Apparatus and methods for determining multi-subject performance metrics in a three-dimensional space
US-2020401793-A1 · Dec 24, 2020 · US
US12223689B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12223689-B2 |
| Application number | US-202418893745-A |
| Country | US |
| Kind code | B2 |
| Filing date | Sep 23, 2024 |
| Priority date | Jul 26, 2017 |
| Publication date | Feb 11, 2025 |
| Grant date | Feb 11, 2025 |
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A method includes receiving a pointer to a plurality of images of a web page, the web page configured to display the plurality of images in a first arrangement; retrieving, using the pointer, the plurality of images of the web page; executing at least one machine learning model using the plurality of images from the web page as input to generate at least one image performance score for each image of the plurality of images, the at least one machine learning model trained based on a training set of images labeled based at least on interaction data corresponding to images of the training set of images; and rearranging the plurality of images on the web page to a second arrangement according to the at least one image performance score generated for each image of the plurality of images of the web page.
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What is claimed is: 1. A method, comprising: receiving, by one or more processors, a pointer to a web page, the web page configured to display a plurality of images in a first arrangement; retrieving, by the one or more processors using the pointer, the plurality of images of the web page; executing, by the one or more processors, at least one machine learning model using the plurality of images from the web page to generate at least one web page score for the web page; and rearranging, by the one or more processors, the plurality of images on the web page to a second arrangement based on the at least one web page score generated for the web page. 2. The method of claim 1 , comprising receiving the pointer by: receiving, by the one or more processors, a data file containing a plurality of URLs from a computing device of an entity hosting the web page; receiving, by the one or more processors, a page identification of the web page; or receiving, by the one or more processors, a product identification corresponding to a record in a database, the record containing the plurality of images. 3. The method of claim 1 , comprising receiving the pointer by receiving, by the one or more processors, a data file containing a plurality of image files containing images on the web page from a computing device of an entity hosting the web page. 4. The method of claim 1 , wherein executing the at least one machine learning model using the plurality of images of the web page comprises executing, by the one or more processors, a plurality of machine learning models to generate a plurality of web page scores for the web page, each machine learning model trained to output web page scores for a different target audience corresponding to the machine learning model. 5. The method of claim 1 , further comprising: provisioning, by the one or more processors, executable code to a computing device hosting the web page, the executable code configured to change arrangement of images of the web page, wherein rearranging the plurality of images on the web page comprises transmitting, by the one or more processors, the second arrangement of the web page to the computing device, receipt of the second arrangement causing the provisioned executable code stored in memory of the computing device to rearrange the plurality of images on the web page according to the second arrangement. 6. The method of claim 5 , wherein the computing device rearranges the plurality of images of the web page according to the second arrangement for the web page by moving one or more placeholders for loading the plurality of images on the web page according to the second arrangement or by moving the plurality of images as embedded on the web page. 7. The method of claim 1 , further comprising: subsequent to rearranging the plurality of images of the web page to the second arrangement, receiving, by the one or more processors, upload counter data indicating a number of uploads of a second web page corresponding to the web page; and generating, by the one or more processors from the upload counter data, a record indicating the number of uploads of the second web page and an identification of the second arrangement of the first plurality of images for the web page. 8. The method of claim 1 , further comprising: receiving, by the one or more processors, first interaction data of the web page with the plurality of images in the first arrangement; subsequent to rearranging the plurality of images on the web page to the second arrangement, receiving, by the one or more processors, second interaction data of the web page with the plurality of images in the second arrangement; and generating, by the one or more processors, a record indicating a difference between the first interaction data and the second interaction data. 9. The method of claim 1 , further comprising: receiving, by the one or more processors from a pixel placed on the web page, interaction data of the web page subsequent to rearranging the plurality of images; determining, by the one or more processors, the interaction data satisfies a condition; and rearranging, by the one or more processors, the plurality of images on the web page according to a third arrangement responsive to determining the interaction data satisfies the condition. 10. The method of claim 1 , comprising: generating, by the one or more processors, at least one image score for each image of the plurality of images; and determining, by the one or more processors, the at least one web page score for the web page as a function of the at least one image score for each image of the plurality of images. 11. The method of claim 1 , further comprising: executing, by the one or more processors, the at least one machine learning model using a set of images from each of a plurality of web pages to generate an image score for each image of each set of images; determining, by the one or more processors, a web page score for each of the plurality of web pages as a function of the image scores generated for each image of the set of images of the web page; ranking, by the one or more processors, each of the plurality of web pages based on the determined web page scores; and generating, by the one or more processors, a record indicating the rankings of the plurality of web pages. 12. The method of claim 1 , wherein the at least one machine learning model is trained based on a training set of arrangements of images labeled based at least on interaction data corresponding to images of the training set of arrangements of images. 13. A system, comprising: one or more processors configured by computer-readable instructions to: receive a pointer to a web page, the web page configured to display a plurality of images in a first arrangement; retrieve, using the pointer, the plurality of images of the web page; execute at least one machine learning model using the plurality of images from the web page to generate at least one web page score for the web page; and rearrange the plurality of images on the web page to a second arrangement based on the at least one web page score generated for the at least one web page score. 14. The system of claim 13 , wherein the one or more processors are configured to receive the pointer by: receiving a data file containing a plurality of URLs from a computing device of an entity hosting the web page; receiving a page identification of the web page; or receiving a product identification corresponding to a record in a database, the record containing the plurality of images. 15. The system of claim 13 , wherein the one or more processors are configured to receive the pointer by receiving a data file containing a plurality of image files containing images on the web page from a computing device of an entity hosting the web page. 16. The system of claim 13 , wherein the one or more processors are configured to execute the at least one machine learning model using the plurality of images of the web page by executing a plurality of machine learning models to generate a plurality of web page scores for the web page, each machine learning model trained to output web page scores for a different target audience corresponding to the machine learning model. 17. A method, comprising: receiving, by one or more processors, a pointer to a web page, the web page configured to display a plurality of different types of content in a first arrangement; retrieving, by the one or more processors using the pointer, the plurality of different types of content of the web page; exe
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