基于乘法内禀分量优化的平面鞋印分割

Tianli Guo, Yunqi Tang, Wei Guo
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引用次数: 2

摘要

鞋印是法医学中重要的痕迹证据。它可以提供嫌疑人的年龄、身高和性别等信息。为了解决平面鞋印专家在进行识别时存在的个体差异问题,提出了一种基于乘法内禀分量优化的平面鞋印图像分割算法。分割后,可以选择性地使用伪颜色对分割图像进行处理。从而自动绘制出鞋底图案和磨损区域。实验分析表明,该方法可以有效地分割鞋印。这为刑事侦查人员缩小侦查范围提供了一种客观、通用的鞋印鉴定方法。
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Planar Shoeprint Segmentation Based on the Multiplicative Intrinsic Component Optimization
Shoeprint is an important trace evidence in forensic science. It can provide information about age, height and sex of suspects. In order to solve the problem of individual differences in the identification of planar-shoeprint experts doing, a planar shoeprint image segmentation algorithm based on Multiplicative Intrinsic Component Optimization is proposed in this context. After segmentation, pseudo-color can be selectively used to process the segmentation image. So the pattern and wear area of sole were automatically sketched. Experimental analysis shows that this method can effectively segment the shoeprint. This provides an objective and universal shoeprint identification method for criminal investigators to narrow the scope of investigation.
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