An Intelligent Floating Object Salvage System Based on Neural Network and Image Recognition

A technology for floating objects and image recognition on the water surface, applied in the field of neural network and image recognition, can solve problems such as reducing feature resolution, and achieve the effect of simple and accurate control

Active Publication Date: 2021-05-18
CHONGQING UNIV OF POSTS & TELECOMM
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AI Technical Summary

Problems solved by technology

Each convolutional layer in the convolutional neural network is followed by a calculation layer for local averaging and secondary extraction. This unique feature extraction structure reduces the feature resolution.

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  • An Intelligent Floating Object Salvage System Based on Neural Network and Image Recognition
  • An Intelligent Floating Object Salvage System Based on Neural Network and Image Recognition
  • An Intelligent Floating Object Salvage System Based on Neural Network and Image Recognition

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Embodiment Construction

[0038] The technical solutions in the embodiments of the present invention will be described clearly and in detail below with reference to the drawings in the embodiments of the present invention. The described embodiments are only some of the embodiments of the invention.

[0039] The technical scheme that the present invention solves the problems of the technologies described above is:

[0040] refer to figure 1 , figure 1 A flow chart of salvaging floating objects on the water surface based on image processing and image recognition is provided for the embodiment of the present invention, specifically including:

[0041] S101: Catamaran structure model: Under the condition of carrying an image processing and analysis platform, the stability of the hull is an important factor that cannot be ignored. Therefore, this system adopts the structure of a catamaran, and the hull structure (reference figure 2 ) is divided into three parts: 1. Two monohulls (called the hull) 2. Co...

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Abstract

The present invention claims protection for an intelligent surface floating object salvage system based on neural network and image recognition, which relates to the field of intelligent recognition and automatic control, including 1) catamaran structure modeling; 2) image acquisition and processing; 3) image recognition model Modeling; 4) Hull control model modeling, according to the comparison between the coordinates of the floating objects identified in the image and the coordinates of the third bisector of the recognition area, the deflection direction at the next moment is obtained through a linear function; 5) Intelligent water surface floating object salvage The construction of the system consists of assembling a single-chip microcomputer, battery, engine, radiator, salvage net, wide-angle camera, PC and other equipment into an intelligent water surface floating object salvage ship, and then burning the constructed hull control program into the intelligent water surface floating object identification system In the single-chip microcomputer, the functions such as steering, cruising, and U-turn of the intelligent water surface floating object identification system are realized. The present invention can automatically, quickly and efficiently salvage the water surface floating objects without human control, and realize autonomous dredging.

Description

technical field [0001] The invention belongs to neural networks and related methods of image recognition, and specifically relates to the fields of convolutional neural networks, image processing and automatic control. Background technique [0002] Convolutional Neural Network (CNN) is a feedforward neural network. Its artificial neurons can respond to surrounding units within a part of the coverage area, and it has excellent performance for large-scale image processing. It includes convolutional layers and pooling layers. [0003] Convolutional neural network is an efficient recognition method that has been developed in recent years and has attracted widespread attention. In the 1960s, Hubel and Wiesel found that its unique network structure can effectively reduce the complexity of the feedback neural network when studying the neurons used for local sensitivity and direction selection in the cat cerebral cortex, and then proposed the convolutional neural network ( Convolu...

Claims

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Application Information

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Patent Type & Authority Patents(China)
IPC IPC(8): G06K9/62B63C7/00
CPCB63C7/00G06F18/2413
Inventor 邓欣刘瑞米建勋明伟胡家宾王泽鸿王进孙开伟
Owner CHONGQING UNIV OF POSTS & TELECOMM
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