Channel quality indicator for time, frequency and spatial channel in terrestrial radio access network
US-9184898-B2 · Nov 10, 2015 · US
US10346895B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10346895-B2 |
| Application number | US-201514708069-A |
| Country | US |
| Kind code | B2 |
| Filing date | May 8, 2015 |
| Priority date | May 17, 2012 |
| Publication date | Jul 9, 2019 |
| Grant date | Jul 9, 2019 |
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In one embodiments, initiation of purchase transaction in response to a reply to a recommendation comprises a method. The method comprises, at a computer system having one or more processors and non-transitory memory storing one or more programs for execution by the one or more processors, detecting a recommendation associated with a first user, the recommendation associated with a product or service. The method further comprises detecting a response from a second user to the recommendation, determining whether the response from the second user comprises a purchase decision, and in accordance with a determination that the response from the second user comprises the purchase decision, initiating a transaction for the second user to purchase the product or service associated with the recommendation. Other embodiments are described herein.
Opening claim text (preview).
What is claimed is: 1. A method of improving efficiency of initiating online purchases from recommendations, the method comprising: at a server environment computer system having one or more processors and non-transitory memory storing one or more programs for execution by at least one of the one or more processors, the server environment computer system comprising at least a server system, wherein the server system comprises a recommendation system, a purchasing system, and a software application (“app”), wherein the software app is coupled to the recommendation system and the purchasing system, the software app configured to be installed on a mobile device of a first user, wherein the software app comprises a first communication system and a first user interface, wherein the recommendation system is configured to access the recommendations from users stored within a trust network of the first user, wherein the trust network comprises one or more levels of trust that the first user has for each user on the trust network, wherein the recommendations are based on categories for products or services, and wherein the recommendation system is configured to retrieve the recommendations from a content host without activating a second user interface of the content host, wherein the content host comprises a second communication system configured to receive and send the recommendations from the users within the trust network of the first user; receiving, by a third communication system (a) of the recommendation system and (b) coupled to the software app via the first communication system and (c) from the second communication system of the content host without activating the second user interface of the content host, one or more recommendations of the recommendations for the products or services by the first user posted to the content host, wherein the content host comprises a networking service, to permit the first user and other users having the first user within their respective trust networks, and also to permit further users having the other users within their respective trust networks, to (a) view a recommendation of the one or more recommendations posted by the first user via the content host, (b) provide a response to the recommendation posted by the first user via the content host by at least a reply, a comment, a like, an upvote, or a share, and (c) view the response to the recommendation posted by the other users or the further users, wherein: the other users determine a respective trustworthiness of the first user who is within the respective trust networks of the other users, wherein the respective trust networks of the other users comprise one or more levels of trust the other users have for each user on the respective trust networks of the other users, wherein the recommendations are based on the categories for the products or services; the further users determine a respective trustworthiness of the other users who are within the respective trust networks of the further users, wherein the respective trust networks of the further users comprise one or more levels of trust the further users have for each user on the respective trust networks of the further users, wherein the recommendations are based on the categories for the products or services; and a trustworthiness of the one or more recommendations by the first user for at least one of the further users is (a) the trustworthiness of the first user, as determined by at least one of the other users, multiplied by (b) the trustworthiness of the at least one of the other users, as determined by the at least one of the further users, such that the at least one of the other users is within a first level of the one or more levels of trust of the at least one of the further users, and such that the first user is within a second level of the one or more levels of trust of the at least one of the further users, and such that the first user is within a first level of the one or more levels of trust of the at least one of the other users; detecting and receiving, by the recommendation system (a) coupled to the software app by the first communication system and (b) from the second communication system of the content host without activating the second user interface of the content host, a target response from a third user posted in reply to the recommendation from the first user, who is within a trust network of a second user, who is within a trust network of the third user, wherein the at least one of the further users comprises the third user and wherein the at least one of the other users comprises the second user; determining, by the purchasing system, wherein the purchasing system comprises a fourth communication system coupled to the first communication system of the software app, whether the target response from the third user comprises a purchase decision regarding a desire to purchase a product or service, as recommended, by the first user via the content host, wherein the determining includes at least one of: determining whether the target response comprises one or more predefined keywords; determining whether the target response comprises one or more words from a set of words pre-determined by the third user to indicate the purchase decision; or using natural language processing; and in accordance with determining that the target response from the third user comprises the purchase decision: initiating, by the purchasing system to increase an efficiency of a purchase transaction of an online purchase for the third user to purchase the product or service associated with the recommendation from the first user, including: retrieving, by the purchasing system, information required for the purchase transaction from a user profile associated with the third user comprising payment information; when the information is sufficient to proceed with the purchase transaction, the purchasing system is further configured to proceed with the purchase transaction using the information, as received; when the information is not sufficient to proceed with the purchase transaction the purchasing system is further configured to prompt the third user to provide missing information required for the purchase transaction; confirming, by the purchasing system, the purchase transaction with the third user before finalizing the purchase transaction, wherein, during the confirming, the purchasing system is further configured to permit the third user to (a) edit details of the purchase transaction or (b) cancel the purchase transaction; and when the third user has not canceled the purchase transaction during the confirming, identifying, by the purchasing system, a vendor listed in a vendor database that sells the product or service, to allow the third user to purchase the product or service through the purchasing system coupled to the software app; and increasing, by the recommendation system coupled to the software app, a trust level from the third user toward the second user within the trust network of the third user after completing the purchase transaction for the third user. 2. The method of claim 1 , wherein the server system further comprises: storing, using the recommendation system, in a recommendation database, the recommendations by the first user, the other users, and the further users, wherein a portion of the recommendations by the first user are retained for a pre-set period of time based on at least one of a date of the portion of the recommendations by the first user, the respective trustworthiness of the first user, the other users, and the further users, or a popularity of the recommendation by the first user. 3. The method of claim 2 , wherein the server system further comprises: storing in the recommendation database, responses to the recommendation of the first user determined to comprise purchase decisio
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