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Ȩ Ȩ > ¿¬±¸¹®Çå > ±¹³» ³í¹®Áö > Çѱ¹Á¤º¸Åë½ÅÇÐȸ ³í¹®Áö (Journal of the Korea Institute of Information and Communication Engineering)

Çѱ¹Á¤º¸Åë½ÅÇÐȸ ³í¹®Áö (Journal of the Korea Institute of Information and Communication Engineering)

Current Result Document : 27 / 42 ÀÌÀü°Ç ÀÌÀü°Ç   ´ÙÀ½°Ç ´ÙÀ½°Ç

ÇѱÛÁ¦¸ñ(Korean Title) ÀÚ±âÁ¶Á÷È­ ½Å°æ¸ÁÀ» ÀÌ¿ëÇÑ ´ÙÁß Ç¥Àû ÃßÀû¿¡ °üÇÑ ¿¬±¸
¿µ¹®Á¦¸ñ(English Title) A Study on Multiple Target Tracking Using Self-Organizing Neural Network
ÀúÀÚ(Author) ¼­Ã¢Áø   ±è±¤¹é   Chang-Jin Seo   Gwang-Baek Kim  
¿ø¹®¼ö·Ïó(Citation) VOL 07 NO. 06 PP. 1304 ~ 1311 (2003. 11)
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(Korean Abstract)
½Ç¼¼°èȯ°æ¿¡¼­ ¹°Ã¼¸¦ ÃßÀûÇÏ´Â ±â¼úÀº ¿µ»óÀÇ Áö¼ÓÀûÀÎ º¯È­ ¹× ¿µ»óµ¥ÀÌÅÍ ¹æ´ëÇÔ°ú 󸮼ӵµÀÇ ¹®Á¦·Î ÀÎÇÏ¿© ÇØ°áÇϱ⠾î·Á¿î ¹®Á¦ÀÌ´Ù. ƯÈ÷ ÇØ»ó°ú °°Àº ȯ°æ¿¡¼­´Â ´õ¿í ¾î·Á¿î Çö½ÇÀÌ´Ù. º» ³í¹®¿¡¼­´Â º¹ÀâÇÑ È¯°æ¿¡¼­ ¹°Ã¼¸¦ ÃßÀûÇÏ°í ŽÁöÇϱâ À§ÇÑ ¹æ¹ýÀ¸·Î ÀÚ±âÁ¶Á÷È­ ½Å°æ¸ÁÀ» »ç¿ëÇÏ¿© ±¸¼ºÇÏ¿´´Ù. º» ³í¹®¿¡¼­ÀÇ Á¢±Ù ¹æ¹ýÀº ÄÚÈ£³ÙÀÇ ÀÚ±â Á¶Á÷È­ ½Å°æ¸Á ºÐ¼® ±â¹ý°ú ¿µ¿ªÈ®Àå ±â¹ý ¹× ¿¡³ÊÁö ÃÖ¼ÒÈ­ÇÔ¼ö¸¦ ÀÌ¿ëÇÏ¿© ¹°Ã¼ ÃßÀû½Ã½ºÅÛÀ» ±¸¼ºÇÏ¿´´Ù. ÀÚ±âÁ¶Á÷È­ ½Å°æ¸ÁÀº ÇϳªÀÇ ÇÁ·¹ÀÓ ³»¿¡¼­ À̵¿ÇÏ´Â ¹°Ã¼ÀÇ Áß½ÉÁ¡À» ŽÁöÇÒ ¼ö ÀÖ´Ù. ±×¸®°í ¿¬¼ÓÀûÀÎ ¿µ»ó¿¡¼­ ÀÌÀü¿¡ ŽÁöµÇ¾îÁø ´º·±ÀÇ À§Ä¡¸¦ ÀÌ¿ëÇÏ¿© ¹°Ã¼¸¦ ÃßÀûÇÒ ¼ö ÀÖ´Ù. ÀÚ±âÁ¶Á÷È­ ½Å°æ¸ÁÀ» ÀÌ¿ëÇÑ ¹°Ã¼ ÃßÀûÀÇ ½ÇÇè°á°ú ´Ù¾çÇÑ È¯°æÀÇ º¯È­¿¡¼­µµ ¹°Ã¼ÀÇ ÃßÀûÀÌ °¡´ÉÇÔÀ» ¾Ë ¼ö ÀÖ¾ú´Ù.
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(English Abstract)
Target tracking in a real world situation is difficult problem because of continuous variations in images, huge amounts of data, and high processing speed demands. The problem becomes even harder in the case of sea background. This paper presents an initial study of neural network based method for target detection and tracking in cluttering environment. The approach uses a combination of differential motion analysis, Kohonen self-organizing network and region growing method. The network is capable of detecting the mass-centers of moving objects within one frame. The history of neurons positions in the sequential frames approximates the traces of the targets. The experiments done with the network in simulated environment showed promising results.
Å°¿öµå(Keyword) Automatic Targer Tracking   Artificial Neural Network  
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