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US20190079724A1 - Intercom-style communication using multiple computing devices - Google Patents

Intercom-style communication using multiple computing devices
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Publication number
US20190079724A1
US20190079724A1US16/114,494US201816114494AUS2019079724A1US 20190079724 A1US20190079724 A1US 20190079724A1US 201816114494 AUS201816114494 AUS 201816114494AUS 2019079724 A1US2019079724 A1US 2019079724A1
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user
message
users
voice input
input
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US16/114,494
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Sandro Feuz
Sebastian Millius
Jan Althaus
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Google LLC
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Google LLC
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Assigned to GOOGLE LLCreassignmentGOOGLE LLCCHANGE OF NAME (SEE DOCUMENT FOR DETAILS).Assignors: GOOGLE INC.
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Abstract

Techniques are described related to improved intercom-style communication using a plurality of computing devices distributed about an environment. In various implementations, voice input may be received, e.g., at a microphone of a first computing device of multiple computing devices, from a first user. The voice input may be analyzed and, based on the analyzing, it may be determined that the first user intends to convey a message to a second user. A location of the second user relative to the multiple computing devices may be determined, so that, based on the location of the second user, a second computing device may be selected from the multiple computing devices that is capable of providing audio or visual output that is perceptible to the second user. The second computing device may then be operated to provide audio or visual output that conveys the message to the second user.

Description

Claims (20)

What is claimed is:
1. A method comprising:
accessing a trained machine learning model, wherein the machine learning model is trained, using a corpus of labeled voice inputs, to predict whether voice inputs are indicative of background conversation that should be ignored, or are indicative of a user intent to convey a message to one or more other users;
receiving, at a microphone of a first computing device of a plurality of computing devices, from a first user, voice input;
analyzing the voice input, wherein the analyzing includes applying data indicative of an audio recording of the voice input as input across the trained machine learning model to generate output, wherein the output indicates that the first user intends to convey a message to the one or more other users;
determining, based on the analyzing, that the first user intends to convey the message to the one or more other users; and
causing one or more other computing devices of the plurality of computing devices to provide audio or visual output that conveys the message to the one or more other users.
2. The method ofclaim 1, further comprising:
receiving, at the microphone of the first computing device, an additional voice input;
analyzing the additional voice input, wherein the analyzing includes applying data indicative of an audio recording of the voice input as input across the trained machine learning model to generate additional output, wherein the additional output indicates that the additional voice input is indicative of background noise that should be ignored;
ignoring the additional voice input in response to the additional output indicating that the additional voice input is indicative of background noise that should be ignored.
3. The method ofclaim 1, wherein the machine learning model is trained using a corpus of labeled voice inputs, and wherein labels applied to the voice inputs include:
a first label indicative of a user intent to convey a message to one or more other users; and
a second label indicative of background conversation between multiple users.
4. The method ofclaim 3, wherein the labels applied to the voice inputs further include a third label indicative of a user intent to engage in a human-to-computer dialog with an automated assistant.
5. The method ofclaim 1, further comprising:
determining a location of a second user of the one or more users relative to the plurality of computing devices; and
selecting, from the plurality of computing devices, based on the location of the second user, a second computing device that is capable of providing audio or visual output that is perceptible to the second user;
wherein the causing includes causing the second computing device provide the audio or visual output that conveys the message to the second user.
6. The method ofclaim 1, wherein the causing comprising broadcasting the message to the one or more other users using all of the plurality of computing devices.
7. The method ofclaim 1, wherein the analyzing includes performing speech-to-text processing on an audio recording of the voice input to generate, as the data indicative of the audio recording, textual input, wherein the textual input is applied as input across the trained machine learning.
8. A system comprising one or more processors and memory operably coupled with the one or more processors, wherein the memory stores instructions that, in response to execution of the instructions by one or more processors, cause the one or more processors to perform the following operations:
accessing a trained machine learning model, wherein the machine learning model is trained, using a corpus of labeled voice inputs, to predict whether voice inputs are indicative of background conversation that should be ignored, or are indicative of a user intent to convey a message to one or more other users;
receiving, at a microphone of a first computing device of a plurality of computing devices, from a first user, voice input;
analyzing the voice input, wherein the analyzing includes applying data indicative of an audio recording of the voice input as input across the trained machine learning model to generate output, wherein the output indicates that the first user intends to convey a message to the one or more other users;
determining, based on the analyzing, that the first user intends to convey the message to the one or more other users; and
causing one or more other computing devices of the plurality of computing devices to provide audio or visual output that conveys the message to the one or more other users.
9. The system ofclaim 8, further comprising:
receiving, at the microphone of the first computing device, an additional voice input;
analyzing the additional voice input, wherein the analyzing includes applying data indicative of an audio recording of the voice input as input across the trained machine learning model to generate additional output, wherein the additional output indicates that the additional voice input is indicative of background noise that should be ignored;
ignoring the additional voice input in response to the additional output indicating that the additional voice input is indicative of background noise that should be ignored.
10. The system ofclaim 8, wherein the machine learning model is trained using a corpus of labeled voice inputs, and wherein labels applied to the voice inputs include:
a first label indicative of a user intent to convey a message to one or more other users; and
a second label indicative of background conversation between multiple users.
11. The system ofclaim 10, wherein the labels applied to the voice inputs further include a third label indicative of a user intent to engage in a human-to-computer dialog with an automated assistant.
12. The system ofclaim 8, further comprising:
determining a location of a second user of the one or more users relative to the plurality of computing devices; and
selecting, from the plurality of computing devices, based on the location of the second user, a second computing device that is capable of providing audio or visual output that is perceptible to the second user;
wherein the causing includes causing the second computing device provide the audio or visual output that conveys the message to the second user.
13. The system ofclaim 8, wherein the causing comprising broadcasting the message to the one or more other users using all of the plurality of computing devices.
14. The system ofclaim 8, wherein the analyzing includes performing speech-to-text processing on an audio recording of the voice input to generate, as the data indicative of the audio recording, textual input, wherein the textual input is applied as input across the trained machine learning.
15. At least one non-transitory computer-readable medium comprising instructions that, in response to execution of the instructions by one or more processors, cause the one or more processors to perform the following operations:
accessing a trained machine learning model, wherein the machine learning model is trained, using a corpus of labeled voice inputs, to predict whether voice inputs are indicative of background conversation that should be ignored, or are indicative of a user intent to convey a message to one or more other users;
receiving, at a microphone of a first computing device of a plurality of computing devices, from a first user, voice input;
analyzing the voice input, wherein the analyzing includes applying data indicative of an audio recording of the voice input as input across the trained machine learning model to generate output, wherein the output indicates that the first user intends to convey a message to the one or more other users;
determining, based on the analyzing, that the first user intends to convey the message to the one or more other users; and
causing one or more other computing devices of the plurality of computing devices to provide audio or visual output that conveys the message to the one or more other users.
16. The at least one non-transitory computer-readable medium ofclaim 15, further comprising instructions for:
receiving, at the microphone of the first computing device, an additional voice input;
analyzing the additional voice input, wherein the analyzing includes applying data indicative of an audio recording of the voice input as input across the trained machine learning model to generate additional output, wherein the additional output indicates that the additional voice input is indicative of background noise that should be ignored;
ignoring the additional voice input in response to the additional output indicating that the additional voice input is indicative of background noise that should be ignored.
17. The at least one non-transitory computer-readable medium ofclaim 15, wherein the machine learning model is trained using a corpus of labeled voice inputs, and wherein labels applied to the voice inputs include:
a first label indicative of a user intent to convey a message to one or more other users; and
a second label indicative of background conversation between multiple users.
18. The at least one non-transitory computer-readable medium ofclaim 17, wherein the labels applied to the voice inputs further include a third label indicative of a user intent to engage in a human-to-computer dialog with an automated assistant.
19. The at least one non-transitory computer-readable medium ofclaim 15, further comprising:
determining a location of a second user of the one or more users relative to the plurality of computing devices; and
selecting, from the plurality of computing devices, based on the location of the second user, a second computing device that is capable of providing audio or visual output that is perceptible to the second user;
wherein the causing includes causing the second computing device provide the audio or visual output that conveys the message to the second user.
20. The at least one non-transitory computer-readable medium ofclaim 15, wherein the causing comprising broadcasting the message to the one or more other users using all of the plurality of computing devices.
US16/114,4942017-09-122018-08-28Intercom-style communication using multiple computing devicesAbandonedUS20190079724A1 (en)

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US15/702,164US10083006B1 (en)2017-09-122017-09-12Intercom-style communication using multiple computing devices
US16/114,494US20190079724A1 (en)2017-09-122018-08-28Intercom-style communication using multiple computing devices

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