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:
Sep. 10, 2024

Filed:

May. 04, 2022
Applicant:

Harman International Industries, Incorporated, Stamford, CT (US);

Inventors:

George Jose, Karnataka, IN;

Jigar Mistry, Gujarat, IN;

Aashish Kumar, Karnataka, IN;

Srinivas Kruthiventi Subrahmanyeswara Sai, Bangalore, IN;

Rajesh Biswal, Karnataka, IN;

Assignee:
Attorney:
Primary Examiner:
Int. Cl.
CPC ...
G10L 15/16 (2006.01); G10L 15/05 (2013.01); G10L 15/22 (2006.01); G10L 15/08 (2006.01); G10L 15/20 (2006.01);
U.S. Cl.
CPC ...
G10L 15/05 (2013.01); G10L 15/16 (2013.01); G10L 15/22 (2013.01); G10L 2015/088 (2013.01); G10L 15/20 (2013.01);
Abstract

The current disclosure relates to systems and methods for wakeword or keyword detection in Virtual Personal Assistants (VPAs). In particular, systems and methods are provided for wakeword detection using deep neural networks including a parametric pooling layer, wherein the parametric pooling layer includes trainable parameters, enabling the layer to learn to distinguish between informative feature vectors and non-informative/noisy feature vectors extracted from a variable length acoustic signal. In one example, a parametric pooling layer may aggregate a variable length feature map, comprising a plurality of feature vectors extracted from an acoustic signal, into an embedding vector of pre-determined length, by weighting each of the plurality of feature vectors based on one or more learned parameters in a parametric pooling layer, and aggregating the plurality of weighted feature vectors into the embedding vector.


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