Selection method for marking strategy, and related device

A strategy and data labeling technology, applied in the computer field, can solve problems such as waste of human resources, lack of corresponding improvement in the overall effect of model training, and cost investment, and achieve the effect of reducing labor costs

Active Publication Date: 2018-06-19
北京中关村科金技术有限公司
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Problems solved by technology

At this time, investing a lot of labor costs does not improve the overall effect of model training, resulting in so

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  • Selection method for marking strategy, and related device
  • Selection method for marking strategy, and related device
  • Selection method for marking strategy, and related device

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Embodiment Construction

[0041]At present, in the field of supervised learning, for training supervised learning models, machine learning is mainly performed through labeled data sets. Among them, the quality of the labeled data set determines the quality of the final result of supervised learning, and the quality of the labeled data set is affected by various factors in the labeling process. In order to ensure the quality of labeling, it often takes a lot of labor costs, but sometimes the labeling results of the labeled data sets have reached the expected results, but the original labeling strategy and the amount of labeled data are still used for labeling, using a lot of Human cost, resulting in the waste of human cost.

[0042] Therefore, the core of this application is to provide a method for selecting a labeling strategy, a selection device, a server, and a computer-readable storage medium. By obtaining the amount of training data, labeling accuracy, and recognition accuracy of a certain labeling...

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Abstract

The invention discloses a selection method for a marking strategy, and the method comprises the steps: carrying out the simulated marking processing and supervised learning training of a marked data set through employing a plurality of marking strategies, carrying out the training of a regression prediction model according to the index data in the process, and obtaining corresponding regression prediction models; carrying out the prediction calculation according to the index data through all regression prediction models when the index data of a marking task is obtained, and obtaining a prediction result; determining the marking strategy with the minimum manpower cost as the marking strategy to be used according to a prediction result and an expected result. The index data in the simulatedmarking processing is obtained and trained for obtaining the regression prediction models, the method can achieve the prediction of the marking strategy, and the marking strategy with the minimum manpower cost is determined according to a prediction result, thereby reducing the manpower cost while guaranteeing the training effect. The invention also discloses a selection device for the marking strategy, a server, and a computer readable storage medium, which all have the above beneficial effects.

Description

technical field [0001] The present application relates to the field of computer technology, and in particular to a method for selecting a labeling strategy, a selection device, a server, and a computer-readable storage medium. Background technique [0002] With the development of information technology, machine learning technology has been applied to more and more fields to improve the efficiency of dealing with problems in different application scenarios. Machine learning is mainly to train through a large amount of data to obtain an accurate recognition model. At the same time, it is necessary to continuously use the original data to test the recognition model to judge whether the recognition model meets the learning requirements. [0003] Among them, machine learning technology mainly has two learning methods, supervised learning and unsupervised learning. Supervised learning requires continuous human intervention during the learning process to adjust the state of the tr...

Claims

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Application Information

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IPC IPC(8): G06K9/62G06F17/18
CPCG06F17/18G06F18/214
Inventor 赵开云何朋
Owner 北京中关村科金技术有限公司
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