02837nam a2200265 a 450000500170000000800410001703500150005810000210007324500640009426000550015830000220021350000940023552019020032965000260223165000110225770000320226870000450230070000470234571000390239285600650243190700250249690200110252199800280253299900110256020260817161123.0  a.b123395071 aSakol Kitkasiwat10a2D irregular shape parts recognition for automatic assembly aPathumthani:bAsian Institute of Technology,c2014 e1 online resource aThe degree of Master of Engineering in Mechatronics, School of Engineering and Technology aThis thesis is to develop matching algorithm for assembling 2D irregular shape parts. The algorithm was implemented based on a real process. The algorithm focuses on parts identification and matching. Given parts are always placed to a working area of assembling process randomly. This system has to assemble any parts following a design. In order to achieve this process, there are three main procedures as follow: image enhancement, part recognition and toolpath generation. Firstly, image enhancement, a given image and a designing image is transformed to one-pixel wide closed contour binary image to analyze the contour information after the both of them are acquired by capturing from a working area of an assembling process. This algorithm can extract contour information from raw images. Secondly, part recognition, the purposed algorithm of this process is to create index descriptions and match parts from index information. The parts images initially, are traced to create group of contours with x,y coordinates. Then the algorithm generates four index descriptions in which can specify the parts differences under a polygon-like concept. The index descriptions can show the estimated detail of each object shape. By using the index description, the algorithm then matches the given parts to a design and makes matched pairs. Lastly, toolpath generation, this technique has been developed to search a efficient toolpath of assembly. There are two sections for calculation in this process. the first section is to manipulate the part orientation in order to make a machine assemble part in a correct angle. The second section is to select a suitable toolpath of assembly. This study attempts to investigate the performance of the algorithm by testing with several types of part. The result of all experiments shows the efficiency of the algorithm for assembling polygon and non-polygon. 0aAssembly -line method 0aShapes0 aPisut Koomsap,eChairperson1 aBohez, Erik L.J.,eExamination Committee0 aManukid Parnichkun,eExamination Committee2 aAIT Fellowship,eScholarship donor 3Full-Textuhttp://203.159.5.9/ait-thesis/detail.php?q=B04684 a.b12339507bmnaitcj a240423 b0c200108dmea fjg0 c21d21