Title of article :
Object recognition with uncertain geometry and uncertain part detection
Author/Authors :
Pham، نويسنده , , Thang V. and Smeulders، نويسنده , , Arnold W.M.، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2005
Pages :
18
From page :
241
To page :
258
Abstract :
This paper presents a method for object recognition once parts have been detected. The recognition task is formulated as a graph problem searching for the characteristic geographical arrangements of (possibly missing) parts. The objective function is Bayesian maximum a posteriori estimation, integrating the image likelihood as a posteriori probability of the part detectors. The variability in the arrangement of object parts is captured by a Gaussian distribution after translation normalization. By employing two special properties of a Gaussian distribution, we are able to deal with missing parts situation where the chosen origin is not detected. We use an A∗ algorithm to find the optimal solution for the graph search problem. Experiments are performed on both synthetic and real data to demonstrate good results and fast performance of the recognition.
Keywords :
A? algorithm , Detection by parts , Detector performance , grouping , Graph search , Object recognition , Shape , Maximum a posteriori estimation
Journal title :
Computer Vision and Image Understanding
Serial Year :
2005
Journal title :
Computer Vision and Image Understanding
Record number :
1694752
Link To Document :
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