the wireless transceiver 676 are replaced or supplemented by a wired data connection, and the data is stored in persistent memory 674 and then transferred from the vape monitoring circuit 301 to the smartphone 108 (or other device such as a personal computer or tablet) when the wired connection is made, for example when charging the vape monitoring device 300. Thus, the data is transferred to the smartphone 108 or other device via the charging / data circuit 322 and connector 324.
[0075] In some embodiments, the vape monitoring circuit 301 further includes a positioning circuit, such as a global positioning circuit 679 (e.g., a GPS receiver), which reports the location of the vape monitoring circuit 301 to the processor 670. In such embodiments, the vape monitoring circuit 301 may cache hit records so that the location of the vape monitoring circuit 301 at the time each hit was taken is appended to each hit record.
[0076] Referring to Figure 10, an exemplary learning implementation of a vape monitoring system is shown, using a mathematical process 810 (e.g., a neural network) represented by a simplified multilayer feedforward neural network. In the illustrated embodiment, the algorithm of the vape monitoring system is assumed to be implemented using a finite state machine, heuristic, or any programming paradigm, but artificial intelligence is used to learn user habits and generate encouragement, suggestions, distractions, etc., when the software determines that it is the correct time. In some embodiments, there is a learning process as shown in Figures 10 and 12. In the learning process, the vape monitoring device 300 sends hit data 315 to a smartphone 108. The smartphone 108 adds location data and sends hit data 315A with location data to a server computer 102. When the hit data 315A with location data is received by the server computer 102, it is processed and optionally includes external data 804 and user data 802, and the knowledge base 800 is updated accordingly. Examples of external data 804 include weather data, traffic data, and sunrise / sunset times. In some embodiments, external data 804 is received from a data source that is local to the location data in hit data 315A, which has location data. For example, if the location data indicates that the user is driving on a particular highway, the external data source is queried for external data 804 regarding traffic congestion on that particular highway and retrieves data indicating the user's stress level at the time of the hit.
[0077] In some embodiments, the knowledge base 800 is taught independently of any given user (e.g., general-purpose), while in some embodiments, the knowledge base 800 is specific to each user.
[0078] Referring to Figure 11, an exemplary stop implementation of a vape monitoring system is shown, using a mathematical process represented by a simplified multilayer feedforward neural network (hereinafter referred to as mathematical process 810 (e.g., neural network)). The algorithm of the vape monitoring system is expected to be implemented using a finite state machine, heuristic, or any programming paradigm, but in the illustrated embodiment, artificial intelligence is used to learn the user's habits and generate encouragement, suggestions, distractions, etc., when the software determines that it is the right time. In some embodiments, there is a stop process as shown in Figures 11 and 13. In the stop process, the vape monitoring device 300 sends hit data 315 to the smartphone 108. The smartphone 108 adds location data and sends hit data 315A with location data to the server computer 102. When hit data 315A containing location data is received by the server computer 102, the hit data 315A containing location data is processed by a mathematical process 810 (e.g., a neural network) to optionally include external data 804 and user data 802, and the knowledge base 800 is updated accordingly. Examples of external data 804 include weather data, traffic data, and sunrise / sunset times. In some embodiments, the external data 804 is received from a data source that is local to the location data in the hit data 315A containing location data. For example, if the location data indicates that the user is driving on a particular highway, the external data source is queried for external data 804 regarding traffic congestion on that particular highway and retrieves data indicating the user's stress level when the user hit. User data 802 includes parameters set by the user, such as how aggressively the user wants to stop vaping and the strength of the vaping fluid.
[0079] Each hit data 315A with location data is analyzed by a mathematical process 810 (e.g., a neural network) based on the time, duration, and / or location of the hit, and the knowledge base 800 is updated accordingly. The mathematical process 810 (e.g., a neural network) determines what steps should be taken to help the user stop or reduce vaping, and when those steps should be started. In one embodiment, the steps include communicating an action 317 to the user's smartphone 108. In the embodiment shown in Figure 11, the steps available based on the analysis include encouragement (e.g., a message, melody, change of display color), distraction (e.g., a message, a request to answer a question, a request for the user to play a game), suggestion (e.g., a message suggesting the user perform an alternative task such as drinking water), challenge (e.g., providing the user with an incentive not to vape for a certain time interval), or point reward (e.g., earning points for vaping over a certain time interval).
[0080] In some embodiments, the smartphone 108 periodically sends user update data 3158 to the server computer 102. This user update data includes, for example, the user's time and location, and user responses to queries such as "how are you feeling?" or "are you stressed?". These periodic transmissions provide information about the user's location and status, regardless of whether the user is actively vaping. The learning system can therefore be configured to learn more about what the user is doing and how they are feeling when they are not vaping. Furthermore, in the absence of vaping activity, the vape monitoring system has location and / or user status information, and a mathematical process 810 (e.g., a neural network) is configured to determine what steps to take to assist the user based on the user location and / or user status information. For example, if the knowledge base 800 has data indicating that when a user arrives at work, the user will stand outside the building for two minutes to vape, the server sends action 317 to the user's smartphone 108 when the user location identifies that the user has arrived at work. For example, Action 317 could be a suggestion that the user should head to the office immediately, or a challenge where they receive an incentive, such as 4 points, for refraining from vaping for 4 minutes.
[0081] Any incentive is possible, but points are given as an example. As users accumulate points, they can exchange them for various goods or services, or they can compete with other users who have taken on challenges together. In such cases, when each of these collaborating users is added to the vape monitoring system, the collaborating users are added as friends, and as friends, the collaborating users share information about each other such as points earned, goal achievement, milestone achievement, and cross-user needs (for example, a suggestion for user 1 to call user 2 to encourage them).
[0082] Furthermore, when joining a vape monitoring system, it is assumed that users have the option of either purchasing a vape monitoring device 300 and using the software for free (e.g., with or without advertisements), or subscribing to a vape monitoring system where a vape monitoring device is provided (for free or for a fee) and the user pays a monthly fee for the vape monitoring service. In some embodiments of the subscription model, points are exchangeable for discounts on the monthly fee.
[0083] Referring to Figure 12, an exemplary learning flowchart of the vape monitoring system is shown. After initialization 900, user data is read (902) and parameters about the user are determined, such as how aggressively the user wants to reduce or stop vaping, the current vaping rate and vaping fluid strength, etc. Then a loop is started. With each loop, the server receives hit data 315A with location data (904), optionally searches external data 804 (906), and updates the knowledge base 800 (908). For example, during learning, the user's vaping pattern is captured and, when used, mapped to external factors such as those retrieved from external data 804 (906), and the knowledge base 800 is updated accordingly. As a concrete example, hit data 315A, which contains location data for five hits, is received on a given day between 5:00 PM and 5:05 PM, and the location is outdoors; external data indicates that the user's location is sunny; on another day between 5:00 PM and 5:05 PM, hit data 315 is not received, and the location is outdoors; external data indicates that the user's location is rainy. In this case, the knowledge base infers that the user does not like vaping when it is raining.
[0084] The loop is repeated until it is determined that sufficient learning has occurred (910).
[0085] Referring to Figure 13, an exemplary termination flowchart of the vape monitoring system is shown. In this process, the knowledge base 800 is used to determine when and what action should be taken, but it should be noted that it is also fully assumed that the knowledge base 800 will be updated as the user's further vaping patterns are monitored or as the user's existing vaping patterns change with feedback. After initialization 950, user data is read (952) and parameters about the user are determined, such as how aggressively the user wants to reduce or terminate vaping, the current vaping rate and vaping fluid strength, etc. The loop is then started. With each loop, the server receives hit data 315A with location data (954), optionally searches for external data 804 (956), processes the hit data with location data 315A and optionally external data 804 (958) to determine if there is an action to be taken. If it is necessary to perform action 960, the action is performed (962), which includes sending encouragement (e.g., a message, melody, change of display color), sending distraction (e.g., a message, a request for answering a question, a request for the user to play a game), sending a suggestion (e.g., a message suggesting the user perform an alternative task such as drinking water), sending a challenge (e.g., providing the user with an incentive not to vape at a certain time interval), or sending points (e.g., for achievement). For example, if process 958 determines that the user has a pattern in the current time, location, or activity (e.g., the user usually vapes before entering their parents' house), one action is to challenge the user to not vape for 5 minutes to earn 5 points. The vaping monitoring system then counts down for 5 minutes, and if it does not receive hit data 315 during those 5 minutes, the vaping monitoring system awards the user 5 points and sends a transaction to smartphone 108 congratulating the user and informing them that they have earned 5 points.
[0086] Referring to Figure 14, another exemplary smartphone user interface 420 for a system for monitoring vaping is shown. While many user interfaces are conceivable, one exemplary user interface is a display interface used to provide incentives to the user of the system for monitoring vaping with information and encouragement from competition among friends.
[0087] For identification purposes, the user's name, 411, is displayed.
[0088] In some embodiments, vaping statistics 412 are displayed to show the user how many minutes of vaping have been performed in the previous day and the present.
[0089] In some embodiments where a system for monitoring vaping uses a reward system, such as a points system, to encourage vaping reduction, the user accumulates points (or other tokens) reported in this exemplary smartphone user interface 420 (421). In this embodiment, the user indicates that three other users are friends, in which case there is a display of the friends' activities 422, and the user can compare the user's points with the points accumulated by the friends in some kind of competition.
[0090] As described above, the user has an instruction 416 to exit the user interface 420.
[0091] Figure 15 shows another user interface 430 for providing encouragement to the user of the system for monitoring vaping. If the system for monitoring vaping determines that the user is under stress or in a situation where they may be vaping excessively, an encouragement message 431 is displayed, for example, as an in-application message or a pop-up message.
[0092] As described above, the user has an instruction 416 to exit the user interface 430.
[0093] Equivalent elements can be substituted for those described above, and they will function in substantially the same manner and in substantially the same way to achieve substantially the same results.
[0094] It is expected that the above description will provide an understanding of the system and method, as well as many of its associated advantages. It is also expected that various modifications can be made in the form, structure, and arrangement of the components without departing from the scope and spirit of the invention or sacrificing any of its important advantages. The embodiments described herein are merely illustrative and descriptive. The following claims are intended to encompass and include such modifications.
Claims
1. A system for monitoring vaping, An enclosure having internally a logic with memory, a hit detector, and a wireless transmitter, wherein the enclosure is configured to connect to an existing vaping device, and when a hit is drawn in from the mouthpiece of the existing vaping device, air flows through an internal cavity of the enclosure to a vape monitoring device, the hit detector is in fluid communication with the internal cavity, and when a hit is drawn in, the air flowing through the internal cavity is detected by the hit detector, and the logic records the hit in the memory; means for transmitting the hit record to a user device using the wireless transmitter; and means for processing the aforementioned hit record A system that includes these features.
2. The system for monitoring vaping according to claim 1, wherein the logic comprises a processor, the hit detector, memory, and wireless transmitter are operably coupled to the processor, the processor executes program instructions for monitoring the hit detector to generate hit data after the hit detector signals at least the start and end of a hit, and the processor executes instructions for transmitting the hit data to the user device via the wireless transmitter.
3. The system for monitoring vaping according to claim 1, characterized in that the user device is a smartphone.
4. The logic further comprises a clock for measuring time, and the logic adds the time to the hit record for each hit, as described in claim 1. A system for monitoring vaping.
5. The system for monitoring vaping according to claim 1, wherein the logic further comprises a global positioning device for measuring the position of the vape monitoring device, and the logic adds the position of the vape monitoring device to the hit record for each hit.
6. The system for monitoring vaping according to claim 1, wherein the user device comprises a global positioning device for measuring the location of the user device and a clock for measuring the time, and when the hit record is transmitted to the user device in real time, the user device adds the time and location to the hit record for each hit.
7. The system for monitoring vaping according to claim 1, characterized in that the hit detector comprises a pressure sensor.
8. The means for processing the hit record is characterized by outputting a suggestion on the user device, the suggestion including a challenge, for monitoring vaping according to claim 1.
9. The system for monitoring vaping according to claim 1, wherein the means for processing the hit record outputs a suggestion on the user device, the suggestion includes an encouragement message.
10. The means for processing the hit record is characterized by using a learning algorithm to predict user habits and making suggestions based on those user habits, as described in claim 1, for monitoring vaping.
11. A method for monitoring vaping, A step of identifying when a hit is taken from an existing vaping device and recording the details of the hit; A step of sending the details of the hit to the device; A step of recording the details of the hit in the device; and The process of receiving multiple details in the aforementioned device and then reporting statistics generated from those multiple details. Methods that include...
12. The method according to claim 11, characterized in that the details of the hit include the time of the hit.
13. The method according to claim 11, characterized in that the details of the hit include the location of the hit.
14. The method according to claim 11, wherein the details of the hit include the duration of the hit.
15. The method according to claim 11, further comprising the step of generating a proposal from the aforementioned plurality of details.
16. A vape monitoring device, An enclosure configured to connect to an existing vaping device, wherein when a hit is drawn in through the mouthpiece of the existing vaping device, air flows into the internal cavity of the enclosure from the intake port of the enclosure to the intake port of the existing vaping device; Logic located within the enclosure comprising memory, a hit detector, and a wireless transmitter, wherein the hit detector is in fluid communication with the internal cavity, and when a hit is drawn in from the mouthpiece of the existing vaping device, air is drawn from the internal cavity to the intake of the existing vaping device, reducing the air pressure in the internal cavity, the hit is detected by the hit detector, and the logic records the hit in the memory; and means for supplying power to the aforementioned logic A vape monitoring device equipped with the following features.
17. The vape monitoring device according to claim 16, characterized in that a part of the existing vaping device fits inside the sealing member of the enclosure.
18. The vape monitoring device according to claim 16, characterized in that the logic includes a processor and memory.
19. The vape monitoring device according to claim 16, wherein the logic further includes a clock, and when a hit is sucked, the logic reads the clock and records the time from the clock in the hit record.
20. The vape monitoring device according to claim 16, wherein the logic further comprises a position detection device, and when a hit is detected, the logic reads the position detection device and records the position from the position detection device in the hit record.