Patents by Inventor SAMAN ZARANDIOON
SAMAN ZARANDIOON 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: 20250021884Abstract: A machine learning service implements programmatic interfaces for a variety of operations on several entity types, such as data sources, statistics, feature processing recipes, models, and aliases. A first request to perform an operation on an instance of a particular entity type is received, and a first job corresponding to the requested operation is inserted in a job queue. Prior to the completion of the first job, a second request to perform another operation is received, where the second operation depends on a result of the operation represented by the first job. A second job, indicating a dependency on the first job, is stored in the job queue. The second job is initiated when the first job completes.Type: ApplicationFiled: July 17, 2024Publication date: January 16, 2025Applicant: Amazon Technologies, Inc.Inventors: Leo Parker Dirac, Nicolle M. Correa, Aleksandr Mikhaylovich Ingerman, Sriram Krishnan, Jin Li, Sudhakar Rao Puvvadi, Saman Zarandioon
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Patent number: 12073298Abstract: A machine learning service implements programmatic interfaces for a variety of operations on several entity types, such as data sources, statistics, feature processing recipes, models, and aliases. A first request to perform an operation on an instance of a particular entity type is received, and a first job corresponding to the requested operation is inserted in a job queue. Prior to the completion of the first job, a second request to perform another operation is received, where the second operation depends on a result of the operation represented by the first job. A second job, indicating a dependency on the first job, is stored in the job queue. The second job is initiated when the first job completes.Type: GrantFiled: July 8, 2022Date of Patent: August 27, 2024Assignee: Amazon Technologies, Inc.Inventors: Leo Parker Dirac, Nicolle M. Correa, Aleksandr Mikhaylovich Ingerman, Sriram Krishnan, Jin Li, Sudhakar Rao Puvvadi, Saman Zarandioon
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Patent number: 12056583Abstract: Respective statistical distributions of a target variable within a proposed training data set and a proposed test data set for a machine learning model are obtained. A metric indicative of the difference between the two statistical distributions is computed. The difference metric is used to determine whether the proposed test data set is acceptable to evaluate the machine learning model.Type: GrantFiled: July 26, 2020Date of Patent: August 6, 2024Assignee: Amazon Technologies, Inc.Inventors: Saman Zarandioon, Robert Matthias Steele
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Publication number: 20240087687Abstract: Systems and methods for aligning ontologies, such as a medical or related ontologies, are disclosed. Initially, ontology specifications are received, such as ontologies comprising a root node and a plurality of child nodes. Each node is assigned at least one synthetic identifier corresponding to its path(s) to the root node. In some cases, nodes may be clustered using one or more clustering algorithms. A translation model is pre-trained by applying one or more masked language models to the ontologies and the synthetic identifiers. Subsequently, each ontology is augmented by identifying nodes in different ontologies that match and assigning label and/or other details across different ontologies. The translation model can then be fine-tuned using the augmented data. The fine-tuned translation model is then used to identify corresponding nodes in target ontologies in response to translation requests.Type: ApplicationFiled: September 8, 2023Publication date: March 14, 2024Inventors: Cezary Antoni Marcjan, Mariyam Amir, Murchana Baruah, Mahsa Eslamialishah, Sina Ehsani, Alireza Bahramali, Sadra Naddaf-Shargh, Saman Zarandioon
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Patent number: 11847406Abstract: Techniques for performing natural language processing (NLP) on semi-structured data are described. An exemplary method includes receiving a semi-structured document to perform NLP on using a trained NLP model; converting the semi-structured document into a secondary format, wherein the secondary format includes spatial information for tokens of the semi-structured document; flattening the converted, secondary formatted semi-structured document into a Unicode Transformation Format text file; performing NLP on the Unicode Transformation Format text file using the trained NLP model; and providing a result of the NLP to a requester.Type: GrantFiled: March 30, 2021Date of Patent: December 19, 2023Assignee: Amazon Technologies, Inc.Inventors: Sunil Mallya Kasaragod, Yahor Pushkin, Saman Zarandioon, Graham Vintcent Horwood, Miguel Ballesteros Martinez, Yogarshi Paritosh Vyas, Yinxiao Zhang, Diego Marcheggiani, Yaser Al-Onaizan, Xuan Zhu, Liutong Zhou, Yusheng Xie, Aruni Roy Chowdhury, Bo Pang
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Publication number: 20230147366Abstract: Systems and methods for data normalization are disclosed. The disclosed systems and methods train one or more machine learning model based on a plurality of annotated records and apply these trained models to new or updated records. The models are configured to analyze the records and generate classifications or concepts from the records and corresponding confidence scores. If the confidence scores exceed a threshold, the corresponding classifications or concepts are appended to the appropriate record.Type: ApplicationFiled: November 8, 2022Publication date: May 11, 2023Inventors: Cezary A. Marcjan, Srinivas R. R. Burugapalli, Nishant Gopalakrishnan, Jayaram Nanduri, Saman Zarandioon, Senthil Nachimuthu, Swarna Subash, Wing Tsui, Patty Culpin, Ramesh Kolavennu, Mehrdad Biglari
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Publication number: 20220391763Abstract: A machine learning service implements programmatic interfaces for a variety of operations on several entity types, such as data sources, statistics, feature processing recipes, models, and aliases. A first request to perform an operation on an instance of a particular entity type is received, and a first job corresponding to the requested operation is inserted in a job queue. Prior to the completion of the first job, a second request to perform another operation is received, where the second operation depends on a result of the operation represented by the first job. A second job, indicating a dependency on the first job, is stored in the job queue. The second job is initiated when the first job completes.Type: ApplicationFiled: July 8, 2022Publication date: December 8, 2022Applicant: Amazon Technologies, Inc.Inventors: Leo Parker Dirac, Nicolle M. Correa, Aleksandr Mikhaylovich Ingerman, Sriram Krishnan, Jin Li, Sudhakar Rao Puvvadi, Saman Zarandioon
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Patent number: 11386351Abstract: A machine learning service implements programmatic interfaces for a variety of operations on several entity types, such as data sources, statistics, feature processing recipes, models, and aliases. A first request to perform an operation on an instance of a particular entity type is received, and a first job corresponding to the requested operation is inserted in a job queue. Prior to the completion of the first job, a second request to perform another operation is received, where the second operation depends on a result of the operation represented by the first job. A second job, indicating a dependency on the first job, is stored in the job queue. The second job is initiated when the first job completes.Type: GrantFiled: October 12, 2018Date of Patent: July 12, 2022Assignee: Amazon Technologies, Inc.Inventors: Leo Parker Dirac, Nicolle M. Correa, Aleksandr Mikhaylovich Ingerman, Sriram Krishnan, Jin Li, Sudhakar Rao Puvvadi, Saman Zarandioon
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Publication number: 20200356901Abstract: Respective statistical distributions of a target variable within a proposed training data set and a proposed test data set for a machine learning model are obtained. A metric indicative of the difference between the two statistical distributions is computed. The difference metric is used to determine whether the proposed test data set is acceptable to evaluate the machine learning model.Type: ApplicationFiled: July 26, 2020Publication date: November 12, 2020Applicant: Amazon Technologies, Inc.Inventors: Saman Zarandioon, Robert Matthias Steele
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Patent number: 10726356Abstract: Respective statistical distributions of a target variable within a proposed training data set and a proposed test data set for a machine learning model are obtained. A metric indicative of the difference between the two statistical distributions is computed. The difference metric is used to determine whether the proposed test data set is acceptable to evaluate the machine learning model.Type: GrantFiled: August 1, 2016Date of Patent: July 28, 2020Assignee: Amazon Technologies, Inc.Inventors: Saman Zarandioon, Robert Matthias Steele
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Patent number: 10713589Abstract: A determination that a machine learning data set is to be shuffled is made. Tokens corresponding to the individual observation records are generated based on respective identifiers of the records' storage objects and record key values. Respective representative values are derived from the tokens. The observation records are rearranged based on a result of sorting the representative values and provided to a shuffle result destination.Type: GrantFiled: March 3, 2016Date of Patent: July 14, 2020Assignee: Amazon Technologies, Inc.Inventors: Saman Zarandioon, Nicolle M. Correa, Leo Parker Dirac, Aleksandr Mikhaylovich Ingerman, Steven Andrew Loeppky, Robert Matthias Steele, Tianming Zheng
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Publication number: 20190050756Abstract: A machine learning service implements programmatic interfaces for a variety of operations on several entity types, such as data sources, statistics, feature processing recipes, models, and aliases. A first request to perform an operation on an instance of a particular entity type is received, and a first job corresponding to the requested operation is inserted in a job queue. Prior to the completion of the first job, a second request to perform another operation is received, where the second operation depends on a result of the operation represented by the first job. A second job, indicating a dependency on the first job, is stored in the job queue. The second job is initiated when the first job completes.Type: ApplicationFiled: October 12, 2018Publication date: February 14, 2019Applicant: Amazon Technologies, Inc.Inventors: Leo Parker Dirac, Nicolle M. Correa, Aleksandr Mikhaylovich Ingerman, Sriram Krishnan, Jin Li, Sudhakar Rao Puvvadi, Saman Zarandioon
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Patent number: 10102480Abstract: A machine learning service implements programmatic interfaces for a variety of operations on several entity types, such as data sources, statistics, feature processing recipes, models, and aliases. A first request to perform an operation on an instance of a particular entity type is received, and a first job corresponding to the requested operation is inserted in a job queue. Prior to the completion of the first job, a second request to perform another operation is received, where the second operation depends on a result of the operation represented by the first job. A second job, indicating a dependency on the first job, is stored in the job queue. The second job is initiated when the first job completes.Type: GrantFiled: June 30, 2014Date of Patent: October 16, 2018Assignee: Amazon Technologies, Inc.Inventors: Leo Parker Dirac, Nicolle M. Correa, Aleksandr Mikhaylovich Ingerman, Sriram Krishnan, Jin Li, Sudhakar Rao Puvvadi, Saman Zarandioon
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Publication number: 20150379424Abstract: A machine learning service implements programmatic interfaces for a variety of operations on several entity types, such as data sources, statistics, feature processing recipes, models, and aliases. A first request to perform an operation on an instance of a particular entity type is received, and a first job corresponding to the requested operation is inserted in a job queue. Prior to the completion of the first job, a second request to perform another operation is received, where the second operation depends on a result of the operation represented by the first job. A second job, indicating a dependency on the first job, is stored in the job queue. The second job is initiated when the first job completes.Type: ApplicationFiled: June 30, 2014Publication date: December 31, 2015Applicant: AMAZON TECHNOLOGIES, INC.Inventors: LEO PARKER DIRAC, NICOLLE M. CORREA, ALEKSANDR MIKHAYLOVICH INGERMAN, SRIRAM KRISHNAN, JIN LI, SUDHAKAR RAO PUVVADI, SAMAN ZARANDIOON