US2019394510A1PendingUtilityA1

Method and system for recommending dynamic, adaptive and non-sequentially assembled videos

Assignee: VENKATRAMAN N DILIPPriority: Jul 9, 2016Filed: Sep 6, 2019Published: Dec 26, 2019
Est. expiryJul 9, 2036(~9.9 yrs left)· nominal 20-yr term from priority
H04N 21/251H04N 21/26258H04N 21/232H04N 21/231H04N 21/25875H04N 21/8456H04N 21/2393H04N 21/8405H04N 21/2668H04N 21/25891G06F 16/7867H04N 21/26603H04N 21/235H04N 21/8549
52
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Claims

Abstract

The present disclosure provides a non-transitory computer usable storage memory for recommending dynamic, adaptive and non-sequentially assembled videos. The method includes reception of a set of preference data and a set of user authentication data. The method includes development of an interest profile of the user. The method includes fetching of one or more tagged videos. The method includes fragmentation of each tagged video into one or more tagged fragments and segregation of one or more mapped fragments into one or more logical sets of mapped fragments. The method includes mining of semantic context information from each mapped fragment and each logical set of mapped fragments. The method includes clustering of the one or more logical sets of mapped fragments and assembling of the one or more logical clusters of mapped fragments to obtain a set of assembled videos. The method includes recommendation of the set of assembled videos.

Claims

exact text as granted — not AI-modified
We claim: 
     
         1 . A non-transitory computer usable storage memory encoding computer executable instructions that, when executed by at least one processor, performs a method for recommending one or more dynamic, adaptive and non-sequentially assembled videos, the method comprising:
 receiving at a computing device, a set of preference data associated with a user from a pre-defined selection criteria and a set of user authentication data, wherein the pre-defined selection criteria corresponds to a digitally processed repository of videos;   developing at the computing device, an interest profile of the user, wherein the interest profile being developed based on an analysis of a set of statistical data;   fetching at the computing device, one or more tagged videos related to the set of preference data of the user from the digitally processed repository of videos, wherein the one or more tagged videos being fetched based on a correlation of a set of tags associated with each video of the one or more tagged videos with the set of preference data associated with the user;   fragmenting at the computing device, each tagged video of the one or more tagged videos into one or more tagged fragments, wherein each tagged video being fragmented into the one or more tagged fragments, wherein each tagged fragment being characterized by a pre-determined interval of time and wherein each tagged video being fragmented based on segmentation of the tagged video for each pre-determined interval of time;   segregating at the computing device, one or more mapped fragments of the one or more tagged fragments into one or more logical sets of mapped fragments, wherein the one or more mapped fragments being segregated based on a positive mapping of keywords from the set of preference data with the set of tags associated with each tagged fragment of the one or more tagged fragments;   mining at the computing device, semantic context information from each mapped fragment of the one or more mapped fragments and each logical set of mapped fragments of the one or more logical sets of mapped fragments, wherein the semantic context information comprises an object specific context information and scene specific context information of each mapped fragment and each logical set of mapped fragments; and   clustering at the computing device, the one or more logical sets of mapped fragments into corresponding one or more logical clusters of mapped fragments;   assembling at the computing device, at least one of the one or more logical clusters of mapped fragments in a pre-defined order of preference to obtain a set of assembled videos, wherein each logical cluster of mapped fragments being assembled based on an analysis of the semantic context information and the set of preference data; and   recommending at the computing device, the set of assembled videos in real time, wherein the set of assembled videos being recommended based on the analysis of the semantic context information and the interest profile of the user and wherein the set of assembled videos being recommended through one or more techniques.   
     
     
         2 . The non-transitory computer usable storage memory as recited in  claim 1 , further comprising creating at the video recommendation system with the processor, a user profile corresponding to the received set of user authentication data and the set of preference data, wherein the user profile comprises the set of preference data segregated on a basis of the pre-defined selection criteria, the set of user authentication data, a past set of preference data, a physical access location of the user and a bio data of the user and wherein the set of user authentication data comprises an email address, the bio data of the user, an authentication key, a physical location and a time of request of video. 
     
     
         3 . The non-transitory computer usable storage memory as recited in  claim 1 , further comprising transcoding at the video recommendation system with the processor, the set of assembled videos into a pre-defined video format by utilizing a codec, wherein each of the set of assembled videos being transcoded to enable adaptive bitrate streaming based on one or more device parameters and one or more network parameters, wherein the one or more device parameters comprises screen size, screen resolution and pixel density and wherein the one or more network parameters comprises an IP address, network bandwidth, maximum bitrate support over network, throughput, connection strength and location of requesting server. 
     
     
         4 . The non-transitory computer usable storage memory as recited in  claim 1 , further comprising rendering at the video recommendation system with the processor, the set of assembled videos for adding one or more interactive elements and bi-directional flow. 
     
     
         5 . The non-transitory computer usable storage memory as recited in  claim 1 , further comprising updating at the video recommendation system with the processor, the set of assembled videos in the digitally processed repository of videos, the user profile of the user based on variations in the set of preference data, the interest profile of the user and the set of user authentication data in the real time. 
     
     
         6 . The non-transitory computer usable storage memory as recited in  claim 1 , wherein the set of statistical data comprises a current set of preference data, the past set of preference data, the set of user authentication data, a physical location of the user, a bio data of the user, wherein the set of user authentication data comprises an email address, a user id, an authentication key and a time of request of video and wherein the bio data of the user comprises a first name, a middle name, a last name, a nickname, gender and a chronological age. 
     
     
         7 . The non-transitory computer usable storage memory as recited in  claim 1 , wherein the set of user authentication data comprises an email address, the bio-data of the user, an authentication key, a physical location and a standard time and time zone of login. 
     
     
         8 . The non-transitory computer usable storage memory as recited in  claim 1 , wherein the pre-defined selection criteria being based on date, time zone, day, season, physical location, occasion, an identified name and a video genre. 
     
     
         9 . The non-transitory computer usable storage memory as recited in  claim 1 , 
     
     
         10 . The non-transitory computer usable storage memory as recited in  claim 1 , wherein each tagged video of the one or more tagged videos being manually tagged by at least one of one or more publishers. 
     
     
         11 . The non-transitory computer usable storage memory as recited in  claim 1 , wherein each tagged video of the one or more tagged videos being manually tagged by at least one of one or more system administrators. 
     
     
         12 . The non-transitory computer usable storage memory as recited in  claim 1 , wherein each tagged video of the one or more tagged videos being tagged based on voice instructions of one or more system administrators. 
     
     
         13 . The non-transitory computer usable storage memory as recited in  claim 1 , wherein each tagged video of the one or more tagged videos being tagged based on audio rendering and analysis. 
     
     
         14 . The non-transitory computer usable storage memory as recited in  claim 1 , wherein the one or more techniques comprises a pop up notification, a thumbnail based sidebar list, a dropdown list, an expandable list, one or more graphic tickers, a redirection to a new web page and an email notification.

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