IP Library Patent Application 15708609
Patent Application
App. No. 15/708,609

SYSTEMS AND METHODS FOR PROVIDING CALLS-TO-ACTION ASSOCIATED WITH PAGES IN A SOCIAL NETWORKING SYSTEM

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Quick Facts
Patent No.
US None
App. No.
15/708,609
Abstract

Systems, methods, and non-transitory computer readable media can obtain a plurality of calls-to-action (CTAs) that can be provided on a page associated with a social networking system. A machine learning model can be trained based on training data including pages and associated CTAs. The plurality of CTAs for a page can be ranked based on the machine learning model. At least one of the ranked CTAs for the page can be provided as a recommended CTA for the page.

Claims (34)

1 . A computer-implemented method comprising:

obtaining, by a computing system, a plurality of calls-to-action (CTAs) that can be provided on a page associated with a social networking system;

training, by the computing system, a machine learning model based on training data including pages and associated CTAs;

ranking, by the computing system, the plurality of CTAs for a page based on the machine learning model; and

providing, by the computing system, at least one of the ranked CTAs for the page as a recommended CTA for the page.

2 . The computer-implemented method of claim 1 , wherein the providing the at least one of the ranked CTAs for the page includes generating a suggestion to create the at least one of the ranked CTAs.

3 . The computer-implemented method of claim 2 , wherein the suggestion is for display in a feed of an administrator associated with the page.

4 . The computer-implemented method of claim 2 , wherein the suggestion is for display in a section of the page.

5 . The computer-implemented method of claim 1 , wherein the machine learning model is trained based on features relating to one or more of: a page category, information associated with a page, activity by a page administrator, or a page embedding.

6 . The computer-implemented method of claim 5 , wherein the page embedding is based on interactions between a user and a page.

7 . The computer-implemented method of claim 1 , wherein the machine learning model is a gradient boosting decision tree.

8 . The computer-implemented method of claim 7 , wherein pages included in the training data having a particular CTA are positive samples for the particular CTA and pages included in the training data not having the particular CTA are negative samples for the particular CTA.

9 . The computer-implemented method of claim 8 , wherein the gradient boosting decision tree includes a tree for each of the plurality of CTAs, wherein the tree for each of the plurality of CTAs generates a score indicative of a likelihood of creating the corresponding CTA.

10 . The computer-implemented method of claim 9 , wherein the ranking the plurality of CTAs includes ordering scores for the plurality of CTAs.

11 . A system comprising:

at least one hardware processor; and

a memory storing instructions that, when executed by the at least one processor, cause the system to perform:

obtaining a plurality of calls-to-action (CTAs) that can be provided on a page associated with a social networking system;

training a machine learning model based on training data including pages and associated CTAs;

ranking the plurality of CTAs for a page based on the machine learning model; and

providing at least one of the ranked CTAs for the page as a recommended CTA for the page.

12 . The system of claim 11 , wherein the providing the at least one of the ranked CTAs for the page includes generating a suggestion to create the at least one of the ranked CTAs.

13 . The system of claim 11 , wherein the machine learning model is a gradient boosting decision tree.

14 . The system of claim 13 , wherein pages included in the training data having a particular CTA are positive samples for the particular CTA and pages included in the training data not having the particular CTA are negative samples for the particular CTA.

15 . The system of claim 14 , wherein the gradient boosting decision tree includes a tree for each of the plurality of CTAs, wherein the tree for each of the plurality of CTAs generates a score indicative of a likelihood of creating the corresponding CTA.

16 . A non-transitory computer readable medium including instructions that, when executed by at least one hardware processor of a computing system, cause the computing system to perform a method comprising:

obtaining a plurality of calls-to-action (CTAs) that can be provided on a page associated with a social networking system;

training a machine learning model based on training data including pages and associated CTAs;

ranking the plurality of CTAs for a page based on the machine learning model; and

providing at least one of the ranked CTAs for the page as a recommended CTA for the page.

17 . The non-transitory computer readable medium of claim 16 , wherein the providing the at least one of the ranked CTAs for the page includes generating a suggestion to create the at least one of the ranked CTAs.

18 . The non-transitory computer readable medium of claim 16 , wherein the machine learning model is a gradient boosting decision tree.

19 . The non-transitory computer readable medium of claim 18 , wherein pages included in the training data having a particular CTA are positive samples for the particular CTA and pages included in the training data not having the particular CTA are negative samples for the particular CTA.

20 . The non-transitory computer readable medium of claim 19 , wherein the gradient boosting decision tree includes a tree for each of the plurality of CTAs, wherein the tree for each of the plurality of CTAs generates a score indicative of a likelihood of creating the corresponding CTA.

Assignments (2)
CHANGE OF NAME Recorded Dec 30, 2021
From: FACEBOOK, INC.
To: META PLATFORMS, INC.
Reel/Frame 058600/0714 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 2, 2017
From: KAPOOR, KOMAL; TANGLERTSAMAPAN, APAORN; MOHAMED, AHMED MAGDY HAMED
To: FACEBOOK, INC.
Reel/Frame 044021/0196 →