Claims
- 1. An acoustical system for processing at least one transmitted acoustical signal that propagates through an acoustical medium, wherein one of the at least one transmitted acoustical signals is a desired transmitted acoustical signal, the acoustical system comprising:an acoustical port array comprising a plurality of port sub-arrays, wherein the desired transmitted acoustical signal is generated by an acoustical source that is located at a horizontal angle with respect to the acoustical port array; a first port sub-array that is associated with the acoustical port array, the first port sub-array comprising a first port and a second port that are spatially separated by a first horizontal distance from each other, the first port receiving a first received signal and the second port receiving a second received signal; a second port sub-array that is associated with the acoustical port array, the second port sub-array comprising a third port and a fourth port that are spatially separated by a second horizontal distance from each other, the third port receiving a third received signal and the fourth port receiving a fourth received signal; a first capsule comprising a first transducer; a second capsule comprising a second transducer; a first acoustical pathway configuration comprising a first acoustical pathway that couples the first received signal to the first transducer and a second acoustical pathway that couples the second received signal to the first transducer, wherein the first transducer generates a first electrical signal comprising a first signal component corresponding to the desired transmitted acoustical signal over a first frequency range; and a second acoustical pathway configuration comprising a third acoustical pathway that couples the third received signal to the second transducer and a fourth acoustical pathway that couples the fourth received signal to the second transducer, wherein the second transducer generates a second electrical signal comprising a second signal component corresponding to the desired transmitted acoustical signal over a second frequency range.
- 2. The acoustical system of claim 1, wherein a first port spacing between the first and second port is approximately equal to a half wavelength that corresponds to a first upper frequency limit of the first port sub-array, and wherein a second port spacing between the third and fourth port is approximately equal to a half wavelength that corresponds to a second upper frequency limit of the second port sub-array.
- 3. The acoustical system of claim 1, further comprising:a first bandpass filter that essentially passes electrical components over the first frequency range in order to obtain a first modified electrical signal from the first electrical signal; and a second bandpass filter that essentially passes electrical components over the second frequency range in order to obtain a second modified electrical signal from the second electrical signal.
- 4. The acoustical system of claim 3, further comprising:an adder that combines the first modified electrical signal and the second modified electrical signal in order to provide an output signal, wherein the output signal enhances the desired transmitted acoustical signal over an output frequency range that is essentially equal to the first frequency range plus the second frequency range.
- 5. The acoustical system of claim 4, further comprising:a post-processing unit that affects a first frequency component at approximately a quarter wavelength that corresponds to a first upper frequency limit of the first port sub-array and a second frequency component at approximately a quarter wavelength that corresponds to a second upper frequency limit of the second port sub-array.
- 6. The acoustical system of claim 5, wherein the post-processing unit reduces a first frequency component that is equal to approximately a quarter wavelength that corresponds to a first upper frequency limit of the first port sub-array and reduces a second frequency component that is equal to approximately a quarter wavelength that corresponds to a second upper frequency limit of the second port sub-array.
- 7. The acoustical system of claim 6, wherein the post-processing unit comprises a post-equalization filter that provides a flat response with respect to frequency over an operational region of the acoustical system.
- 8. The acoustical system of claim 3, wherein the first bandpass filter reduces a first frequency component that is equal to approximately a quarter wavelength that corresponds to a first upper frequency limit of the first port sub-array, and wherein the second bandpass filter reduces a second frequency component that is equal to approximately a quarter wavelength that corresponds to a second upper frequency limit of the second port sub-array.
- 9. The acoustical system of claim 1, wherein the desired transmitted acoustical signal is generated by the acoustical source that is located at a vertical angle with respect to the acoustical port array, wherein the first port sub-array further comprises a fifth port that is spatially separated from the first port by a vertical distance, the fifth port receiving a fifth received signal, wherein the second port sub-array further comprises a sixth port that is spatially separated from the third port by the vertical distance, the sixth port receiving a sixth received signal, wherein the first acoustical pathway configuration further comprises a fifth acoustical pathway that couples the fifth received acoustical signal to the first transducer, and wherein the second acoustical pathway configuration further comprises a sixth acoustical pathway that couples the sixth received acoustical signal to the second transducer.
- 10. The acoustical system of claim 9, wherein the first port sub-array further comprises a seventh port that is spatially separated from the first port by a third distance, the third distance being perpendicular to the vertical distance and the horizontal distance, the seventh port receiving a seventh received signal, wherein the second port sub-array further comprises a eighth port that is spatially separated from the third port by the third distance, the eighth port receiving a eighth received signal, wherein the first acoustical pathway configuration further comprises a seventh acoustical pathway that couples the seventh received acoustical signal to the first transducer, the eight port receiving an eighth received signal, and wherein the second acoustical pathway configuration further comprises a eighth acoustical pathway that couples the eighth received acoustical signal to the second transducer.
- 11. The acoustical system of claim 1, further comprising:a capsule mounting that houses the first capsule and the second capsule and that couples the first and second acoustical pathway configurations to the first and second capsules.
- 12. The acoustical system of claim 11, wherein the capsule mounting comprises a first set of entry points for a first plurality of acoustical pathways and a second set of entry points for a second plurality of acoustical pathways, wherein the first set of entry points is located on one side of the first capsule, and wherein the second set of entry points is located on the same side of the second capsule.
- 13. The acoustical system of claim 11, wherein the capsule mounting comprises a first set of entry points for a first plurality of acoustical pathways and a second set of entry points for a second plurality of acoustical pathways, wherein the first set of entry points is located on both sides of the first capsule, and wherein the second set of entry points is located on both sides of the second capsule, the acoustical system further comprising:an acoustical barrier that acoustically separates a first proximity of the first capsule and a second proximity of the second capsule.
- 14. The acoustical system of claim 1, wherein the acoustical medium is selected from the group consisting of an air medium and a water medium.
- 15. The acoustical system of claim 1, wherein each of the acoustical pathways is selected from the group consisting of a tube, a pipe, a capillary, a waveguide, and a molded passage within an acoustical housing.
- 16. The acoustical system of claim 1, wherein the second frequency range is approximately one octave separated from the first frequency range.
- 17. The acoustical system of claim 1, wherein the first frequency range and the second frequency range are configured in order to enhance a measure of speech recognition accuracy.
- 18. The acoustical system of claim 17, wherein the first and second electrical signals are inputted to a speech recognition unit.
- 19. The acoustical system of claim 17, wherein the first and second electrical signals are inputted to a communications device.
- 20. The acoustical system if claim 19, wherein the communications device is selected from the group consisting of a telephone instrument, a computer, and a speech-enabled device.
- 21. The acoustical system of claim 1, wherein the first frequency range and the second frequency range are configured in order to reduce a mean square error of an output signal in relation to the desired transmitted acoustical signal.
- 22. The acoustical system of claim 1, further comprising:a first insert that resides within the first acoustical pathway in order to reduce a first frequency component that is equal to approximately a quarter wavelength that corresponds to a first upper frequency limit of the first port sub-array; and a second insert that resides within the third acoustical pathway in order to reduce a second frequency component that is equal to approximately a quarter wavelength that corresponds to a second upper frequency limit of the second port sub-array.
- 23. The acoustical system of claim 1, wherein the first port sub-array and the second port sub-array reside in a mirror casing, wherein the mirror casing is tilted so that a perpendicular to a plane of the mirror casing approximately intersects at a mouth of a talker, wherein a mirror's plane is tilted at a different angle from that of the mirror casing, and wherein a perpendicular to the mirror's plane approximately bisects a viewing angle between the talker and a rear window.
- 24. The acoustical system of claim 1, wherein the first port sub-array and the second port sub-array reside in a mirror casing, and wherein the acoustical pathways differ in length so that a main beam is tilted.
- 25. The acoustical system of claim 1, further comprising:a third port sub-array that is associated with the acoustical port array, the third port sub-array comprising a fifth port and a sixth port that are spatially separated by a third horizontal distance from each other, the fifth port receiving a fifth received signal and the sixth port receiving a sixth received signal; a third capsule comprising a third transducer; a third acoustical pathway configuration comprising a fifth acoustical pathway that couples the fifth received signal to the third transducer and a sixth acoustical pathway that couples the sixth received signal to the third transducer, wherein the third transducer generates a third electrical signal comprising a third signal component corresponding to the desired transmitted acoustical signal over a third frequency range.
- 26. The acoustical system of claim 1, further comprising:a first acoustical filter associated with the first acoustical pathway, the first acoustical pathway comprising at least one branch.
- 27. The acoustical system of claim 26, wherein a first branch of the at least one branch terminates in an acoustical impedance, and wherein the acoustical impedance is selected from the group consisting of at least one opening to air, at least one pipe connected to a plenum, and a combination of the at least one opening to air and the at least one pipe connected to the plenum.
- 28. The acoustical system of claim 26, wherein a plurality of branches are coupled to a directional microphone capsule and are affected by different impedances on each branch, wherein the plurality of branches affect ducted acoustic waves so that characteristics of a combined port and microphone pair is associated with a higher order pickup pattern.
- 29. The acoustical system of claim 28, wherein the higher order pickup pattern is selected from the group consisting of a zeroth order pickup pattern, a first order pickup pattern, and a second order pickup pattern, wherein the zeroth order pickup pattern corresponds to an omnidirectional pattern, the first order pickup pattern corresponds to a cardioid, supercardioid, or hypercardioid pattern, and the second order pickup pattern corresponds to a finite difference of first order inputs.
- 30. The acoustical system of claim 1, wherein a plurality of branches are coupled to a directional microphone capsule and wherein the plurality of branches affect ducted acoustic waves so that characteristics of a combined port and microphone pair is associated with a higher order pickup pattern.
- 31. The acoustical system of claim 30, wherein each of the plurality of branches is affected by an associated impedance.
- 32. The acoustical system of claim 1, wherein a first difference between a first length of the first acoustical pathway and a second length of the second acoustical pathway, and a second difference between a third length of the third acoustical pathway and a fourth length of the fourth acoustical pathway affects a main beam of the acoustical port array to vary angularly from a zero-degree azimuth.
- 33. A method for processing at least one transmitted acoustical signal that propagates through an acoustical medium, wherein one of the at least one transmitted acoustical signal is a desired transmitted acoustical signal, the method comprising:(a) receiving a first received signal by a first port of a first port sub-array; (b) receiving a second received signal by a second port of the first port sub-array, wherein the first port and the second port are spatially separated by a first horizontal distance from each other; (c) receiving a third received signal by a third port of a second port sub-array; (d) receiving a fourth received signal by a fourth port of the second port sub-array, wherein the third port and the fourth port are spatially separated by a second horizontal distance from each other; (e) coupling, to the first transducer, the first received signal through a first acoustical pathway and the second received signal through a second acoustical pathway; (f) coupling, to the second transducer, the third received signal through a third acoustical pathway and the fourth received signal through a fourth acoustical pathway; (g) generating, by the first transducer, a first electrical signal from the first received signal and the second received signal, wherein the first electrical signal comprises a first signal component corresponding to the desired transmitted acoustical signal over a first frequency range; and (h) generating, by the second transducer, a second electrical signal from the third received signal and the fourth received signal, wherein the second electrical signal comprises a second signal component corresponding to the desired transmitted acoustical signal over a second frequency range.
- 34. The method of claim 33, the method further comprising:(i) passing electrical components through a bandpass filter over the first frequency range in order to obtain a first modified electrical signal from the first electrical signal; and (j) passing electrical components through a second bandpass filter over the second frequency range in order to obtain a second modified electrical signal from the second electrical signal.
- 35. The method of claim 34, the method further comprising:(k) combining the first modified electrical signal and the second modified electrical signal in order to provide an output signal, wherein the output signal enhances the desired transmitted acoustical signal over an output frequency range that is essentially equal to the first frequency range plus the second frequency range.
- 36. The method of claim 35, the method further comprising:(l) reducing a first frequency component at approximately a quarter wavelength that corresponds to a first upper frequency limit of the first port sub-array; and (m) reducing a second frequency component at approximately a quarter wavelength that corresponds to a second upper frequency limit of the second port sub-array.
- 37. A computer-readable medium having computer-executable instructions for performing the method of claim 33.
- 38. A computer-readable medium having computer-executable instructions for performing the method of claim 34.
- 39. A computer-readable medium having computer-executable instructions for performing the method of claim 35.
- 40. A computer-readable medium having computer-executable instructions for performing the method of claim 36.
- 41. An acoustical system for processing at least one transmitted acoustical signal that propagates through an acoustical medium, wherein one of the at least one transmitted acoustical signals is a desired transmitted acoustical signal, the acoustical system comprising:an acoustical port array comprising a plurality of port sub-arrays, wherein the desired transmitted acoustical signal is generated by an acoustical source that is located at a horizontal angle and at a vertical angle with respect to the acoustical port array; a first port sub-array that is associated with the acoustical port array, the first port sub-array comprising a first port and a second port that are spatially separated by a first horizontal distance from each other and comprising a fifth port that is spatially separated from the first port by a vertical distance, the first port receiving a first received signal and the second port receiving a second received signal, wherein a first port spacing between the first and second port is approximately equal to a half wavelength that corresponds to a first upper frequency limit of the first port sub-array, the fifth port receiving a fifth received signal; a second port sub-array that is associated with the acoustical port array, the second port sub-array comprising a third port and a fourth port that are spatially separated by a second horizontal distance from each other and comprising a sixth port that is spatially separated from the third port by the vertical distance, the third port receiving a third received signal and the fourth port receiving a fourth received signal, wherein a second port spacing between the third and fourth port is approximately equal to a half wavelength that corresponds to a second upper frequency limit of the second port sub-array, the sixth port receiving a sixth received signal; a first capsule comprising a first transducer; a second capsule comprising a second transducer; a first acoustical pathway configuration comprising a first acoustical pathway that couples the first received signal to the first transducer, a second acoustical pathway that couples the second received signal to the first transducer, and a fifth acoustical pathway that couples the fifth received acoustical signal to the first transducer, wherein the first transducer generates a first electrical signal comprises a first signal component corresponding to the desired transmitted acoustical signal over a first frequency range; a second acoustical pathway configuration comprising a third acoustical pathway that couples the third received signal to the second transducer, a fourth acoustical pathway that couples the fourth received signal to the second transducer, and a sixth acoustical pathway that couples the sixth received acoustical signal to the second transducer, wherein the second transducer generates a second electrical signal comprises a second signal component corresponding to the desired transmitted acoustical signal over a second frequency range; a first bandpass filter that essentially passes electrical components over the first frequency range in order to obtain a first modified electrical signal from the first electrical signal; a second bandpass filter that essentially passes electrical components over the second frequency range in order to obtain a second modified electrical signal from the second electrical signal; an adder that combines the first modified electrical signal and the second modified electrical signal in order to provide an output signal, wherein the output signal enhances the desired transmitted acoustical signal over an output frequency range that is essentially equal to the first frequency range plus the second frequency range; and a post-processing unit that provides a desireable frequency response for at least a portion of a complete operational frequency range of the acoustical system and that reduces a first frequency component at approximately a quarter wavelength corresponding to a first upper frequency limit of the first port sub-array and a second frequency component at approximately a quarter wavelength corresponding to a second upper frequency limit of the second port sub-array.
Parent Case Info
This application claims priority to provisional U.S. Patent Application No. 60/402,185, filed Aug. 9, 2002.
US Referenced Citations (13)
Foreign Referenced Citations (2)
Number |
Date |
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2282768 |
Mar 1976 |
FR |
2552291 |
Mar 1985 |
FR |
Non-Patent Literature Citations (1)
Entry |
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Provisional Applications (1)
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Number |
Date |
Country |
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60/402185 |
Aug 2002 |
US |