Sorting method of ground-based visible light cloud picture

A classification method and visible light technology, applied in the field of classification of ground-based visible light cloud images, can solve problems such as many iterations, solving local minima, and difficulty in implementing large-scale training samples.

Inactive Publication Date: 2014-04-02
NANJING UNIV OF INFORMATION SCI & TECH
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Problems solved by technology

The K-nearest neighbor method is easily affected by the selection of the initial center of the category; the classic support vector machine only provides a binary classification algorithm, which is difficult to implement for large-scale training samples; the Bayesian classifier needs to know the exact distribu

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  • Sorting method of ground-based visible light cloud picture
  • Sorting method of ground-based visible light cloud picture
  • Sorting method of ground-based visible light cloud picture

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Embodiment Construction

[0034] The technical solutions of the present invention will be described in detail below with reference to the accompanying drawings.

[0035] The present invention proposes a ground-based visible light cloud image classification method based on a bag-of-words model and an extreme learning machine. The extreme learning machine model obtains a cloud image classifier, and identifies any ground-based visible light cloud image as a certain type of cloud. In this embodiment, the cloud map types are set to four, including cumulus clouds, cirrus clouds, stratiform clouds, and clear sky.

[0036] refer to figure 1 , the implementation steps of the present invention are as follows:

[0037] Step 1: Perform image preprocessing on the ground-based visible light cloud image to obtain a standard cloud image, and randomly classify the standard cloud image to obtain training samples and test samples.

[0038]Set an image size threshold T, and process 4 types of ground-based visible light...

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Abstract

The invention discloses a sorting method of a ground-based visible light cloud picture. The method comprises the following steps that 1, image preprocessing is performed on the ground-based visible light cloud picture to obtain standard cloud pictures, a plurality of images are selected randomly from the standard cloud pictures to be used as training samples, the rest are used as testing samples, and the number of the training samples is larger than that of the testing samples; 2, global features of the standard cloud pictures are extracted, and comprise textural features and color features, and the texture features comprise gray level co-occurrence matrixes and Tamura features; 3, a bag of words model is built on basis of SIFT (Scale-Invariant Feature Transform) feature descriptors, and local features of the standard cloud pictures are extracted; 4, the global features obtained in the step 2 and the local features obtained in the step 3 are linearly fused, and a limitation learning machine model is built for the training samples to obtain a cloud picture classifier; 5, sorting is performed on the testing samples by using the cloud picture classifier, and a final sorting result is obtained. The sorting is more accurate by using the sorting method of the ground-based visible light cloud picture.

Description

technical field [0001] The invention relates to a classification method for ground-based visible light cloud images, belonging to the technical fields of image information processing and meteorology. Background technique [0002] Clouds are an important part of the earth's heat balance and water-air cycle. The changes of clouds determine the earth's radiation budget and are an important factor in global climate change. Therefore, determining the type of cloud and understanding the distribution of cloud are crucial to the accuracy of weather forecast, the effectiveness of climate monitoring, the scientific nature of climate model establishment, and atmospheric sounding and atmospheric remote sensing. [0003] Satellite cloud images can provide information on the large-scale distribution and structure of large-scale clouds, but are limited by spatial resolution and unknown surface effects on thin and low clouds; while ground-based cloud observations have a small range and can ...

Claims

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Application Information

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IPC IPC(8): G06K9/62G06K9/66
Inventor 刘青山李林夏旻嵇朋朋
Owner NANJING UNIV OF INFORMATION SCI & TECH
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