Dispute focus category and similarity judgment method, system and device and recommendation method

A category judgment and focus technology, which is applied in the field of dispute focus category and similarity judgment method, system and device, and recommendation field, can solve the problems of low accuracy and low efficiency of classification results, and achieve improved robustness and prediction accuracy, Guarantee the overall efficiency and fast effect

Active Publication Date: 2021-10-01
CHENGDU UNION BIG DATA TECH CO LTD
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  • Description
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  • Application Information

AI Technical Summary

Problems solved by technology

[0003] 1) Transform the sentence similarity problem, which is the focus of controversy, into a multi-classification task. This method faces the problem of small-sample learning. Usually, the categories marked by each case are greater than 100, and the number of samples in each category is less than 10, which will easily lead to the accuracy of the classification results. Low
[0004] 2) Using semantic similarity matching technology, in order to better judge whether the semantic similarity of two controversial sentences is usually an interactive model, the accuracy rate of this method is generally higher than that of the first method , but the main problem of this method is that the query focus sentence needs to interact with each marked dispute focus sentence during inference, and then determine the classification or extract similar dispute focus sentences, which will be less efficient

Method used

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Embodiment 1

[0057] Please refer to figure 1 , figure 1 It is a schematic flow chart of the method for judging the category of the focus of dispute. The present invention provides a method for judging the category of the focus of dispute. The method includes:

[0058] extracting the first sentence data of the focus of dispute from the data of the judgment document, marking the data of the first sentence focus of dispute with the category of focus of dispute to obtain the data of the second sentence data of focus of dispute;

[0059] Constructing a recall data set based on the second dispute focus sentence data, the structure of the data elements in the recall data set is: (dispute focus sentence a, dispute category of a);

[0060] Based on the data of the second focus of dispute sentence data, the refined data set is constructed, and the structure of the data elements in the refined data set is: (the focus of dispute sentence a, a similar focus of dispute sentence corresponding to a) and ...

Embodiment 2

[0070] Embodiment 2 of the present invention also provides a method for judging the similarity of the focus of dispute, the method comprising:

[0071] Obtain the first sentence of focus of dispute and the second sentence of focus of dispute whose similarity is to be judged;

[0072] Obtaining the focus category of the first focus of dispute statement and the focus of dispute category of the second focus of dispute statement using the determination method for the focus of dispute category;

[0073] If the focus category of the first focus of dispute sentence is the same as the focus of dispute category of the second focus of dispute sentence, it is determined that the first focus of dispute sentence is similar to the second focus of dispute sentence;

[0074] If the dispute category of the first focus-of-dispute sentence is different from the dispute category of the second focus-of-dispute sentence, it is determined that the first sentence-focus of dispute is not similar to th...

Embodiment 3

[0077] Embodiment 3 of the present invention also provides a case recommendation method, the method includes:

[0078] Obtain the focus sentence m of the pending case A;

[0079] Using the method for judging the similarity of the focus of dispute to match a number of third focus of dispute sentences similar to the sentence m of focus of dispute from the database of focus of dispute sentences;

[0080] A number of cases B similar to the case A to be processed are obtained based on the third focus of dispute statement, and the case B is pushed to a preset target.

[0081]Among them, the method for recommending similar cases in Embodiment 3 of the present invention firstly obtains the focus of dispute sentence of the case, and then judges the sentence of focus of dispute similar to the sentence of focus of dispute through the method of judging the similarity of focus of dispute. Find the corresponding case, and then push the case to the corresponding target, realizing the fast a...

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Abstract

The invention discloses a dispute focus category and similarity judgment method, system and device and a recommendation method, and belongs to the field of natural language processing. The dispute focus category and similarity judgment method comprises data set construction, model construction and training. According to the invention, a recall model and a refined arrangement model are used in the whole architecture; the recall model directly classifies dispute focuses, the accuracy is limited, but the speed is high, so the overall efficiency is guaranteed; the refined model makes full use of a Self-attention mechanism of bert to perform semantic interaction on dispute focuses, and although the speed is slightly slow, the accuracy is high; therefore, the speed and the accuracy are effectively balanced by the recall-refined dual model.

Description

technical field [0001] The present invention relates to the field of natural language processing, in particular, to a method, system and device for judging the category of the focus of dispute and similarity, and a recommendation method. Background technique [0002] At present, the main methods of judging the similarity of sentences that are the focus of disputes in the judicial field are as follows: [0003] 1) Transform the sentence similarity problem, which is the focus of controversy, into a multi-classification task. This method faces the problem of small-sample learning. Usually, the categories marked by each case are greater than 100, and the number of samples in each category is less than 10, which will easily lead to the accuracy of the classification results. Low. [0004] 2) Using semantic similarity matching technology, in order to better judge whether the semantic similarity of two controversial sentences is usually an interactive model, the accuracy rate of t...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): G06F16/35G06F16/332G06F40/30G06K9/62
CPCG06F16/35G06F16/3329G06F40/30G06F18/214Y02D10/00
Inventor 李鑫翁洋王竹其他发明人请求不公开姓名
Owner CHENGDU UNION BIG DATA TECH CO LTD
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