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A Filtering Method for Inhomogeneous Scattered Point Cloud Data

A point cloud data and scattered point technology, applied in the direction of electrical digital data processing, special data processing applications, instruments, etc., can solve the problems of geometric feature weakening, model hole expansion, weakening model geometric features, etc., to reduce false rejection rate, The effect of preventing hole expansion and maintaining geometric characteristics

Inactive Publication Date: 2017-05-03
CHINA UNIV OF MINING & TECH (BEIJING)
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  • Abstract
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  • Claims
  • Application Information

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Problems solved by technology

When dealing with uneven and scattered point clouds, the smoothing denoising method may mistake the non-noise area with sparse sampling points as noise, resulting in enlarged model holes and weakened geometric features after smoothing; while the method of removing bad points has an obvious effect in removing large-scale noise , but cannot remove small-scale noise and weaken the geometric features of the model. The above two types of denoising methods are difficult to adapt to noise of different scales and maintain the original geometry of the goaf when dealing with uneven and scattered point cloud noise.

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  • A Filtering Method for Inhomogeneous Scattered Point Cloud Data
  • A Filtering Method for Inhomogeneous Scattered Point Cloud Data
  • A Filtering Method for Inhomogeneous Scattered Point Cloud Data

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Embodiment Construction

[0017] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by persons of ordinary skill in the art without making creative efforts belong to the protection scope of the present invention.

[0018] The filtering method for uneven and scattered point cloud data described in the embodiment of the present invention constructs the approximation view plane under different local densities based on the relative density of the neighborhood, adapts to noise of different scales, and solves the phenomenon of model holes, uneven density distribution and shape Problems caused by irregularities, etc. Embodiments of the present invention will be furt...

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Abstract

The invention discloses a filter method of nonuniform unorganized-point cloud data. The method comprises the steps of index organizing the unorganized-point cloud data of a gob, and organizing the point cloud data to a data model of a cubic regular grid; determining a grid approximation plane S by selecting the gravity core of three adjacent grids with most grid measured points; solving a shortest distance h from each measured point in the grid to the grid approximation plane S by utilizing a normal vector n; determining a filter range, and eliminating a noise point; adjusting the size of the regular grid for the filtered point cloud data, and repeating the steps to iterate the filter. By adopting the filter method, the loud noise and partial low noise can be effectively eliminated, and the elimination error rate of the nonuniform data can be reduced.

Description

technical field [0001] The invention relates to the technical field of point cloud data processing, in particular to a filtering method for uneven and scattered point cloud data. Background technique [0002] At present, 3D scanning technology has improved the accuracy of deformation detection of 3D measurement objects and provided an effective basis for formulating and optimizing later support schemes. Due to the complexity of the measurement environment and the influence of the scanner's own errors, the acquired original point cloud data contains a lot of noise, resulting in a large error between the 3D reconstruction model and the geometry of the actual measurement object. In order to obtain a more accurate 3D reconstruction model, in the analysis Based on the original point cloud data and noise sources, it is necessary to effectively denoise the point cloud data. [0003] The noise of goaf point cloud data mainly has three forms: regional floating noise, isolated noise ...

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Application Information

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Patent Type & Authority Patents(China)
IPC IPC(8): G06F17/30
CPCG06F16/215
Inventor 朱红刘虹陈绪锋张国英刘冠洲
Owner CHINA UNIV OF MINING & TECH (BEIJING)
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