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基于字符分割和LeNet-5網(wǎng)絡(luò )的字符驗證碼識別
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青島科技大學(xué)信息科學(xué)技術(shù)學(xué)院

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TP391.41

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國家自然科學(xué)基金項目(61702295)


Character Verification Code Recognition Based on Character Segmentation and LeNet-5 Network
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    摘要:

    為了解決傳統驗證碼識別方法效率低,精度差的問(wèn)題,設計了一種先分割后識別的驗證碼處理方案。該方案在預處理階段用中值濾波去噪,再利用霍夫變換對圖像字符進(jìn)行矯正;在字符分割階段,利用垂直投影算法確定驗證碼字符塊個(gè)數,以及字符坐標點(diǎn),再用顏色填充算法對驗證碼進(jìn)行初步分割,根據分割后的字符塊數量對粘連字符進(jìn)行二次分割;在識別階段,我們對LeNet-5網(wǎng)絡(luò )進(jìn)行了改進(jìn),修改了輸入層,并用全連接層替換了LeNet-5網(wǎng)絡(luò )中的C5層,以此來(lái)對驗證碼字符進(jìn)行識別;實(shí)驗表明,對于非粘連驗證碼和粘連驗證碼,單張圖片分割時(shí)間為0.14和0.15ms,分割準確率為98.75%和97.25%,識別準確率為99.99%和97.7%;結果表明,該算法對驗證碼分割和識別都有著(zhù)很好的效果。

    Abstract:

    To address the low efficiency and accuracy of traditional captcha recognition methods, we designed a captcha processing solution that involves segmentation and recognition stages. In the preprocessing stage, we applied median filtering for noise reduction and used the Hough transform to correct the image characters. In the character segmentation stage, we used the vertical projection algorithm to determine the number of character blocks and their coordinates, and then used the color filling algorithm for preliminary segmentation. We also performed a second segmentation for connected characters based on the number of segmented character blocks. In the recognition stage, we improved the LeNet-5 network by modifying the input layer and replacing the C5 layer with a fully connected layer for character recognition. Experimental results showed that for non-connected and connected captchas, the segmentation time for a single image was 0.14ms and 0.15ms, respectively, with segmentation accuracies of 98.75% and 97.25% and recognition accuracies of 99.99% and 97.7%. These results demonstrate that our algorithm has good performance for captcha segmentation and recognition.

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張敬勛,張俊虎,趙宇波,李輝.基于字符分割和LeNet-5網(wǎng)絡(luò )的字符驗證碼識別計算機測量與控制[J].,2023,31(7):271-277.

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歷史
  • 收稿日期:2023-02-28
  • 最后修改日期:2023-03-08
  • 錄用日期:2023-03-08
  • 在線(xiàn)發(fā)布日期: 2023-07-12
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