Invention Grant
- Patent Title: Recommendation engine using inferred deep similarities for works of literature
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Application No.: US14491052Application Date: 2014-09-19
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Publication No.: US09613098B2Publication Date: 2017-04-04
- Inventor: Corville O. Allen , Scott R. Carrier , Eric Woods
- Applicant: International Business Machines Corporation
- Applicant Address: US NY Armonk
- Assignee: International Business Machines Corporation
- Current Assignee: International Business Machines Corporation
- Current Assignee Address: US NY Armonk
- Agency: Reza Sarbakhsh
- Agent Robert H. Frantz
- Main IPC: G06F17/30
- IPC: G06F17/30

Abstract:
A recommendation engine for works of literature uses patterns of flow and element similarities for scoring a first user-rated work of literature against one or more recommendation candidate works of literature. Cluster models are created using meta-data modeling the works of literature, the meta-data having literary element categories and instances within each category. Each instance is described by an index value (position in the literature) and significance value (e.g. weight or significance). Cluster finding process(es) invoked for each instance in each category find Similarity Concept clusters and Consistency Trend clusters, which are recorded into the cluster models representing each work of literature. The cluster model can be printed or displayed so that a user can visually understand the ebb and flow of each literary element in the literature, and may be digitally compared to other cluster models of other works of literature for potential recommendation to a user.
Public/Granted literature
- US20150154278A1 Recommendation Engine using Inferred Deep Similarities for Works of Literature Public/Granted day:2015-06-04
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