Industrial digital twin systems and methods with echelons of executive, advisory and operations messaging and visualization
US-2022108262-A1 · Apr 7, 2022 · US
US11860842B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11860842-B2 |
| Application number | US-202016950636-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 17, 2020 |
| Priority date | Jun 30, 2015 |
| Publication date | Jan 2, 2024 |
| Grant date | Jan 2, 2024 |
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Example embodiments involve a system and methods for identifying valuable view item pages for search engine optimization. According to certain embodiments, the system performs operations that include predicting the probability of future traffic for a given product based on a number of product level factors as input variables, and identifying a selection of view item pages corresponding to the products with the probability of the highest future traffic in order to maximize the driving natural search traffic to a linked site of the corresponding view item page.
Opening claim text (preview).
What is claimed is: 1. A system comprising: a processor; and a memory coupled to the processor and storing instructions that, when executed by the processor, cause the system to perform operations comprising: calculating, for a product, a search traffic value based at least in part on a set of item level factors, the search traffic value indicating a probability that the product is returned in response to user search; identifying, from a database, an item listing for the product; assigning, based at least in part on the search traffic value, an index status to the item listing for the product indicating to return the item listing in response to user search; receiving a search query corresponding to the product; and returning the item listing for the product based at least in part on the search query and the index status assigned to the item listing. 2. The system of claim 1 , wherein the instructions, when executed by the processor, further cause the system to perform operations comprising: identifying the set of item level factors corresponding to the probability that the item listing is returned in response to user search. 3. The system of claim 1 , wherein the instructions, when executed by the processor, further cause the system to perform operations comprising: identifying, from the database, a second item listing for the product or a second product; assigning a second index status to the second item listing for the product or the second product, indicating to refrain from returning the second item listing in response to user search; receiving a second search query corresponding to the product or the second product; and refraining from returning the second item listing for the product or the second product based at least in part on the second search query and the second index status assigned to the second item listing. 4. The system of claim 3 , wherein the instructions to assign the second index status, when executed by the processor, further cause the system to perform operations comprising: determining to assign the second index status based at least in part on a second search traffic value for the second item listing failing to satisfy a threshold search traffic value. 5. The system of claim 1 , wherein the instructions, when executed by the processor, further cause the system to perform operations comprising: assigning the index status to the item listing based at least in part on the search traffic value satisfying a threshold natural search traffic value. 6. The system of claim 1 , wherein the instructions, when executed by the processor, further cause the system to perform operations comprising: identifying, from the database and the item listing for the product, a set of input variables associated with the product, wherein calculating the search traffic value is further based at least in part on one or more of the set of input variables associated with the product. 7. The system of claim 6 , wherein the set of input variables comprise a historical natural search traffic of the product, a view count of the product, a price of the product, a number of listings of the product, a bounce count corresponding to the product, a number of unique sellers offering the product, a quantity of the product sold, a duration of time that the product has been online, or a combination thereof. 8. A computer implemented method comprising: calculating, for a product, a search traffic value based at least in part on a set of item level factors, the search traffic value indicating a probability that the product is returned in response to user search; identifying, from a database, an item listing for the product; assigning, based at least in part on the search traffic value, an index status to the item listing for the product indicating to return the item listing in response to user search; receiving a search query corresponding to the product; and returning the item listing for the product based at least in part on the search query and the index status assigned to the item listing. 9. The computer implemented method of claim 8 , further comprising: identifying the set of item level factors corresponding to the probability that the item listing is returned in response to user search. 10. The computer implemented method of claim 8 , further comprising: identifying, from the database, a second item listing for the product or a second product; assigning a second index status to the second item listing for the product or the second product, indicating to refrain from returning the second item listing in response to user search; receiving a second search query corresponding to the product or the second product; and refraining from returning the second item listing for the product or the second product based at least in part on the second search query and the second index status assigned to the second item listing. 11. The computer implemented method of claim 10 , wherein assigning the second index status comprises: determining to assign the second index status based at least in part on a second search traffic value for the second item listing failing to satisfy a threshold search traffic value. 12. The computer implemented method of claim 8 , further comprising; assigning the index status to the item listing based at least in part on the search traffic value satisfying a threshold natural search traffic value. 13. The computer implemented method of claim 8 , further comprising: identifying, from the database and the item listing for the product, a set of input variables associated with the product, wherein calculating the search traffic value is further based at least in part on one or more of the set of input variables associated with the product. 14. The computer implemented method of claim 13 , wherein the set of input variables comprise a historical natural search traffic of the product, a view count of the product, a price of the product, a number of listings of the product, a bounce count corresponding to the product, a number of unique sellers offering the product, a quantity of the product sold, a duration of time that the product has been online, or a combination thereof. 15. A non-transitory computer-readable medium storing instructions which, when executed by a processor, cause the processor to perform operations comprising: calculating, for a product, a search traffic value based at least in part on a set of item level factors, the search traffic value indicating a probability that the product is returned in response to user search; identifying, from a database, an item listing for the product; assigning, based at least in part on the search traffic value, an index status to the item listing for the product indicating to return the item listing in response to user search; receiving a search query corresponding to the product; and returning the item listing for the product based at least in part on the search query and the index status assigned to the item listing. 16. The non-transitory computer-readable medium of claim 15 , wherein the instructions, when executed, further cause the processor to perform operations comprising: identifying the set of item level factors corresponding to the probability that the item listing is returned in response to user search. 17. The non-transitory computer-readable medium of claim 15 , wherein the instructions, when executed, further cause the processor to perform operations comprising: identifying, from the database, a second item listing for the product or a second product; assigning a se
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