NEURAL NETWORK FEATURE DETECTOR FOR REAL-TIME VIDEO SIGNAL PROCESSING

1993 ◽  
Vol 04 (04) ◽  
pp. 337-349
Author(s):  
DAVID NAYLOR ◽  
SIMON JONES ◽  
DAVID MYERS ◽  
JOHN VINCENT

The application of artificial neural networks to real-time image processing tasks requires the use of dedicated, high performance hardware. A linear array processor called HANNIBAL has been developed which implements the backpropagation neural learning algorithm on-chip. This paper considers the design of a complete neural system which integrates HANNIBAL into an existing image processing environment. The goals for the design of the system have been set partly by the primary application, namely feature recognition, but mainly by the desire for a flexible, high performance hardware tool for the study and evaluation of range of neural image processing applications.

2012 ◽  
Vol 433-440 ◽  
pp. 5482-5488 ◽  
Author(s):  
Su Ran Kong

Image processing system to calculate the volume, real-time high and the requirements of small size, using the DSP-based processor, FPGA approach, supplemented by the processor design of a high-performance real-time image processing system, and the system In the process of image acquisition and transmission of noise, using the PCB's anti-jamming design. Practice shows that two chips using FPGA + DSP, the algorithm is divided into two parts by the FPGA and DSP processing; effectively improve the efficiency of the algorithm. System real-time high, adaptability, real-time image acquisition system can meet the design requirements.


2011 ◽  
Vol 130-134 ◽  
pp. 2107-2110 ◽  
Author(s):  
Yi Ding Zhao ◽  
Ming Feng Sun

In this paper, an image processing and recognition system of the coal and gangue has been studied. We adopt digital video processing technology of high performance---DaVinci technology to design the system, which is made up by the chip DM6437 and some peripheral auxiliary equipment. The system takes advantage of the high performance of the chip to process the real-time image collected by the CCD camera. The system uses optimized image processing and recognition algorithms, and makes the recognition of coal and gangue by the different characteristic of their histograms. In the system, the histogram and processing image of coal and gangue can be displayed on the monitor.


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