Patents by Inventor ORLY WEISEL
ORLY WEISEL 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: 20240419956Abstract: In an example, an apparatus comprises a plurality of execution units comprising and logic, at least partially including hardware logic, to traverse a solution space, score a plurality of solutions to a scheduling deep learning network execution, and select a preferred solution from the plurality of solutions to implement the deep learning network. Other embodiments are also disclosed and claimed.Type: ApplicationFiled: June 21, 2024Publication date: December 19, 2024Applicant: Intel CorporationInventors: Eran Ben-Avi, Neta Zmora, Guy Jacob, Lev Faivishevsky, Jeremie Dreyfuss, Tomer Bar-On, Jacob Subag, Yaniv Fais, Shira Hirsch, Orly Weisel, Zigi Walter, Yarden Oren
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Patent number: 12135761Abstract: An improved convolution kernel system and method may be used to improve performance of analysis of input image data for autonomous or semi-autonomous vehicle navigation. A processing circuit may be used to apply a convolution kernel on the input data to provide output data that comprises output data segments. The application may include repeating scanning and summing, including parallel scanning input data segments of the different input channels and of the input data depth value to provide first intermediate results associated with the input data depth value, and summing first intermediate results associated with a same output data channel and with different input depth values to provide, per each output data channel, a second result. The output analyzed image data may be used to generate a vehicle control signal, such as automatic control of braking, acceleration, or steering of a vehicle.Type: GrantFiled: December 30, 2021Date of Patent: November 5, 2024Assignee: Mobileye Vision Technologies Ltd.Inventors: Orly Weisel, Yaniv Fais, Arik Gaon
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Patent number: 12033063Abstract: In an example, an apparatus comprises a plurality of execution units comprising and logic, at least partially including hardware logic, to traverse a solution space, score a plurality of solutions to a scheduling deep learning network execution, and select a preferred solution from the plurality of solutions to implement the deep learning network. Other embodiments are also disclosed and claimed.Type: GrantFiled: February 24, 2023Date of Patent: July 9, 2024Assignee: Intel CorporationInventors: Eran Ben-Avi, Neta Zmora, Guy Jacob, Lev Faivishevsky, Jeremie Dreyfuss, Tomer Bar-On, Jacob Subag, Yaniv Fais, Shira Hirsch, Orly Weisel, Zigi Walter, Yarden Oren
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Publication number: 20230281435Abstract: In an example, an apparatus comprises a plurality of execution units comprising and logic, at least partially including hardware logic, to traverse a solution space, score a plurality of solutions to a scheduling deep learning network execution, and select a preferred solution from the plurality of solutions to implement the deep learning network. Other embodiments are also disclosed and claimed.Type: ApplicationFiled: February 24, 2023Publication date: September 7, 2023Applicant: Intel CorporationInventors: Eran Ben-Avi, Neta Zmora, Guy Jacob, Lev Faivishevsky, Jeremie Dreyfuss, Tomer Bar-On, Jacob Subag, Yaniv Fais, Shira Hirsch, Orly Weisel, Zigi Walter, Yarden Oren
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Patent number: 11599777Abstract: In an example, an apparatus comprises a plurality of execution units comprising and logic, at least partially including hardware logic, to traverse a solution space, score a plurality of solutions to a scheduling deep learning network execution, and select a preferred solution from the plurality of solutions to implement the deep learning network. Other embodiments are also disclosed and claimed.Type: GrantFiled: April 28, 2017Date of Patent: March 7, 2023Assignee: Intel CorporationInventors: Eran Ben-Avi, Neta Zmora, Guy Jacob, Lev Faivishevsky, Jeremie Dreyfuss, Tomer Bar-On, Jacob Subag, Yaniv Fais, Shira Hirsch, Orly Weisel, Zigi Walter, Yarden Oren
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Publication number: 20230046558Abstract: A method, integrated circuit, and a computer readable medium that stores instructions for reducing IO traffic from a global or remote memory unit to a buffer of a neural network unit, by using overlap rows of an input feature map tile.Type: ApplicationFiled: August 10, 2022Publication date: February 16, 2023Inventors: Orly Weisel, Yaniv FAIS, Shira HIRSCH
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Publication number: 20220366215Abstract: A method for neural network convolution, the method may include receiving input data that is a 3D input data and comprises input data segments associated with different input data depth values; receiving a convolution kernel that is a 3D convolution kernel and comprises kernel segments associated with different kernel depth values; performing multiple 3D convolution iteration, wherein each of 3D convolution iteration comprises: determining whether the 3D convolution iteration is of a first type or of a second type; executing the 3D convolution iteration of the first type when determining that the 3D convolution iteration is of the first type; and executing the 3D convolution iteration of the second type when determining that the 3D convolution iteration is of the second type.Type: ApplicationFiled: May 9, 2022Publication date: November 17, 2022Inventors: Orly WEISEL, Yaniv FAIS, Shira HIRSCH, Daniel SREBNIK
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Publication number: 20220222317Abstract: An improved convolution kernel system and method may be used to improve performance of analysis of input image data for autonomous or semi-autonomous vehicle navigation. A processing circuit may be used to apply a convolution kernel on the input data to provide output data that comprises output data segments. The application may include repeating scanning and summing, including parallel scanning input data segments of the different input channels and of the input data depth value to provide first intermediate results associated with the input data depth value, and summing first intermediate results associated with a same output data channel and with different input depth values to provide, per each output data channel, a second result. The output analyzed image data may be used to generate a vehicle control signal, such as automatic control of braking, acceleration, or steering of a vehicle.Type: ApplicationFiled: December 30, 2021Publication date: July 14, 2022Inventors: Orly Weisel, Yaniv Fais, Arik Gaon
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Patent number: 10248839Abstract: In accordance with some embodiments, connected-component labeling is performed in both the screen dimensions (which may be referred to as the x and y dimensions) and a depth dimension to label objects in a depth image. Then the contour of labeled blobs may be used to identify an object in the depth image. Using contours may be advantageous in some embodiments because it reduces the amount of data that must be handled and the extent of computations, compared to conventional techniques which use bit map based operations.Type: GrantFiled: November 30, 2015Date of Patent: April 2, 2019Assignee: Intel CorporationInventors: Ofir Levy, Maoz Madmony, Orly Weisel
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Publication number: 20180314934Abstract: In an example, an apparatus comprises a plurality of execution units comprising and logic, at least partially including hardware logic, to traverse a solution space, score a plurality of solutions to a scheduling deep learning network execution, and select a preferred solution from the plurality of solutions to implement the deep learning network. Other embodiments are also disclosed and claimed.Type: ApplicationFiled: April 28, 2017Publication date: November 1, 2018Applicant: Intel CorporationInventors: Eran Ben-Avi, Neta Zmora, Guy Jacob, Lev Faivishevsky, Jeremie Dreyfuss, Tomer Bar-On, Jacob Subag, Yaniv Fais, Shira Hirsh, Orly Weisel, Zigi Walter, Yarden Oren
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Publication number: 20170154432Abstract: In accordance with some embodiments, connected-component labeling is performed in both the screen dimensions (which may be referred to as the x and y dimensions) and a depth dimension to label objects in a depth image. Then the contour of labeled blobs may be used to identify an object in the depth image. Using contours may be advantageous in some embodiments because it reduces the amount of data that must be handled and the extent of computations, compared to conventional techniques which use bit map based operations.Type: ApplicationFiled: November 30, 2015Publication date: June 1, 2017Inventors: Ofir Levy, Maoz Madmony, Orly Weisel
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Patent number: 9558560Abstract: Systems and methods may provide for obtaining data associated with an image and using a plurality of threads in a graphics processor to conduct a single instruction multiple data (SIMD) scan of the data. Additionally, systems and methods may provide for generating a plurality of connection tables corresponding to the plurality of threads based on the SIMD scan. In one example, a plurality of threads in the graphics processor are used to conduct a single phase merge of the plurality of connection tables onto a global connected components labeling (CCL) table for the image.Type: GrantFiled: March 14, 2014Date of Patent: January 31, 2017Assignee: Intel CorporationInventors: Avigdor Eldar, Noam Teomim, Alexandra Manevitch, Amos Goldman, Liad Aben Zour, Orly Weisel, Raizy Kellerman
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Publication number: 20150262369Abstract: Systems and methods may provide for obtaining data associated with an image and using a plurality of threads in a graphics processor to conduct a single instruction multiple data (SIMD) scan of the data. Additionally, systems and methods may provide for generating a plurality of connection tables corresponding to the plurality of threads based on the SIMD scan. In one example, a plurality of threads in the graphics processor are used to conduct a single phase merge of the plurality of connection tables onto a global connected components labeling (CCL) table for the image.Type: ApplicationFiled: March 14, 2014Publication date: September 17, 2015Inventors: AVIGDOR ELDAR, NOAM TEOMIM, ALEXANDRA MANEVITCH, AMOS GOLDMAN, LIAD ABEN ZOUR, ORLY WEISEL, RAIZY KELLERMAN