Patents by Inventor Gleb Skobeltsyn
Gleb Skobeltsyn has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).
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Publication number: 20210280180Abstract: Implementations described herein relate to providing suggestions, via a display modality, for completing a spoken utterance for an automated assistant, in order to reduce a frequency and/or a length of time that the user will participate in a current and/or subsequent dialog session with the automated assistant. A user request can be compiled from content of an ongoing spoken utterance and content of any selected suggestion elements. When a currently compiled portion of the user request (from content of a selected suggestion(s) and an incomplete spoken utterance) is capable of being performed via the automated assistant, any actions corresponding to the currently compiled portion of the user request can be performed via the automated assistant. Furthermore, any further content resulting from performance of the actions, along with any discernible context, can be used for providing further suggestions.Type: ApplicationFiled: February 7, 2019Publication date: September 9, 2021Inventors: Gleb Skobeltsyn, Olga Kapralova, Konstantin Shagin, Vladimir Vuskovic, Yufei Zhao, Bradley Nelson, Alessio Macrì, Abraham Lee
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Patent number: 11114100Abstract: Methods, apparatus, and computer readable media are described related to automated assistants that proactively incorporate, into human-to-computer dialog sessions, unsolicited content of potential interest to a user. In various implementations, based on content of an existing human-to-computer dialog session between a user and an automated assistant, an entity mentioned by the user or automated assistant may be identified. Fact(s)s related to the entity or to another entity that is related to the entity may be identified based on entity data contained in database(s). For each of the fact(s), a corresponding measure of potential interest to the user may be determined. Unsolicited natural language content may then be generated that includes one or more of the facts selected based on the corresponding measure(s) of potential interest. The automated assistant may then incorporate the unsolicited content into the existing human-to-computer dialog session or a subsequent human-to-computer dialog session.Type: GrantFiled: August 23, 2019Date of Patent: September 7, 2021Assignee: GOOGLE LLCInventors: Vladimir Vuskovic, Stephan Wenger, Zineb Ait Bahajji, Martin Baeuml, Alexandru Dovlecel, Gleb Skobeltsyn
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Patent number: 11093710Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for natural language processing One of the methods includes receiving a first voice input from a user device, generating a first recognition output, receiving a user selection of one or more terms in the first recognition output- receiving a second voice input spelling a correction of the user selection, determining a corrected recognition output for the selected portion; and providing a second recognition output that merges the first recognition output and the corrected recognition output.Type: GrantFiled: January 24, 2020Date of Patent: August 17, 2021Assignee: Google LLCInventors: Evgeny A. Cherepanov, Gleb Skobeltsyn, Jakob Nicolaus Foerster, Petar Aleksic, Assaf Avner Hurwitz Michaely
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Patent number: 11087748Abstract: The systems and methods of the present disclosure generally relate to a data processing system that can identify and surface alternative requests when presented with ambiguous, unclear, or other requests to which a data processing system may not be able to respond. The data processing system can improve the efficiency of network transmissions to reduce network bandwidth usage and processor utilization by selecting alternative requests that are responsive to the intent of the original request.Type: GrantFiled: May 11, 2018Date of Patent: August 10, 2021Assignee: GOOGLE LLCInventors: Gleb Skobeltsyn, Mihaly Kozsevnyikov, Vladimir Vuskovic
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Publication number: 20210012765Abstract: Implementations set forth herein relate to speech recognition techniques for handling variations in speech among users (e.g. due to different accents) and processing features of user context in order to expand a number of speech recognition hypotheses when interpreting a spoken utterance from a user. In order to adapt to an accent of the user, terms common to multiple speech recognition hypotheses can be filtered out in order to identify inconsistent terms apparent in a group of hypotheses. Mappings between inconsistent terms can be stored for subsequent users as term correspondence data. In this way, supplemental speech recognition hypotheses can be generated and subject to probability-based scoring for identifying a speech recognition hypothesis that most correlates to a spoken utterance provided by a user. In some implementations, prior to scoring, hypotheses can be supplemented based on contextual data, such as on-screen content and/or application capabilities.Type: ApplicationFiled: July 17, 2019Publication date: January 14, 2021Inventors: Ágoston Weisz, Alexandru Dovlecel, Gleb Skobeltsyn, Evgeny Cherepanov, Justas Klimavicius, Yihui Ma, Lukas Lopatovsky
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Publication number: 20200243070Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for speech recognition. One of the methods includes receiving first audio data corresponding to an utterance; obtaining a first transcription of the first audio data; receiving data indicating (i) a selection of one or more terms of the first transcription and (ii) one or more of replacement terms; determining that one or more of the replacement terms are classified as a correction of one or more of the selected terms; in response to determining that the one or more of the replacement terms are classified as a correction of the one or more of the selected terms, obtaining a first portion of the first audio data that corresponds to one or more terms of the first transcription; and using the first portion of the first audio data that is associated with the one or more terms of the first transcription to train an acoustic model for recognizing the one or more of the replacement terms.Type: ApplicationFiled: April 1, 2020Publication date: July 30, 2020Applicant: Google LLCInventors: Olga Kapralova, Evgeny A. Cherepanov, Dmitry Osmakov, Martin Baeuml, Gleb Skobeltsyn
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Publication number: 20200227031Abstract: The systems and methods of the present disclosure generally relate to a data processing system that can identify and surface alternative requests when presented with ambiguous, unclear, or other requests to which a data processing system may not be able to respond. The data processing system can improve the efficiency of network transmissions to reduce network bandwidth usage and processor utilization by selecting alternative requests that are responsive to the intent of the original request.Type: ApplicationFiled: March 25, 2020Publication date: July 16, 2020Inventors: Gleb Skobeltsyn, Mihaly Kozsevnyikov, Vladimir Vuskovic
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Publication number: 20200168212Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for natural language processing One of the methods includes receiving a first voice input from a user device, generating a first recognition output, receiving a user selection of one or more terms in the first recognition output- receiving a second voice input spelling a correction of the user selection, determining a corrected recognition output for the selected portion; and providing a second recognition output that merges the first recognition output and the corrected recognition output.Type: ApplicationFiled: January 24, 2020Publication date: May 28, 2020Applicant: Google LLCInventors: Evgeny A Cherepanov, Gleb Skobeltsyn, Jakob Nicolaus Foerster, Petar Aleksic, Assaf Avner Hurwitz Michaely
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Patent number: 10643603Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for speech recognition. One of the methods includes receiving first audio data corresponding to an utterance; obtaining a first transcription of the first audio data; receiving data indicating (i) a selection of one or more terms of the first transcription and (ii) one or more of replacement terms; determining that one or more of the replacement terms are classified as a correction of one or more of the selected terms; in response to determining that the one or more of the replacement terms are classified as a correction of the one or more of the selected terms, obtaining a first portion of the first audio data that corresponds to one or more terms of the first transcription; and using the first portion of the first audio data that is associated with the one or more terms of the first transcription to train an acoustic model for recognizing the one or more of the replacement terms.Type: GrantFiled: June 29, 2018Date of Patent: May 5, 2020Assignee: Google LLCInventors: Olga Kapralova, Evgeny A. Cherepanov, Dmitry Osmakov, Martin Baeuml, Gleb Skobeltsyn
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Patent number: 10579730Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for natural language processing. One of the methods includes receiving a first voice input from a user device; generating a first recognition output; receiving a user selection of one or more terms in the first recognition output; receiving a second voice input spelling a correction of the user selection; determining a corrected recognition output for the selected portion; and providing a second recognition output that merges the first recognition output and the corrected recognition output.Type: GrantFiled: January 25, 2019Date of Patent: March 3, 2020Assignee: Google LLCInventors: Evgeny A. Cherepanov, Gleb Skobeltsyn, Jakob Foerster, Petar Aleksic, Assaf Hurwitz Michaely
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Publication number: 20190378511Abstract: Methods, apparatus, and computer readable media are described related to automated assistants that proactively incorporate, into human-to-computer dialog sessions, unsolicited content of potential interest to a user. In various implementations, based on content of an existing human-to-computer dialog session between a user and an automated assistant, an entity mentioned by the user or automated assistant may be identified. Fact(s)s related to the entity or to another entity that is related to the entity may be identified based on entity data contained in database(s). For each of the fact(s), a corresponding measure of potential interest to the user may be determined. Unsolicited natural language content may then be generated that includes one or more of the facts selected based on the corresponding measure(s) of potential interest. The automated assistant may then incorporate the unsolicited content into the existing human-to-computer dialog session or a subsequent human-to-computer dialog session.Type: ApplicationFiled: August 23, 2019Publication date: December 12, 2019Inventors: Vladimir Vuskovic, Stephan Wenger, Zineb Ait Bahajji, Martin Baeuml, Alexandru Dovlecel, Gleb Skobeltsyn
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Patent number: 10482882Abstract: Methods, apparatus, and computer readable media are described related to automated assistants that proactively incorporate, into human-to-computer dialog sessions, unsolicited content of potential interest to a user. In various implementations, based on content of an existing human-to-computer dialog session between a user and an automated assistant, an entity mentioned by the user or automated assistant may be identified. Fact(s)s related to the entity or to another entity that is related to the entity may be identified based on entity data contained in database(s). For each of the fact(s), a corresponding measure of potential interest to the user may be determined. Unsolicited natural language content may then be generated that includes one or more of the facts selected based on the corresponding measure(s) of potential interest. The automated assistant may then incorporate the unsolicited content into the existing human-to-computer dialog session or a subsequent human-to-computer dialog session.Type: GrantFiled: November 29, 2017Date of Patent: November 19, 2019Assignee: Google LLCInventors: Vladimir Vuskovic, Stephan Wenger, Zineb Ait Bahajji, Martin Baeuml, Alexandru Dovlecel, Gleb Skobeltsyn
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Publication number: 20190348028Abstract: The systems and methods of the present disclosure generally relate to a data processing system that can identify and surface alternative requests when presented with ambiguous, unclear, or other requests to which a data processing system may not be able to respond. The data processing system can improve the efficiency of network transmissions to reduce network bandwidth usage and processor utilization by selecting alternative requests that are responsive to the intent of the original request.Type: ApplicationFiled: May 11, 2018Publication date: November 14, 2019Inventors: Gleb Skobeltsyn, Mihaly Kozsevnyikov, Vladimir Vuskovic
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Patent number: 10229109Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for natural language processing. One of the methods includes receiving a first voice input from a user device; generating a first recognition output; receiving a user selection of one or more terms in the first recognition output; receiving a second voice input spelling a correction of the user selection; determining a corrected recognition output for the selected portion; and providing a second recognition output that merges the first recognition output and the corrected recognition output.Type: GrantFiled: September 11, 2017Date of Patent: March 12, 2019Assignee: Google LLCInventors: Evgeny A. Cherepanov, Gleb Skobeltsyn, Jakob Nicolaus Foerster, Petar Aleksic, Assaf Avner Hurwitz Michaely
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Patent number: 10127909Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for natural language processing. One of the methods includes receiving a first voice query; generating a first recognition output; receiving a second voice query; determining from a recognition of the second voice query that the second voice query triggers a correction request; using the first recognition output and the second recognition to determine a plurality of candidate corrections; scoring each candidate correction; and generating a corrected recognition output for a particular candidate correction having a score that satisfies a threshold value.Type: GrantFiled: January 22, 2018Date of Patent: November 13, 2018Assignee: Google LLCInventors: Gleb Skobeltsyn, Evgeny A. Cherepanov, Behshad Behzadi
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Publication number: 20180322880Abstract: Methods, apparatus, and computer readable media are described related to automated assistants that proactively incorporate, into human-to-computer dialog sessions, unsolicited content of potential interest to a user. In various implementations, based on content of an existing human-to-computer dialog session between a user and an automated assistant, an entity mentioned by the user or automated assistant may be identified. Fact(s)s related to the entity or to another entity that is related to the entity may be identified based on entity data contained in database(s). For each of the fact(s), a corresponding measure of potential interest to the user may be determined. Unsolicited natural language content may then be generated that includes one or more of the facts selected based on the corresponding measure(s) of potential interest. The automated assistant may then incorporate the unsolicited content into the existing human-to-computer dialog session or a subsequent human-to-computer dialog session.Type: ApplicationFiled: November 29, 2017Publication date: November 8, 2018Inventors: Vladimir Vuskovic, Stephan Wenger, Zineb Ait Bahajji, Martin Baeuml, Alexandru Dovlecel, Gleb Skobeltsyn
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Publication number: 20180308471Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for speech recognition. One of the methods includes receiving first audio data corresponding to an utterance; obtaining a first transcription of the first audio data; receiving data indicating (i) a selection of one or more terms of the first transcription and (ii) one or more of replacement terms; determining that one or more of the replacement terms are classified as a correction of one or more of the selected terms; in response to determining that the one or more of the replacement terms are classified as a correction of the one or more of the selected terms, obtaining a first portion of the first audio data that corresponds to one or more terms of the first transcription; and using the first portion of the first audio data that is associated with the one or more terms of the first transcription to train an acoustic model for recognizing the one or more of the replacement terms.Type: ApplicationFiled: June 29, 2018Publication date: October 25, 2018Applicant: Google LLCInventors: Olga Kapralova, Evgeny A. Cherepanov, Dmitry Osmakov, Martin Baeuml, Gleb Skobeltsyn
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Patent number: 10026398Abstract: Methods, systems, and apparatus, including computer programs encoded on a computer storage medium, for predicting follow-up queries to an initial transcription of an utterance. In some implementations, one or more follow-up queries that are pre-associated with a transcription of an initial utterance of a user are identified. A new or modified language model in which a respective probability associated with one or more of the follow-up queries is increased with respect to an initial language model is obtained. Subsequent audio data corresponding to a subsequent utterance of the user is then received. The subsequent audio data is processed using the new or modified language model to generate a transcription of the subsequent utterance. The transcription of the subsequent utterance is then provided for output to the user.Type: GrantFiled: July 8, 2016Date of Patent: July 17, 2018Assignee: Google LLCInventors: Behshad Behzadi, Dmitry Osmakov, Martin Baeuml, Gleb Skobeltsyn
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Patent number: 10019986Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for speech recognition. One of the methods includes receiving first audio data corresponding to an utterance; obtaining a first transcription of the first audio data; receiving data indicating (i) a selection of one or more terms of the first transcription and (ii) one or more of replacement terms; determining that one or more of the replacement terms are classified as a correction of one or more of the selected terms; in response to determining that the one or more of the replacement terms are classified as a correction of the one or more of the selected terms, obtaining a first portion of the first audio data that corresponds to one or more terms of the first transcription; and using the first portion of the first audio data that is associated with the one or more terms of the first transcription to train an acoustic model for recognizing the one or more of the replacement terms.Type: GrantFiled: July 29, 2016Date of Patent: July 10, 2018Assignee: Google LLCInventors: Olga Kapralova, Evgeny A. Cherepanov, Dmitry Osmakov, Martin Baeuml, Gleb Skobeltsyn
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Publication number: 20180166079Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for natural language processing. One of the methods includes receiving a first voice query; generating a first recognition output; receiving a second voice query; determining from a recognition of the second voice query that the second voice query triggers a correction request; using the first recognition output and the second recognition to determine a plurality of candidate corrections; scoring each candidate correction; and generating a corrected recognition output for a particular candidate correction having a score that satisfies a threshold value.Type: ApplicationFiled: January 22, 2018Publication date: June 14, 2018Inventors: Gleb Skobeltsyn, Evgeny A. Cherepanov, Behshad Behzadi