METHOD AND SYSTEM FOR MAKING RECOMMENDATIONS FROM BINARY DATA USING NEIGHBOR-SCORE MATRIX AND LATENT FACTORS

Patent №

US 10,932,003

Granted

2021-02-23

Filed 2015

Owner

MILQ INC.

+1 more

Lab

AI components

4

ml · vision · kr · hardware

Assignment

Recorded

Dataset

AIPD

2023_r1 edition

Application

14975872

One embodiment is a method executed by a computer system that applies collaborative filtering to provide a recommendation to a user. The method includes retrieving a binary matrix that includes rows and columns of binary data for preferences of users on items; applying a neighborhood-based approach to convert the binary matrix into a neighbor-score matrix; applying a factorization to approximate the neighbor-score matrix with a product of lower rank matrices; calculating a user factor and an item factor based on the factorization; calculating scores for user-item pairs by computing a dot product between the user factor and the item factor; sorting the scores of the user-item pairs to generate the recommendation to the user; and providing the recommendation to a general-purpose computer of the user.

Machine learningVisionKnowledge representationAI hardwareG06Q 30/0631G06F 16/9535G06Q 30/0251H04N 21/4661H04N 21/8113

AI classification

Machine learning1.00
AI hardware0.99
Knowledge representation0.95
Vision0.85
Planning0.17
Natural language0.01
Speech0.01
Evolutionary computation0.00

Ownership

MILQ INC.

assignment · 375050968

LAYER 6 INC.

namechg · 460890298

Assignors

VOLKOVS, MAKSIMS, POUTANEN, TOMI

On an employer assignment, the assignors are typically the inventors.

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