IP Library › Granted Patent US 9,918,162
Granted Patent B2
US 9,918,162 · App. 14/992,906 · Granted Mar 13, 2018

Processing device and method for improving S/N ratio

Inventors: Kohei Asada (Kanagawa, JP); Shinpei Tsuchiya (Tokyo, JP); Daizen Kobayashi (Tokyo, JP); Koji Nageno (Tokyo, JP)
Assignee: SONY CORPORATION
H04R1/406G10L21/0232G10L25/84H04R1/10H04R1/1016H04R1/1075H04R3/005H04R3/04H04R11/02H04R25/407H04R2201/003H04R2225/43H04R2410/03H04R2430/23
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Quick Facts
Patent No.
US 9,918,162
App. No.
14/992,906
Granted
Mar 13, 2018
Kind
B2
Abstract

The present technique relates to an earhole-wearable sound collection device, a signal processing device, and a method for realizing sound collection at a high S/N ratio. In the earhole-wearable sound collection device, a microphone that collects emitted speech voice is provided in a space that is substantially sealed off from outside and connects to an ear canal of the wearer (the speaker). With the microphone being located in the space sealed off from outside, emitted speech voice that propagates through the ear canal of the wearer is collected. In a sound collection signal obtained through the ear canal, the emitted speech voice component is dominant over the noise component particularly at low frequencies. Therefore, the S/N ratio of an emitted speech voice collection signal is improved by an equalizing process for reducing muffled sound that is generated when sound is collected through the ear canal on the sound collection signal.

Claims (17)

1. A signal processing device, comprising:

circuitry configured to:

receive a first sound collection signal from a first microphone of an earhole-wearable sound collection device,

wherein the first microphone is located in an internal space of an attachment unit of the earhole-wearable sound collection device;

generate a second sound collection signal from a second microphone, wherein the second microphone is located outside the attachment unit of the earhole-wearable sound collection device; and

correct first frequency characteristics of the first sound collection signal to match second frequency characteristics of the second sound collection signal, wherein the first frequency characteristics is corrected by equalization of a high-frequency emphasizing type.

2. The signal processing device according to claim 1 , wherein the circuitry is further configured to filter the first sound collection signal from the first microphone to extract a low-frequency component.

3. The signal processing device according to claim 1 , wherein the circuitry is further configured to equalize by digital signal processing.

4. The signal processing device according to claim 1 , wherein the first microphone is a micro-electro mechanical systems (MEMS) microphone.

5. The signal processing device according to claim 1 , wherein the second microphone is a micro-electro mechanical systems (MEMS) microphone.

6. The signal processing device according to claim 1 , further comprising a filter configured to correct the first frequency characteristics of the first sound collection signal.

7. A signal processing method, comprising:

in a signal processing device connected to an earhole-wearable sound collection device:

receiving a first sound collection signal from a first microphone of the earhole-wearable sound collection device,

wherein the first microphone is located in an internal space of an attachment unit of the earhole-wearable sound collection device;

generating a second sound collection signal from a second microphone, wherein the second microphone is located outside the attachment unit of the earhole-wearable sound collection device; and

correcting first frequency characteristics of the first sound collection signal to match second frequency characteristics of the second sound collection signal, wherein the first frequency characteristics is corrected by equalization of a high-frequency emphasizing type.

Priority Claims (1)
JP 2011-268782 · Dec 8, 2011 · national
Continuity (2)
Continuation 14360948
Related Publication 20160127825A1 · May 5, 2016