The patent badge is an abbreviated version of the USPTO patent document. The patent badge does contain a link to the full patent document.

The patent badge is an abbreviated version of the USPTO patent document. The patent badge covers the following: Patent number, Date patent was issued, Date patent was filed, Title of the patent, Applicant, Inventor, Assignee, Attorney firm, Primary examiner, Assistant examiner, CPCs, and Abstract. The patent badge does contain a link to the full patent document (in Adobe Acrobat format, aka pdf). To download or print any patent click here.

Date of Patent:
Aug. 09, 2022

Filed:

Sep. 17, 2019
Applicant:

Neurala, Inc., Boston, MA (US);

Inventors:

Lucas Neves, Somerville, MA (US);

Liam Debeasi, Brookline, MA (US);

Heather Ames Versace, Milton, MA (US);

Jeremy Wurbs, Worcester, MA (US);

Anatoli Gorchet, Newton, MA (US);

Massimiliano Versace, Milton, MA (US);

Warren Katz, Cambridge, MA (US);

Assignee:

Neurala, Inc., Boston, MA (US);

Attorney:
Primary Examiner:
Int. Cl.
CPC ...
G06N 3/08 (2006.01); G06F 16/2455 (2019.01); G06F 16/58 (2019.01); G06F 17/15 (2006.01); G06K 9/62 (2022.01);
U.S. Cl.
CPC ...
G06N 3/08 (2013.01); G06F 16/24568 (2019.01); G06F 16/5866 (2019.01); G06F 17/15 (2013.01); G06K 9/6267 (2013.01);
Abstract

Today, artificial neural networks are trained on large sets of manually tagged images. Generally, for better training, the training data should be as large as possible. Unfortunately, manually tagging images is time consuming and susceptible to error, making it difficult to produce the large sets of tagged data used to train artificial neural networks. To address this problem, the inventors have developed a smart tagging utility that uses a feature extraction unit and a fast-learning classifier to learn tags and tag images automatically, reducing the time to tag large sets of data. The feature extraction unit and fast-learning classifiers can be implemented as artificial neural networks that associate a label with features extracted from an image and tag similar features from the image or other images with the same label. Moreover, the smart tagging system can learn from user adjustment to its proposed tagging. This reduces tagging time and errors.


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