Detection of communication topic change

US9513764B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9513764-B2
Application numberUS-201615095242-A
CountryUS
Kind codeB2
Filing dateApr 11, 2016
Priority dateMay 14, 2014
Publication dateDec 6, 2016
Grant dateDec 6, 2016

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  2. Abstract

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  5. First independent claim

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Abstract

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A computer processor determines a first span of a communication, wherein a span includes content associated with one or more dialog statements. If the content of the first span contains one or more topic change indicators which are identified by at least one detector of a learning model, the computer processor, in response, generates scores for each of the one or more indicators. The computer processor aggregates scores of the one or more indicators of the first span, which may be weighted, to produce an aggregate score. The computer processor compares the aggregate score to a threshold value, wherein the threshold value is determined during training of the learning model, and the computer processor, in response to the aggregate score crossing the threshold value, determines a topic change has occurred within the first span.

First claim

Opening claim text (preview).

What is claimed is: 1. A method for determining a topic change of a communication, the method comprising: monitoring, by a computer processor, a communication including a first span; determining, by a computer processor, the communication containing a set of dialog statements, wherein the first span of the communication includes one or more dialog statements of the set of dialog statements; determining, by the computer processor, if the one or more dialog statements of the first span include one or more indicators of a topic change, wherein the one or more indicators are identified by at least one detector of a learning model, wherein each of the one or more indicators of the topic change within the first span includes at least one of: a particular key phrase, a pause of particular duration, a particular activity on a participant's communication device, and a particular duration of the first span; responsive to determining the first span includes the one or more indicators of the topic change, generating, by the computer processor, a score for the one or more indicators, based on the learning model; responsive to the score for the one or more indicators triggering a threshold condition, determining, by the computer processor, a topic change within the first span, wherein the threshold condition is based on a determination of the topic change within the first span of the communication during training of the learning model, and wherein the threshold condition determined during training of the learning model includes: determining, by the computer processor, a weighted value for the at least one detector, based on heuristics, receiving input of labelled communication dialog statements, wherein the labelled communication dialog statements include one or more topic change indicators that are known, the one or more topic change indicators corresponding to the at least one detector, adjusting, by the computer processor, the weighted value of the at least one detector in response to a delta between an output of scores of the at least one detector of the learning model and scores of the one or more topic change indicators that are known, and determining, by the computer processor, the threshold condition in response to achieving an acceptable minimum for the delta between the output of the scores which are determined by the at least one detector of the learning model and the scores of the one or more topic change indicators that are known; generating, by the computer processor, a second span based on adjusting boundaries of the first span by performing at least one of, adding to the first span one or more dialog statements of the set of dialog statements not included in the first span, and removing one or more dialog statements from the first span; determining, by the computer processor, a score for the first span and a score for the second span, wherein the score for the first span and the score for the second span is based on a topic of the first span and a topic of the second span, respectively; responsive to the score of the second span being more favorable than the score of the first span, extracting, by the computer processor, one or more features from the one or more dialog statements of the second span not included in the first span, wherein extracting the one or more features from the one or more dialog statements of the second span, includes classifying the one or more features to correspond with the at least one detector of the learning model; and training, by the computer processor, the learning model to determine a topic change, based, at least in part, on including the one or more features from the one or more dialog statements of the second span, in at least one detector of the learning model.

Assignees

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Classifications

  • Speech to text systems (G10L15/08 takes precedence) · CPC title

  • G06N20/00Primary

    Machine learning · CPC title

  • Semantic analysis · CPC title

  • G06N5/04Primary

    Inference or reasoning models · CPC title

  • Grammatical analysis; Style critique · CPC title

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What does patent US9513764B2 cover?
A computer processor determines a first span of a communication, wherein a span includes content associated with one or more dialog statements. If the content of the first span contains one or more topic change indicators which are identified by at least one detector of a learning model, the computer processor, in response, generates scores for each of the one or more indicators. The computer p…
Who is the assignee on this patent?
IBM
What technology area does this patent fall under?
Primary CPC classification G06N20/00. Mapped technology areas include Physics.
When was this patent published?
Publication date Tue Dec 06 2016 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 2 related publications on this page (citations in our corpus or others sharing the same primary CPC).