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   Reducing false detection during inspection of HDD using super resolution image processing and deep learning  
   
نویسنده ieamsaard j. ,sandnes f.e. ,muneesawang p.
منبع journal of telecommunication, electronic and computer engineering - 2017 - دوره : 9 - شماره : 2-5 - صفحه:91 -95
چکیده    High false detection rates are a key reliability challenge in the hard disk drive (hdd) industry. therefore,automatic visual inspection is increasingly employed for hdd inspection. in order to improve the quality and reliability of hdd products,the false detection rate must be reduced. this paper presents a super-resolution image-based method for improving the performance of head gimbals assembly (hga) inspection. the experimental results confirm the efficiency of the super-resolution image processing for improving automatic inspection of defects such as pad burning and micro contaminations. moreover,combining super resolution image processing with deep learning reduces the false detection rate and improves the accuracy of hga inspection.
کلیدواژه Contamination Detection; HGA Inspection; Image Super Resolution; Solder Ball Defect
آدرس dept. of electrical and computer eng.,faculty of eng.,naresuan university,phitsanulok, Thailand, institute of information technology,faculty of technology art and design,akershus university college of applied sciences,oslo,norway,westerdals oslo school of art,communication and technology,oslo, Norway, dept. of electrical and computer eng.,faculty of eng.,naresuan university,phitsanulok, Thailand
 
     
   
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