Patents by Inventor Muhammad Ammar Ahmed
Muhammad Ammar Ahmed 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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Patent number: 11955127Abstract: An embodiment extracts a set of designated entities and a set of relationships between designated entities from speech content of an audio feed of a plurality of participants of a current web conference using a machine learning model trained to classify parts of speech content. The embodiment generates a list of current action items based on the extracted set of designated entities and relationships between designated entities. The embodiment identifies a first current action item that is an updated version of an ongoing action item on a progress list of ongoing action items from past web conferences. The embodiment also identifies a second current action item that is unrelated to any of the ongoing action items on the progress list. The embodiment updates the progress list to include updates for the first current action item and by adding the second current action item.Type: GrantFiled: April 8, 2021Date of Patent: April 9, 2024Assignee: KYNDRYL, INC.Inventors: Muhammad Ammar Ahmed, Madiha Ijaz, Sreekrishnan Venkateswaran
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Patent number: 11750671Abstract: An embodiment includes identifying which of a plurality of participants of a web conference is an identified participant associated with a selected cluster of a plurality of clusters of audio feed data of an audio feed of the web conference based on a self-introduction in the selected cluster. The embodiment also generates a first preliminary leadership score for the identified participant based on a speaking duration value associated with the identified participant and generates a second preliminary leadership score for the identified participant using a selected video segment as an input for a machine learning classifier model. The embodiment calculates a final leadership score for the identified participant based on the first and second preliminary leadership scores. The final leadership score is representative of a likelihood that the identified participant is a supervisor, and is indicative of the identified participant being a supervisor if it exceeds a designated threshold value.Type: GrantFiled: April 8, 2021Date of Patent: September 5, 2023Assignee: KYNDRYL, INC.Inventors: Muhammad Ammar Ahmed, Madiha Ijaz, Sreekrishnan Venkateswaran
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Patent number: 11694443Abstract: Machine-based video classifying to identify misleading videos by training a model using a video corpus, obtaining a subject video from a content server, generating respective feature vectors of a title, a thumbnail, a description, and a content of the subject video, determining a first semantic similarities between ones of the feature vectors, determining a second semantic similarity between the title of subject video and titles of videos in the misleading video corpus in a same domain as the subject video, determining a third semantic similarity between comments of the subject video and comments of videos in the misleading video corpus in the same domain as the subject video, classifying the subject video using the model and based on the first semantic similarities, the second semantic similarity, and the third semantic similarity, and outputting the classification of the subject video to a user.Type: GrantFiled: August 21, 2020Date of Patent: July 4, 2023Assignee: KYNDRYL, INC.Inventors: Madiha Ijaz, Muhammad Ammar Ahmed, Sreekrishnan Venkateswaran
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Publication number: 20220272132Abstract: An embodiment includes identifying which of a plurality of participants of a web conference is an identified participant associated with a selected cluster of a plurality of clusters of audio feed data of an audio feed of the web conference based on a self-introduction in the selected cluster. The embodiment also generates a first preliminary leadership score for the identified participant based on a speaking duration value associated with the identified participant and generates a second preliminary leadership score for the identified participant using a selected video segment as an input for a machine learning classifier model. The embodiment calculates a final leadership score for the identified participant based on the first and second preliminary leadership scores. The final leadership score is representative of a likelihood that the identified participant is a supervisor, and is indicative of the identified participant being a supervisor if it exceeds a designated threshold value.Type: ApplicationFiled: April 8, 2021Publication date: August 25, 2022Applicant: Kyndryl, Inc.Inventors: Muhammad Ammar Ahmed, Madiha Ijaz, Sreekrishnan Venkateswaran
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Publication number: 20220270612Abstract: An embodiment extracts a set of designated entities and a set of relationships between designated entities from speech content of an audio feed of a plurality of participants of a current web conference using a machine learning model trained to classify parts of speech content. The embodiment generates a list of current action items based on the extracted set of designated entities and relationships between designated entities. The embodiment identifies a first current action item that is an updated version of an ongoing action item on a progress list of ongoing action items from past web conferences. The embodiment also identifies a second current action item that is unrelated to any of the ongoing action items on the progress list. The embodiment updates the progress list to include updates for the first current action item and by adding the second current action item.Type: ApplicationFiled: April 8, 2021Publication date: August 25, 2022Applicant: Kyndryl, Inc.Inventors: Muhammad Ammar Ahmed, Madiha Ijaz, Sreekrishnan Venkateswaran
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Publication number: 20210397845Abstract: Machine-based video classifying to identify misleading videos by training a model using a video corpus, obtaining a subject video from a content server, generating respective feature vectors of a title, a thumbnail, a description, and a content of the subject video, determining a first semantic similarities between ones of the feature vectors, determining a second semantic similarity between the title of subject video and titles of videos in the misleading video corpus in a same domain as the subject video, determining a third semantic similarity between comments of the subject video and comments of videos in the misleading video corpus in the same domain as the subject video, classifying the subject video using the model and based on the first semantic similarities, the second semantic similarity, and the third semantic similarity, and outputting the classification of the subject video to a user.Type: ApplicationFiled: August 21, 2020Publication date: December 23, 2021Inventors: Madiha IJAZ, Muhammad Ammar AHMED, Sreekrishnan VENKATESWARAN
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Patent number: 11080982Abstract: A system and method for determining a location of a leak within an irrigation network. The irrigation network is monitored for an indication that a leak has occurred, and then can evaluate the severity of the leak. At least one mobile sensing unit is selected to deploy across the irrigation network in response to the indication of a leak. Instructions are generated and sent to the at least one mobile sensing unit including information as to where in the irrigation network the at least one mobile sensing unit is to go. The mobile sensing unit is deployed into the irrigation network. A location of the leak within the irrigation network is determined based at least upon data gathered by the mobile sensing units while it is deployed in the irrigation network. An alert about the leak is sent in response to determining the location of the leak.Type: GrantFiled: May 13, 2020Date of Patent: August 3, 2021Assignee: International Business Machines CorporationInventors: Mustapha Ennaifar, Muhammad Ammar Ahmed, Moncef Benboubakeur, Julija Narodicka