Interactive exercise and training system
20190388760 ยท 2019-12-26
Inventors
- Jeffrey W. Morin (Exeter, NH, US)
- Todd A. Dagres (Boston, MA, US)
- Arvin G. Abadilla (Carlsbad, CA, US)
- Matthew A. Froncillo (San Diego, CA, US)
- Adam V. Hickerson (Oceanside, CA, US)
- Donald I. Lambe (Watertown, MA, US)
Cpc classification
A63B24/0075
HUMAN NECESSITIES
A63B2220/833
HUMAN NECESSITIES
A63B2024/0068
HUMAN NECESSITIES
A63B2209/10
HUMAN NECESSITIES
A63B2225/50
HUMAN NECESSITIES
A63B69/0053
HUMAN NECESSITIES
A63B71/0622
HUMAN NECESSITIES
International classification
Abstract
A punching bag training comprises a flexible housing adapted to be wrapped around a punching bag. The housing supports a strike pad array. Each strike pad in the array comprises a force sensor to detect strikes, together with a plurality of light emitting diodes (LEDs) that are positioned around the force sensor and that are lit when the user strikes the pad accurately (e.g., within a predetermined strike zone, and within a predetermined time). In addition, each strike pad has associated therewith an extension (or connecting) portion that couples the strike pad to the center portion. The connecting portion advantageously includes a set of LEDs that are selectively lit to telegraph a hit point to the user, namely, the strike pad associated with the connecting portion. The LEDs arranged on the connecting portion serve as a runway with the LEDs being lit progressively from the center portion and outward toward the strike pad to be hit next in a programmed hit sequence. As the user interacts with the system, speed, timing and accuracy preferably are measured to determine a score. The lighting elements are controlled using a controller unit that may be integral with the housing, attached thereto, or coupled to the housing wirelessly. The controller unit outputs one or more programmed hit sequences (i.e., to provide the control signals that activate the LEDs), and to detect and record electrical signals generated by the force sensors as the user strikes the pads.
Claims
1. A system, comprising: a body comprising an array of strike pads selectively positioned to provide a set of hit targets, wherein each strike pad has associated therewith a set of indicator lights, and a force sensor; and a controller unit communicatively-coupled to the strike pad array, the controller unit configured to provide control signals to selectively activate the indicator lights to telegraph a programmed hit sequence, and to receive electrical signals generated by the force sensors; wherein the programmed hit sequence comprises a set of strike pad cues synchronized in timed coordination with an audio file.
2. The system as described in claim 1 wherein the controller unit is further configured to transfer training session data, the training session data being derived at least in part from the received electrical signals generated by the force sensors.
3. The system as described in claim 2 wherein the training session data is associated with a user in an interactive training session.
4. The system as described in claim 1 wherein strike pads in the array of strike pads are selectively positioned in a starburst arrangement.
5. The system as described in claim 1 wherein the set of indicator lights associated with a strike pad are selectively activated in response to a strike pad cue.
6. The system as described in claim 1 wherein the set of indicator lights are light emitting diodes (LEDs) configured as a runway.
7. The system as described in claim 1 further including a mobile device application for managing data generated in association with a training or exercise session.
8. The system as described in claim 7 further including an application that exposes a display interface for use in configuring an interactive training session.
9. The system as described in claim 8 wherein the display interface comprises a set of tools to enable a user to import and render a visualization of the audio file, and to input strike pad cues in association with the audio file.
10. An article of manufacture, comprising: a body comprising a stacked construction of layers, the layers comprising a fabric backing, a flexible printed circuit board, a compression-molded foam, and an outward facing front fabric layer; wherein the flexible circuit board comprises an array of strike pads positioned to provide a set of hit targets, wherein each strike pad has associated therewith a set of indicator lights, and a force sensor.
11. The article of manufacture as described in claim 10 wherein the compression-molded foam and the outward facing front fabric layer comprise a compression-molded front shield comprising the set of hit targets.
12. The article of manufacture as described in claim 10 wherein the set of strike pads are positioned in a starburst arrangement.
13. The article of manufacture as described in claim 10 wherein the set of indicator lights are configured as a runway and selectively activated to telegraph a hit point.
14. A method, comprising: positioning a body on a support, the body comprising an array of strike pads selectively positioned to provide a set of hit targets, wherein each strike pad has associated therewith a set of indicator lights, and a force sensor; communicatively-coupling control signals to the body to selectively activate the indicator lights to telegraph a programmed hit sequence, wherein the programmed hit sequence comprises a set of strike pad cues synchronized in timed coordination with an audio file; and communicatively-coupling signaling generated by the force sensors, the signaling indicating a user's response to the programmed hit sequence; wherein the programmed hit sequence is provided concurrently to a set of users, the set of users including a user associated with the body positioned on the support, thereby providing multi-user interactivity with respect to the programmed hit sequence.
15. The method as described in claim 14 further including providing real-time or recorded workout instructions in association with the control signals.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
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[0014]
[0015] The starburst configuration of the strike pad array shown in
[0016] Control over the lighting sequence is provided by the controller unit 105, which as noted typically also receives signals generated by the force sensors 306. As the user interacts with the system, speed, timing and accuracy preferably are measured by the force sensors and the associated controller unit to determine a score or to provide other information. As noted above, the controller unit 105 may be integral with the housing, attached thereto (such as shown in
[0017] The controller unit 105 may be integrated with the strike pad array, as opposed to being a separate unit.
[0018] In one embodiment, a punch detection and measurement algorithm implements a moving threshold that filters the pressure reading from a force sensor; on a punch, the pressure reading changes rapidly and passes a threshold, and the algorithm determines the force to record preferably by taking a maximum value before the pressure reading returns below the threshold or a timeout occurs.
[0019] To facilitate gamification, the system preferably includes programming tools (e.g., a mobile device app, a desktop application, hardwired controls, etc.) to enable the user or other content provider (or indeed the system itself in an automated manner) to create a customize training or exercise session. Preferably, a custom session links together source audio (e.g., a music track), and a set of strike pad hit point locations and timing.
[0020] Machine or other learning may be applied to the system to provide for enhanced or more complex training sessions as the user increases his or her proficiency.
[0021]
[0022] The interactive system of this disclosure also may include or utilize a client device for interacting with the controller unit. A client device typically is a mobile device, such as a smartphone, tablet (e.g., an iPhone or iPad) or wearable computing device. Such a device comprises a CPU (central processing unit), computer memory, such as RAM, and a drive. The device software includes an operating system (e.g., Apple iOS, Google Android, or the like), and generic support applications and utilities. Connectivity to the interactive system typically is via a management application (a mobile app) that may be downloaded via a mobile application storefront (e.g., the AppStore). The management application provides data management functions, connectivity to social networks, and interactivity. The display interface depicted in
[0023] As an alternative to LEDs, other lighting devices (e.g., EL, LCD, incandescent, halogen, etc.) may be used.
[0024] There is no requirement that the wrap be used on a punching bag; the wrap may also be attached to a flat surface (e.g., a wall), or otherwise affixed to a support structure, or even a person (who would then in effect serve as the target).
[0025] The controller unit includes a power source, e.g., a battery, which may be removable for recharge or replacement.
[0026] Preferably, the wrap comprises a stacked construction such as depicted in the exploded view shown in
[0027] In addition to or in lieu of the force sensor (which typically is a resistive device), an accelerometer may be used to generate the hit detection.
[0028] In use, and to facilitate multi-player interactivity, the controller may be selectively programmed to capture and upload (e.g., by wireless transfer) hit data, exercise/training session data, scores, and the like, to multi-player gaming sites, other social media sites and the like. Such interactivity may include an instructor providing instructions (to users) via real-time or recorded audio/video. The instruction may include cues for punch location, timing and other exercises (e.g., push-ups, knee bends, etc.) during an interactive workout session. Instruction of this type can be given to multiple users, and their session results may then be used for competition or social sharing.