Detection of Underwater Marine Plastic Debris Using an Augmented Low Sample Size Dataset for Machine Vision System: A Deep Transfer Learning Approach

Author(s):  
Japhet C. Hipolito ◽  
Alvin Sarraga Alon ◽  
Ryndel V. Amorado ◽  
Maricel Grace Z. Fernando ◽  
Poul Isaac C. De Chavez
Agronomy ◽  
2020 ◽  
Vol 10 (7) ◽  
pp. 1027
Author(s):  
Md Sultan Mahmud ◽  
Qamar U. Zaman ◽  
Travis J. Esau ◽  
Young K. Chang ◽  
G. W. Price ◽  
...  

Strawberry cropping system relies heavily on proper disease management to maintain high crop yield. Powdery mildew, caused by Sphaerotheca macularis (Wall. Ex Fries) is one of the major leaf diseases in strawberry which can cause significant yield losses up to 70%. Field scouts manually walk beside strawberry fields and visually observe the plants to monitor for powdery mildew disease infection each week during summer months which is a laborious and time-consuming endeavor. The objective of this research was to increase the efficiency of field scouting by automatically detecting powdery mildew disease in strawberry fields by using a real-time machine vision system. A global positioning system, two cameras, a custom image processing program, and a ruggedized laptop computer were utilized for development of the disease detection system. The custom image processing program was developed using color co-occurrence matrix-based texture analysis along with artificial neural network technique to process and classify continuously acquired image data simultaneously. Three commercial strawberry field sites in central Nova Scotia were used to evaluate the performance of the developed system. A total of 36 strawberry rows (~1.06 ha) were tested within three fields and powdery mildew detected points were measured manually followed by automatic detection system. The manually detected points were compared with automatically detected points to ensure the accuracy of the developed system. Results of regression and scatter plots revealed that the system was able to detect disease having mean absolute error values of 4.00, 3.42, and 2.83 per row and root mean square error values of 4.12, 3.71, and 3.00 per row in field site-I, field site-II, and field site-III, respectively. The slight deviation in performance was likely caused by high wind speeds (>8 km h−1), leaf overlapping, leaf angle, and presence of spider mite disease during field testing.


1999 ◽  
Vol 11 (3) ◽  
pp. 220-224 ◽  
Author(s):  
Naoshi Kondo ◽  
◽  
Mitsuji Monta

Cutting sticking operation is essential on a chrysanthemum production to enhance its productivity. Since it is said that several hundred chrysanthemum seedlings are produced in a year in Japan, it takes a long time and much labor to do the sticking operation and automation of the monotonous operation is desired. A robotic cutting sticking system mainly consisted of four sections; a cutting providing system, a machine vision system, a leaf removing device, and a sticking device. First, a bundle of cuttings was put into a water tank. The cuttings were spread out on the water by vibration of the water tank. The cuttings were picked by a manipulator based on information of cutting positions from a TV camera and sent them one by one to next stage. Secondly, another TV camera detected the position and orientation of the transported cutting and indicated a grasping point in the cutting stem for another manipulator moving. Thirdly, the manipulator moved the cutting to a sticking device through a leaf removing device to cut lower leaves, and then 10 cuttings were stuck into a tray at a time.


Fast track article for IS&T International Symposium on Electronic Imaging 2020: Stereoscopic Displays and Applications proceedings.


2005 ◽  
Vol 56 (8-9) ◽  
pp. 831-842 ◽  
Author(s):  
Monica Carfagni ◽  
Rocco Furferi ◽  
Lapo Governi

2012 ◽  
Vol 546-547 ◽  
pp. 1382-1386
Author(s):  
Yin Xia Liu ◽  
Ping Zhou

In order to promote the application and development of machine vision, The paper introduces the components of a machine vision system、common lighting technique and machine vision process. And the key technical problems are also briefly discussed in the application. A reference idea for application program of testing the quality of the machine parts is offered.


Mechatronics ◽  
2006 ◽  
Vol 16 (5) ◽  
pp. 243-247 ◽  
Author(s):  
Zhenwei Su ◽  
Gui Yun Tian ◽  
Chunhua Gao

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