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基于馬氏距離和模糊C均值聚類的摳圖算法與應用

Matting algorithm and application based on Mahalanobis distance and the fuzzy C-means clustering algorithm

  • 摘要: 基于馬氏距離和模糊C均值聚類算法提出了一種數字彩色圖像摳圖算法.該算法首先對彩色圖像像素的紅綠藍三種彩色分量進行正則化處理;然后在正則化圖像背景中選取適當的掩膜作為樣本集,計算各像素與樣本集之間的馬氏距離;再利用模糊C均值聚類算法對計算出的馬氏距離進行分類;最后利用填洞操作提高摳圖質量.對八幅彩色數字圖像進行對比實驗,結果顯示本算法可以自動摳圖,且結果優于馬氏距離算法、Grow-Cut算法和正則化線性回歸算法的相應摳圖效果.

     

    Abstract: Based on Mahalanobis distance and the fuzzy C-means algorithm, this article introduces a digital color image matting algorithm. First the red, green and blue color components of color image pixels are normalized. Second the appropriate mask as a sample set is selected in the background of the normalized image, and the Mahalanobis distance between each pixel and the sample set is calculated. Third the calculated Mahalanobis distances are classified into two categories using the fuzzy C-means clustering algorithm:the foreground and the background. Finally, the quality of the matting is improved using the filling-hole technique. Eight images have been processed for comparison, the results show that this algorithm can automatically segment these images, and is better than the Mahalanobis distance algorithm, fuzzy C-means clustering algorithm and linear regression algorithm.

     

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