標題: 以CAM為基礎之樣式累加向量法在車牌字元辨識系統之應用
A CAM-Based License Plate Character Recognition System Using the Pattern Accumulated Vector Method
作者: 張仲賢
Chung-Hsien Chang
陳永平
Yon-Ping Chen
電控工程研究所
關鍵字: 車牌字元辨識;內容可定址記憶體;樣式累加向量;圖案樣式;數位信號處理;License Plate Character Recognition;CAM;Pattern Accumulated Vector;Pattern Block;PAV;DSP
公開日期: 2005
摘要: 車牌字元辨識系統,是交通執法系統、電子道路收費系統等眾多交通相關應用領域上的關鍵技術。然而,絕大多數已經研發完成的車牌辨識系統由於採用相當複雜的演算法,而不得不藉由電腦輔助環境來運作。 本論文將車牌字元辨識系統建構於DSP實驗板上(型號:EP20K1500EBC652-1X),旨在驗證完全交由硬體系統來獨立完成之可能性。該系統不僅使用內容可定址記憶體來取代傳統記憶體,更採取所謂的樣式累加向量法來進行車牌字元辨識。透過模擬實驗,該系統不但可達到99.56% 之辨識率,所需時間也比使用傳統記憶體的對照組還要短。這證明了車牌字元辨識系統在硬體化上的可行性。
License plate character recognition system becomes the key to many traffic related applications such as the traffic enforcement systems and the electronic toll-collection systems. However, most of the developed license plate recognition systems are PC-based due to the use of complicated algorithms. This thesis implements the license plate character recognition on the DSP board (SN: EP20K1500EBC652-1X) to verify the potential of a hardware system other than PC-based. The system adopts a specific storage called the Content Addressable Memories to replace the common RAM and recognizes the license plate characters by the so-called Pattern Accumulated Vector method. Through series of simulations and experiments, the recognition reaches a rate of 99.56% and is faster than the RAM-based system. This confirms that the proposed system has potential and is feasible in the future.
URI: http://140.113.39.130/cdrfb3/record/nctu/#GT009312519
http://hdl.handle.net/11536/78198
Appears in Collections:Thesis


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