This application claims priority to and the benefit of Chinese Utility Model Patent Application No. 201620225876.0 filed on Mar. 22, 2016, Chinese Utility Model Patent Application No. 201620222305.1 filed on Mar. 22, 2016, Chinese Utility Model Patent Application No. 201620216767.2 filed on Mar. 22, 2016, and Chinese Patent Application No. 201610165863.3 filed on Mar. 22, 2016, the disclosures of which are incorporated herein by reference in their entirety.
A stringed musical instrument is an important branch of the instrument family. Almost all melodies from classical music to modern light music are played in part using stringed instruments. Based on how sound is produced, stringed instruments are divided into bow stringed instruments (e.g., the violin family), pizzicato stringed instruments (e.g., guitars and other plucked stringed instruments) and slap stringed instruments (e.g., piano). Examples of bow stringed instruments include the violin, viola, cello, double bass, and Erhu. Examples of pizzicato stringed instruments include the harp, guitar, electric guitar, electric bass, old lute, Pipa, and zither. Examples of slap stringed instruments include the piano. A guitar is a plucked instrument usually with six strings but it can also have four, eight, ten or twelve strings. Its shape is similar to that of a violin.
Currently, most people learn stringed instruments, such as the guitar, from teachers in classes, with high costs and short class time. There is an illusion that it is extremely difficult to learn to play the guitar because of a tedious teaching process, students' failure to persistently practice the guitar for a long time and other factors. Thus, there is a need for a modern interactive musical instrument and a teaching system to solve the problems mentioned above.
The present disclosure relates to a stringed musical instrument, such as a guitar or ukulele with integrated LED lights and systems comprising the same. Also disclosed herein are methods of using the same.
In one embodiment, the stringed musical instrument comprises at least one string, a body, a head and a neck comprising a back plate and a cover. The back plate comprises a first array of openings and the cover comprises a second array of openings. The first array of openings is in alignment with the second array of openings forming a light housing array. At least one light housing of the light housing array is configured to house a light source.
In some embodiments, the cover comprises an upper surface, the upper surface comprises a plurality of circular notches. The plurality of circular notches substantially surrounds each of the second array of openings.
In some embodiments, the light housing array has 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10 light housings in a row. For example, the number of light housings per row correspond to the number of strings of the stringed instrument. In one embodiment, the stringed instrument is a ukulele having 4 strings. Therefore, the light housing array has 4 light housings in each row. In another embodiment, the stringed instrument is a guitar having 6 strings. Therefore, the light housing array has 6 light housings in each row.
In some embodiments, the light housing array can have about 10 to about 30 (e.g., 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29 or 30) rows of light housings spaced apart along the neck of the stringed instrument. In some embodiments, the number of rows of light housings substantially corresponds to the number of frets of the stringed instrument. In one embodiment, the stringed instrument can have 12 rows of light housings. In one embodiment, the stringed instrument can have 15 rows of light housings. In one embodiment, the stringed instrument can have 18 rows of light housings. In one embodiment, the stringed instrument can have 20 rows of light housings. In some embodiments, the stringed instrument comprises at least 5 rows of light housings. In some embodiments, the stringed instrument comprises at least 10 rows of light housings. In some embodiments, the stringed instrument comprises at least 15 rows of light housings. In some embodiments, the stringed instrument comprises at least 20 rows of light housings. In some embodiments, the stringed instrument comprises at least 25 rows of light housings.
The first array of openings and the second array of openings form a plurality of light housings in a light housing array. The light housing array is the total number of light housings and relates to the number of light sources (e.g., one or more LEDs) the stringed instrument can have. For example, a light housing array having 20 rows and 6 openings in each row has a total of 120 light housings. By way of another example, a light housing array having 18 rows and 4 openings in each row has a total of 72 light housings. The light housing array can be sized and configured to fit the stringed instrument.
In some embodiments, the at least one string sits above the at least one light housing.
In some embodiments, the stringed instrument further comprises a plurality of frets, wherein each of the plurality of frets aligns with each row of openings.
In some embodiments, the light source in the stringed musical instrument is a LED. Each LED is housed in each light housing. Each LED has a diameter between 2.0 mm and 3.5 mm (e.g., 2.0, 2.1, 2.2, 2.3, 2.4, 2.5, 2.6, 2.7, 2.8, 2.9, 3.0, 3.1, 3.2, 3.3, 3.4 or 3.5). For example, the diameter of each LED is 2.8 mm.
In some embodiments, the circular notch has an inner diameter between 3 mm and 5 mm.
The present disclosure also relates to an interactive stringed instrument teaching system. The system comprises a stringed instrument comprising a first communication module and a mobile terminal (e.g., computer, mobile phone, mobile device, tablet) comprising a second communication module in communication with the first communication module. The stringed instrument comprises at least one string, a body, a head, and a neck comprising a back plate and a cover. The back plate comprises a first array of openings and the cover comprises a second array of openings. The first array of openings is in alignment with the second array of openings forming a light housing array. At least one light housing of the light housing array is configured to house a light source.
In some embodiments, the mobile terminal further comprises a microphone configured to collect one or more sound signals from the stringed instrument, a tuning module configured to obtain frequency information based on the collected one or more sound signals; and a database configured to store one or more musical scores, one or more standard sounds, a user playing data or a combination thereof.
In some embodiments, the mobile terminal further comprises a teaching module and a game module, wherein each of the teaching module and the game module comprises a performance module, a sound comparison module, and a note recognition module. For example, the sound comparison module compares the collected one or more sound signals with the one or more standard sounds and outputs one or more comparison results.
In some embodiments, the system further comprises a main control module, a sound wake-up module, an LED driver module and an LED matrix module. For example, the teaching module and the game module send note data to the smart stringed instrument through the first and second communication modules, and the main control module transmits the note data to the LED driver module which controls a plurality of LED lights at corresponding positions in the LED matrix module.
In some embodiments, the note recognition module recognizes one or more notes as a single note, a chord or a combination of notes.
In another embodiment, the teaching module sends one or more instructions to the user based on the one or more comparison results.
In some embodiments, the sound comparison module determines a sound played by the user is different from the one or more standard sound, the performance module does not play a next note until the sound comparison module determines that the two sounds are the same.
In some embodiments, the game module sends one or more instructions to the user based on the one or more comparison results.
In some embodiments, the first communication module, the second communication module, or both is a Bluetooth module. The Bluetooth modules are used for data transmission between the smart stringed instrument and the mobile terminal.
In some embodiments, the game module can provide real-time instructions to a user based on the comparison result. The instructions specifically can comprise the performance module continuously plays the present score, the sound comparison module keeps comparing the sounds collected with the standard sounds till the score is finished, the sound comparison module records and exhibits the number of correct and wrong notes played by the user based on the comparison results.
In some embodiments, the teaching module and the game module can set different learning targets based on the difficulty of scores.
In some embodiments, the game module can also comprise a pattern recognition module, which determines game patterns based on the present score played. The game patterns include a waterfall flow pattern and a chord cycle pattern.
In some embodiments, the server can comprise a song library and a file conversion module. The song library can save score files generated by the file conversion module.
The present disclosure herein also relates to a communication and/or data connection between a stringed instrument, such as a guitar or ukulele, and a mobile terminal through a communication module such as a Bluetooth module. After a connection is established for the first time, the system can prompt the user to tune the stringed instrument.
In some embodiments, the system can pick up sounds played by the user through a microphone. Corresponding frequency information can be obtained based on the sounds collected. The system can also compare the frequency information with the standard frequency information. In some embodiments, the system instructs the user to tune the stringed instrument.
In some embodiments, the user can choose between a teaching module and a game module. When the user plays the present score, the microphone will continuously collect sounds. Then, the sound comparison module will compares the sounds collected with the standard ones to determine the user's correctness and provide real-time instructions based on the comparison result. After all game levels are finished, it will show problems in the user's playing session based on an analysis of the user playing sessions, and give an award to the user based on the playing result. Based on the data collected during the user's play, the system will instructions the user to practice the unfamiliar parts through an algorithm, to learn the playing skills through games from easy to difficult, and to give the user a feeling of achievement during the part which they are good at.
Exemplary embodiments of the present disclosure are described below and shown in the accompanying drawings.
Specific embodiments of the present disclosure are described below. These embodiments are being presented by way of example only. Numerous modifications and other embodiments are within the scope of one of ordinary skill in the art and are contemplated as falling within the scope of the present disclosure. In addition, those skilled in the art should appreciate that the specific conditions and configurations are exemplary and that actual conditions and configurations will depend on the specific system. Those skilled in the art will also be able to recognize and identify equivalents to the specific elements shown, using no more than routine experimentation.
The present disclosure relates to a stringed musical instrument 10, as shown in
Back plate 11 can have a first array of openings 111. The lower surface of the cover 12 can comprise a second array of openings 122. The second array of openings 122 is in alignment with the first array of openings 111, forming a light housing array. Each light housing of the light housing array can house a LED light 13. The upper surface of the cover 12 can comprise circular notches 121 which align with the second array of openings 122. The lower surface of the cover 12 is the surface close to the back plate as shown in
Each of the circular notches 121 can substantially surround each of the second array of openings 122, at the outskirts of the second array of openings 122.
The inner diameter d of the circular notches 122 can be 3-5 mm such as 3, 4, or 5 mm, with a preferred value of 3.5-4.5 mm such as 3.5, 3.6, 3.7, 3.8, 3.9, 4.0, 4.1, 4.2, 4.3, 4.4, or 4.5 mm.
The width of the circular notches 122 can be 0.1-1.5 mm, with a preferred value of 0.5-1 mm such as 0.5, 0.6, 0.7, 0.8, 0.9, or 1.0 mm.
Each of the second array of openings can act as an independent “hat” for the LED light. The circular notch can focus the light coming out of the LED, provide a cover 123 above each LED for decorative purposes and show the position of each fret.
The light housing array 111 (or LED light) can comprise 3, 4, 5, or 6 light housings (or horizontal columns 15) in each row.
The stringed musical instrument 10 can have 3, 4, 5, or 6 strings 5, and each string 5 sits above a column of light housings. So each column of LED lights correspond to a single string 5. The twenty vertical rows of light housing 14 correspond to twenty frets on the strings. This design of the LED light housing array allows for each row of LED lights to correspond to one fret.
The LED lights 13 can be mounted inside the light housing array, so the positions of the LED lights 13 can be fixed.
The light housing array, the LED lights or both can be substantially cylinder-shaped or substantially cuboid-shaped. If they are cylinder-shaped, the diameter L can be about 2.0-3.5 mm, with a preferred value of about 2.5 mm or about 2.8 mm. If they are cuboid-shaped, their cross sectional shape is square (the shape of square can be seen from the top), with a length of each edge L being 2-3.5 mm, and a preferred value of 2.5 mm or 2.8 mm. The height for the LED lights can be 3-4 mm. The size of the LED lights affects the utility and visual effects of the instrument.
The height of the second array of openings 122 can be equal to the distance from the upper surface of the first array of openings 111 to the top of the LED lights 13. Thus the top of the LED lights 13 is close to the top of the second array of openings 122, as shown in
In some embodiments, the thickness of the cover H on top of the LED lights 13 can be around 0.5-1.5 mm. So the distance H between the top of the LED lights and the outer surface of the cover can be 0.5-1.5 mm, with a preferred value of 1 mm, as shown in
One end of the cover 12 is connected with the body 2 permanently or is releaseably attached. One end of the cover 12 can be mounted with the hole 6 in the body 2 and the other end of the cover 12 can be mounted to the head 3.
One end of the string 5 can be fixed at the support frame 4 and the other end can be fixed on the head 3, as shown in
The cover can be made from dark black translucent materials. When the LED lights illuminate, there is a distinct comparison resulting a mix of music and lights.
It should be pointed out that the LED lights 13 are not exposed. Only the cover 123 formed by the circular notches 121 can be seen from outside. Because the cover 123 is dark black and translucent, the light can shine through the cover 123 when LED lights illuminate. If the cover 123 is clear and translucent, the LED lights inside can be easily seen.
The present disclosure also relates to an interactive stringed instrument teaching system.
Both the smart stringed instrument and the mobile terminal can comprise a communication module, such as a Bluetooth module, which are used for data transmission between the smart stringed instrument and the mobile terminal. The mobile terminal can also comprise a microphone, a tuning module, a database, a teaching module and a game module. The microphone collects sound signals from the smart stringed instrument. The tuning module obtains frequency information based on the sound signals collected by the microphone, and guides users to tune the smart stringed instrument. The database stores musical scores, standard sounds and user playing data. The teaching module and game module, both of which comprise a performance module, a sound comparison module and a note recognition module, are used to play the present musical score and compare the collected sound with the standard sound with the sound comparison module to determine a user's playing correctness and provide real-time instructions to the user based on the result.
The smart stringed instrument can comprise a main control module, a sound wake-up module, a LED driver module and a LED matrix module. The teaching module and the game module send each note in the present score to the smart stringed instrument via the communication module, and the main control module transmits the note data to the LED driver module, which controls the LED lights at corresponding note positions at the LED matrix module.
The mobile terminal 610 can be a mobile device such as a mobile phone. In some embodiments, the mobile terminal 610 can be a tablet computer.
The core of the communication module 602 can comprise a DA14580 IC with Bluetooth function, which provides Bluetooth communication and drives peripheral circuits. This results in a compact size and a low cost. The I2C port connects to a LED driver IC and controls the LED lights individually. The 10-bit AD port connects to a charging port (AD_BAT) and reads battery voltage. The IO port connects to a MIC port (power_start) for IC wake-up.
The power management module 603 can comprise a LDO IC and a charging management IC such as APL3202. The LDO IC output a voltage of 3.0 V for the main control IC. The charging management IC (APL3202) can prevent the battery from over-discharging, over-charging, high voltage, and high temperature, and prolong the battery's lifetime. The AD_BAT port connects to the AD port of the main control IC for real-time charging detection. The CHAR_STAT port provides a charging status to the main control IC.
In some embodiments, the LED driver module 601 can comprise a LED driver IC such as SN3731I428E, which drives the LED matrix with simple I2C commands, as shown in
The PCB board 600 can comprise a sound wake-up module which connects to the communication module 602.
The note recognition module can recognize one or more notes as a single note, chord or combination of other notes.
The teaching module can provide real-time instructions to the user based on the result. The instructions can comprise: when the sound comparison module determines that the note played by the user is different from the standard sound, the performance module cannot play the next note until the system determines that the two sounds are the same.
The game module can provide real-time instructions to the user based on the result. The instructions can comprise: the performance module continuously plays the present score; the sound comparison module keeps comparing the sounds collected with the standard sounds until the score is finished; the sound comparison module records and shows the number of correct and wrong notes played by the user based on the comparison result.
The teaching module and the game module can set different learning targets based on the difficulty of the scores.
The game module can comprise a pattern recognition module, which determines game patterns based on the present score played. The game patterns can comprise a waterfall flow pattern and a chord cycle pattern.
The server can comprise a song library and a file conversion module. The song library saves score files generated by the file conversion module. The file conversion module converts score files of different formats into a file format in compliance with the software program's requirements. For example, a user can upload scores in “guitar pro” format to the server, and the server can convert the files uploaded by the user into score files in the format that is used by the software program, so that other users can also play.
Some modules of the mobile terminal of the present disclosure can be realized either with software or with hardware. For example, the tuning module, the database, the teaching module and the game module can be altogether combined in one software program. All functions of the modules can be realized by running the software program. Additionally, it can also simplify the product operations and enhance human-machine interaction.
As shown in
As shown in
Compared with the existing techniques, this present disclosure provides the following advantages. The present disclosure establishes a communication connection between a stringed instruments, and a mobile terminal through the communication module. After a connection is established for the first time, the system can require the user to tune the stringed instrument and collect sounds played by users via the microphone. Based on the sounds, the corresponding frequency information can be obtained. After the system compares the frequency information with the standard frequency information, it guides the user to tune strings. There are two categories of learning session available to users, teaching and game. When a user plays the present score, the microphone will continuously collect sounds. Then, the sound comparison module will compares the sounds collected with the standard ones to determine the user's correctness and provide real-time instructions based on the results. After all game levels are finished, it can show problems during the user's playing session based on its analysis, and can give an award to the user based on the results. Based on the data generated during the play session, the system can instructions the user to practice unfamiliar parts in later learning sessions through an algorithm.
The foregoing description of preferred embodiments of the present disclosure has been presented for the purpose of illustration and description. It is not intended to be exhaustive or to limit the invention to the precise forms disclosed. Modifications and variations are possible in light of the above teachings, or can be acquired from practice of the invention. The embodiments presented herein were chosen and described in order to explain the principles of the invention and its practical application to enable one skilled in the art to utilize the invention in various embodiments and with various modifications as are suited to the particular use contemplated. It is intended that the scope of the invention be defined by the claims appended hereto, and their equivalents.
Number | Date | Country | Kind |
---|---|---|---|
201610165863.3 | Mar 2016 | CN | national |
201620216767.2 | Mar 2016 | CN | national |
201620222305.1 | Mar 2016 | CN | national |
201620225876.0 | Mar 2016 | CN | national |