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A novel log-based relevance feedback technique in content- based image retrieval Reporter: Francis 2005/6/2
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2 Outline 1. Introduction 2. Log-based relevance feedback 3. Support vector machines 4. Log-based relevance feedback using SLSVM 5. Experiment results
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3 1. Introduction CBIR’s research: 1. Feature analysis and similarity measure: Semantic gap between features and human perceptions. 2. Building the image Indexing with textual descriptions. 3. Relevance feedback
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4 2. Log-based relevance feedback Traditional approach: Query expansion (QEX)[6]: It’s good for document retrieval but poor in image retrieval. Log-based relevance feedback: Relevance matrix (RM) Defining correlations between images
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5 2. Log-based relevance feedback One given example may be with different relationship value confidence degrees
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6 3. Support vector machines Optimization problem formula:
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7 4.1 Soft label support vector machine 22
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8 4.1 Soft label support vector machine Decision function:
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9 4.2 LRF algorithm by SLSVM Training example selection: Using R(i,j) Adding N’ positive and negative training example ranking by S+ and S-.
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10 5. Experiment results 1
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11 5. Experiment results 1
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12 5. Experiment results
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