A theoretical study on six classifier fusion strategies
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Abstract
We look at a single point in feature space, two classes, and L classifiers estimating the posterior probability for class /spl omega//sub 1/. Assuming that the estimates are independent and identically distributed (normal or uniform), we give formulas for the classification error for the following fusion methods: average, minimum, maximum, median, majority vote, and oracle.
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Topics
Keywords
- Independent and identically distributed random variables
- Pattern recognition (psychology)
- Oracle
- Artificial intelligence
- Fusion
- Sensor fusion
- Mathematics
- Classifier (UML)
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