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Mammogram Analysis

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Mammogram Analysis Tumor classification - Geethapriya Raghavan. Background. Mammogram ... Design and train an SVM classifier on mammograms ... – PowerPoint PPT presentation

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Title: Mammogram Analysis


1
Mammogram Analysis Tumor classification
  • - Geethapriya Raghavan

2
Background
  • Mammogram
  • X-Ray image (of gray levels) of inner breast
    tissue to detect cancer
  • Shows the levels of contrast characterizing
    normal tissue and vessels
  • Issues
  • Detect abnormalities (tumors)
  • Diagnosis - Classify as benign or malignant
  • Remove noise

3
Methods ..
  • Non-linear classifiers preferred over linear
    classifiers given the randomness in occurrence of
    tumor cells allowing the trade off that mapping
    has to be done on a higher dimensional space
  • Contemporary methods treat as supervised learning
    problem (Wei et al., 2005)
  • Support Vector Machines (SVM) (Vapnik et al.,
    1997)
  • Kernel Fisher Discriminant (KFD)
  • Relevance Vector Machines (RVM)

4
Methods ..
  • SVM was used by Chang et al., on US images to
    diagnose the nature of tumor
  • Use of wavelet transform to uncorrelate data
    (image) (Borges et al., 2001)
  • Obtain wavelet coefficients as features
  • Normalize coefficients and feed into Nearest
    Neighborhood classifier

5
Proposed work
  • Issues open need for a classifier that gives
    more accuracy in lesser time
  • Design and train an SVM classifier on mammograms
  • Extend on Borges et al.s work on wavelet
    features and use a different classifier on the
    feature vectors.
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