AI Article Synopsis

  • The article discusses a new non-destructive method for analyzing moisture in walls and buildings, especially for historical structures, using electrical tomography.
  • A specialized hybrid tomograph with sensors was developed to collect data that can be reconstructed into 2D and 3D images of moisture levels in building materials like bricks and cement.
  • The research also involved analyzing various machine learning algorithms to improve the accuracy, efficiency, and cost-effectiveness of the imaging process for different types of walls.

Article Abstract

This article presents the results of research on a new method of spatial analysis of walls and buildings moisture. Due to the fact that destructive methods are not suitable for historical buildings of great architectural significance, a non-destructive method based on electrical tomography has been adopted. A hybrid tomograph with special sensors was developed for the measurements. This device enables the acquisition of data, which are then reconstructed by appropriately developed methods enabling spatial analysis of wet buildings. Special electrodes that ensure good contact with the surface of porous building materials such as bricks and cement were introduced. During the research, a group of algorithms enabling supervised machine learning was analyzed. They have been used in the process of converting input electrical values into conductance depicted by the output image pixels. The conductance values of individual pixels of the output vector made it possible to obtain images of the interior of building walls as both flat intersections (2D) and spatial (3D) images. The presented group of algorithms has a high application value. The main advantages of the new methods are: high accuracy of imaging, low costs, high processing speed, ease of application to walls of various thickness and irregular surface. By comparing the results of tomographic reconstructions, the most efficient algorithms were identified.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6068925PMC
http://dx.doi.org/10.3390/s18072285DOI Listing

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