Question: Please give a detailed answer 7. a 12 Mrs. X has lost gender information of one of her customers, and does not know whether to

 Please give a detailed answer 7. a 12 Mrs. X has

Please give a detailed answer

7. a 12 Mrs. X has lost gender information of one of her customers, and does not know whether to make a skirt or trousers. The customer who is missing gender information has only the measurement of waist and hip which are 28 and 34 respectively. Using K-NN classifier with K=3, find the missing gender information. The training set is given in Table 3. Table 3: Training set S/N Waist (cm) Hip (cm) Gender 28 Male 135 Male 27 Female 31 Female 28 32 33 b) Imagine you are dealing with text data. To represent the words you are using word embedding, i.e. representing words as vector of tokens. In word embedding, you will end up with 1000 dimensions. Now, you want to reduce the dimensionality of this high dimensional data such that, similar words should have a similar meaning. In such case, which algorithm are you most likely choose? Explain mathematically how you are going to reduce dimensions. 7. a 12 Mrs. X has lost gender information of one of her customers, and does not know whether to make a skirt or trousers. The customer who is missing gender information has only the measurement of waist and hip which are 28 and 34 respectively. Using K-NN classifier with K=3, find the missing gender information. The training set is given in Table 3. Table 3: Training set S/N Waist (cm) Hip (cm) Gender 28 Male 135 Male 27 Female 31 Female 28 32 33 b) Imagine you are dealing with text data. To represent the words you are using word embedding, i.e. representing words as vector of tokens. In word embedding, you will end up with 1000 dimensions. Now, you want to reduce the dimensionality of this high dimensional data such that, similar words should have a similar meaning. In such case, which algorithm are you most likely choose? Explain mathematically how you are going to reduce dimensions

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