WIRELESS HEADSET WITH HEARABLE FUNCTIONS
20230058427 · 2023-02-23
Inventors
- Jyri PAKARINEN (Helsinki, FI)
- Tommi RAUSSI (Kista, SE)
- Laura LAAKSONEN (Helsinki, FI)
- Markus VAALGAMAA (Helsinki, FI)
- Jari SJÖBERG (Tampere, FI)
- Lisheng TIAN (Shanghai, CN)
Cpc classification
G10K11/17881
PHYSICS
H04R1/1041
ELECTRICITY
H04R2420/07
ELECTRICITY
G10K11/17827
PHYSICS
G10K11/17873
PHYSICS
G06F3/165
PHYSICS
G10K11/17837
PHYSICS
H04R2430/01
ELECTRICITY
G10K2210/1081
PHYSICS
International classification
G10K11/178
PHYSICS
H04R1/10
ELECTRICITY
Abstract
A system for adjusting volume and ambient sounds in an earphone device with Active Noise Cancelling (ANC) functionality, implemented using a microphone and a signal processor, wherein a signal mixer is configured to, in response to detecting a rotation of a first dial connected to the earphone device, adjust the proportions between a group of signals in a mixed signal generated for the speaker of the earphone device, and thereby enabling precise and intuitive control of both playback volume and ambient sound processing.
Claims
1. A system comprising: at least one microphone configured to generate at least one microphone signal; a signal processor configured to generate an Active Noise Cancellation (ANC) signal based on said at least one microphone signal; a signal mixer configured to mix a group of signals to generate a mixed signal, the group of signals comprising the ANC signal and at least one microphone signal; a speaker configured to generate sound waves based on the mixed signal; and a rotatable first dial; wherein the signal mixer is further configured to, in response to detecting a rotation of said first dial, adjust proportions between said group of signals in the mixed signal.
2. The system according to claim 1, wherein said signal processor is further configured to process said at least one microphone signal, before it is sent to the signal mixer, to match sound characteristics of an unblocked ear canal.
3. The system according to claim 1, wherein the signal processor is further configured to process the at least one microphone signal from said at least one microphone and generate an enhanced microphone signal by applying at least one of noise suppression, optionally followed by raising an overall volume; speech enhancement; signal alteration based on preset sonic characteristics including equalization; signal alteration based on directional characteristics of a sound field surrounding the at least one microphone; signal alteration based on an estimated usage environment of the system the estimated usage environment comprising an airplane, office or outdoors; or signal alteration based on an estimated usage mode of the system the estimated usage mode comprising discussion, exercise, or work, wherein said group of signals further comprises said enhanced microphone signal.
4. The system according to claim 3, wherein said first dial is rotatable between a first state, a second state, and a third state, and wherein the signal mixer is configured to: in response to detecting said first dial being in said first state, increase a proportion of said ANC signal to a maximum, in response to detecting said first dial being in said second state, increase the proportion of said microphone signal to a maximum, in response to detecting said first dial being in said third state, increase the proportion of said enhanced microphone signal to a maximum, and iterate signal proportions in response to detecting a rotation of said first dial between said first state, said second state, and said third state.
5. The system according to claim 4, wherein the rotation of said first dial is limited between a first end position and a second end position, wherein reaching said first end position sets the first dial in said first state, reaching said second end position sets the first dial in said third state, and a predefined intermediary position between said first end position and said second end position sets the first dial in said second state.
6. The system according to claim 4, wherein said first dial is configured to be freely rotating, wherein passing a first position in a first rotational direction sets the first dial in said first state, passing a second position in a second rotational direction sets the first dial in said third state, and a predefined intermediary position between said first position and said second position sets the first dial in said second state.
7. The system according to claim 3, the system further comprising: at least one of a storage medium or a communication interface; and a program unit configured to generate a program signal based on at least one of a program file stored on the storage medium, a program code for locally synthesizing a program signal, or a program stream received using the communication interface; wherein the signal mixer is further configured to mix said program signal into said mixed signal.
8. The system according to claim 7, wherein the system comprises: a rotatable second dial; and wherein the signal mixer is further configured, in response to detecting a rotation of said second dial, adjust the volume of said program signal with respect to the remaining signals in the mixed signal.
9. The system according to claim 7, the system further comprising: an earphone device comprising a housing configured to fit into an ear canal or to substantially cover an opening of an ear canal; the housing comprising a first side, and a second side opposite to the first side; wherein said at least one microphone is arranged in the housing facing outwards from said first side and configured to capture sound waves from an external environment; wherein said speaker is arranged in the housing facing outwards from said second side and configured to generate sound waves for delivery towards the inside of the ear canal; and wherein one of said first dial or said second dial is rotatably mounted on the first side.
10. The system according to claim 9, wherein the earphone device comprises at least two microphones arranged in the housing facing outwards from said first side and configured to be oriented towards the mouth of a user of the earphone device to enable acoustic beamforming.
11. The system: according to claim 9, further comprising: a host device arranged in data connection with said earphone device; wherein said host device comprises said signal processor, said signal mixer, said program unit and said at least one of said storage medium or said communication interface.
12. The system according to claim 11, wherein said host device is a mobile smartphone, and said data connection is established using a Bluetooth protocol.
13. (canceled)
14. The system according to claim 7, further comprising: a first earphone device comprising a first housing configured to fit into an ear canal or to substantially cover an opening of an ear canal, the first housing comprising a first side, and a second side opposite to the first side, and a rotatable first dial; and a second earphone device comprising a second housing configured to fit into an ear canal or to substantially cover an opening of an ear canal, the second housing comprising a first side, and a second side opposite to the first side, and a rotatable second dial; wherein the signal mixer is configured to: in response to detecting a rotation of said first dial, adjust the volume of the program signal with respect to the remaining signals in the mixed signal, and in response to detecting a rotation of said second dial, adjust proportions between said ANC signal, said microphone signal and said enhanced microphone signal in the mixed signal.
15. The system according to claim 14, wherein said first dial further comprises a push button functionality; and wherein the signal mixer is further configured to: in response to detecting a button push of said first dial, adjust proportions between said group of signals in the mixed signal to match a predefined setting.
16. The system according to claim 14, wherein said second dial further comprises a push button functionality; and wherein the program unit is further configured to: in response to detecting a button push of said second dial, execute a predefined function, the predefined function comprising playing or pausing of said program signal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0065] In the following detailed portion of the present disclosure, the aspects, embodiments and implementations will be explained in more detail with reference to the example embodiments shown in the drawings, in which:
[0066]
[0067]
[0068]
[0069]
[0070]
[0071]
[0072]
[0073]
DETAILED DESCRIPTION
[0074]
[0075] ANC is a technology designed to cancel out unwanted ambient noise by introducing an additional, electronically controlled sound field referred to as anti-noise. The anti-noise is electronically designed so as to have the proper pressure amplitude and phase that destructively interferes with the unwanted noise or disturbance. An error sensor (in the present case a microphone 10) is provided in the system to detect the so-called residual or error noise. The microphone signal 21 of the microphone 10 is used by the signal processor 11 to produce the ANC signal 22 so as to ultimately reduce the ambient noise that is being heard by the user 6 of an earphone 1 (by mixing the ANC signal 22 in the output mixed signal 23).
[0076] The system further comprises a signal mixer 12 configured to mix a group of signals 20 to generate a mixed signal 23, the group of signals 20 comprising the ANC signal 22 and at least one microphone signal 21. This way the ANC signal 22 can be used to ultimately reduce the ambient noise that is being heard by the user 6 of an earphone 1 to a certain extent, by mixing the ANC signal 22 in with the original microphone signal 21 (and further signals, as explained below) in the output mixed signal 23.
[0077] The system also comprises at least one speaker 13 configured to generate sound waves 26 based on the mixed signal 23; as well as a rotatable first dial 14, such as a conventional volume adjustment dial that is generally implemented in audio devices. The first dial 14 can be an infinitely rotatable dial or a limited rotation dial, as will be explained below with respect to
[0078] In an embodiment, the signal mixer 12 is configured to, in response to detecting a rotation of the first dial 14, adjust the proportions between the group of signals 20 in the mixed signal 23, and thus enable precise control over enhancement or attenuation of the ambient noise in the output sound waves 26 generated by the speaker 13 that eventually reach the ear of the user 6.
[0079]
[0080] In an embodiment, the signal processor 11 is further configured to process the microphone signal 21, before it is sent to the signal mixer 12, to match the sound characteristics of an unblocked ear canal 4, in order to create the illusion of an open ear canal 4 for the user 6, thereby helping in decreasing or eliminating the occlusion effect that is common when using in-ear type earphones.
[0081] In an embodiment, the signal processor 11 is further configured to process the at least one microphone signal 21 from the at least one microphone 10 and generate an enhanced microphone signal 21A, which is then sent to the signal mixer 12 as part of the group of signals 20. The enhanced microphone signal 21A can be generated in multiple ways, according to the desired ambient sound enhancement goal. In one example, noise suppression can be applied to the microphone signal(s) 21, optionally followed by raising the overall volume, to achieve better Signal-to-Noise Ratio (SNR). In a further example, speech enhancement can be applied using, e.g., conventional machine learning algorithms. The microphone signal 21 can also be altered based on either pre-set sonic characteristics (such as equalization), based on directional characteristics of the sound field surrounding the at least one microphone 10, or based on an estimated usage environment of the system (for example, in an airplane, office or outdoors), or based on an estimated usage mode of the system (for example, discussion, exercise, or work).
[0082] As described above, the signal mixer 12 can then mix the group of signals 20 to generate the mixed signal 23, which is sent to the speaker 13 to generate sound waves 26 based on the mixed signal 23. If the signal mixer 12 detects a rotation of the first dial 14, it can adjust the proportions between the group of signals 20 in the mixed signal 23 based on the rotation of the first dial 14, as will be explained in detail below.
[0083]
[0087] The signal mixer 12 can further be configured to iterate signal proportions in response to detecting a rotation of the first dial 14 between the first state S1, second state S2, and third state S3. This iteration can for example be linear but also logarithmic, the latter being more suited for human control. It is to be noted that the illustrated embodiment is just an example, and an embodiment where state S3 is linked with maximum ANC signal 22 and state S1 is linked with maximum enhanced microphone signal 21A is similarly feasible, as well as any further possible combinations of states and signal maximalizations.
[0088] In an embodiment, the rotation of the first dial 14 is limited between a first extreme position P1 and a second extreme position P2, wherein reaching the first extreme position P1 sets the first dial 14 in the first state S1, reaching the second extreme position P2 sets the first dial 14 in the third state S3, and a predefined intermediary position PM between the first extreme position P1 and the second extreme position P2 sets the first dial 14 in the second state S2.
[0089] In an alternative embodiment, the first dial 14 is configured to be freely rotating, wherein passing a first position in a first rotational direction sets the first dial 14 in the first state S1, passing a second position in a second rotational direction sets the first dial 14 in the third state S3, and a predefined intermediary position PM between the first position and the second position sets the first dial 14 in the second state S2.
[0090]
[0094] As shown in the figure, in an embodiment, the system can further comprise a rotatable second dial 15; and the signal mixer 12 may further be configured, in response to detecting a rotation of the second dial 15, adjust the volume of the program signal 24 with respect to the remaining signals in the mixed signal 23. This enables separate control of the program volume with respect to all other signals in the mix.
[0095]
[0096] In an embodiment, the earphone device 1 comprises at least two microphones 10A, 10B arranged in the housing 3 facing outwards from the first side 3A and configured to be oriented towards the mouth of a user 6 of the earphone device 1 to enable acoustic beamforming (see also the arrangement in.
[0097]
[0098] In further possible embodiments, either or both of the first dial 14 and the second dial 15 may be configured with a push button functionality. Accordingly, in an embodiment, the first dial 14 further may comprise a push button functionality B1; wherein the signal mixer 12 can be configured to, in response to detecting a button push B1 of the first dial 14, adjust the proportions between the group of signals 20 in the mixed signal 23 to match a predefined setting, such as maximizing the ANC signal 22 for maximal ambient noise cancellation, maximizing the hear-through signal for simulating an unblocked ear canal, or maximizing the enhanced microphone signal 21A for conducting a conversation. In an embodiment, the second dial 15 can comprise a push button functionality B2; wherein the program unit 18 can be configured to, in response to detecting a button push B2 of the second dial 15, execute a predefined function of the program signal 24, such as playing or pausing.
[0099] In a further alternative embodiment, the above described functionalities of the first dial 14 and the second dial 15 can be implemented in a single dial unit, and can be switched between a “first dial mode” and a “second dial mode” using a push button functionality B.
[0100] The earphones 1A and 1B may further comprise compressible eartips for secure location in the ear canal 4.
[0101]
[0102] According to the embodiment illustrated in
[0103] In further embodiments, the earphone device 1 may also include an internal microphone 28 arranged in the housing 3 facing outwards from the second side 3B and configured to capture sound waves from the direction of the ear canal 4 and to generate an internal microphone signal; and/or a voice accelerometer 29 configured to detect presence of the voice of the user 6 of the earphone device 1 via vibrations and generate an own voice signal. These additional signals can be used as further inputs in the signal processor 11 or the signal mixer 12.
[0104] According to the embodiment illustrated in
[0105] The various aspects and implementations have been described in conjunction with various embodiments herein. However, other variations to the disclosed embodiments can be understood and effected by those skilled in the art in practicing the claimed subject-matter, from a study of the drawings, the disclosure, and the appended claims. In the claims, the word “comprising” does not exclude other elements or steps, and the indefinite article “a” or “an” does not exclude a plurality. A single processor or other unit may fulfill the functions of several items recited in the claims. The mere fact that certain measures are recited in mutually different dependent claims does not indicate that a combination of these measured cannot be used to advantage. A computer program may be stored/distributed on a suitable medium, such as an optical storage medium or a solid-state medium supplied together with or as part of other hardware, but may also be distributed in other forms, such as via the Internet or other wired or wireless telecommunication systems.