Write a python program to cluster candidates into 2/3 groups. The program performs dimensionality reduction, then clustering of candidates based on top 2 PCs. The results are plotted to visually show the performance of candidates. The program performs the following tasks: • Read input "pca cluster.csv" file. Use Panda library. Example of the file: candl cand2 cand3 cand4 cand5 cad6 9. 3 experience education health interview 10 10 8. 10 8 10 4 6. 8. 9. 9. 9 6. 6. 8. test 4 6. 10 9. communication skills 6. 9. 10 10 writing skills team player 10 6. 6. 8. 7 4 10 9. 2. leadership enthusiasm ready to start flexible in hours able to relocate references 4 10 4 8 7 7 9. 6. 9 10 6. 7. 6. 6. 6 10 4 10 9. 4. • Apply PCA analysis to identify top 2 PCs. Eigen No. 0 Eigen value- (33.50+0j) Contribution % (40.87+0j) Points on new seale [5 5-8 30-5] Eigen No. 1 Eigen value (22.65+0j) Contribution % (27.63+0j) Points on new scale [0-4107-5] • Calculate the scores on top 2 PCs: PCI [5 5-8 3 0-5] PC2 | 0 -4 107-5j • Apply K-Means cluster algorithm to classify candidates into 2 clusters. Plot the results as shown (see below plot) • Repeat clustering and plot for K-3 (see below plot) • Finally, present discussion paragraph (about % page) to answer the following point: "If you are a hiring manger, how the this analysis help you to choose/narrow candidates"

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l JO 100 4G
2:02 AM
@ 52%
assignment_3 v2
AI and ML
Assignment 3
Write a python program to cluster candidates into 2/3 groups. The program performs
dimensionality reduction, then clustering of candidates based on top 2 PCs. The results are
plotted to visually show the performance of candidates.
The program performs the following tasks:
Read input "pca cluster.csv" file. Use Panda library. Example of the file:
candi
cand2
cand3
cand4
cand5
cad6
experience
10
9
7
3
education
10
10
8
10
health
4
6
8
9
9.
interview
9
6
6
8
7
test
4
9.
10
communication skills
7.
6
9
10
10
writing skills
team player
leadership
10
9
6
6.
8
7
4
10
9
4
10
4
9
6
8
5
9
7
enthusiasm
7.
7
7
9
ready to start
5
6
6.
9
1
flexible in hours
10
1
9.
5
6.
able to relocate
6
6
6.
10
4
references
9
9
7
9
4
10
• Apply PCA analysis to identify top 2 PCs.
Eigen No. 0 Eigen value (33.50+0j) Contribution % (40.87+0j)
Points on new scale [5 5-8 3 0-5]
Eigen No. I Eigen value- (22.65+Oj) Contribution % (27.63+0j)
Points on new scale [0-4107-5]
• Calculate the scores on top 2 PCs:
PCI [5 5-8 3 0 -5]
PC2 |0-4 10 7-5
• Apply K-Means cluster algorithm to classify candidates into 2 clusters. Plot the results as
shown (see below plot)
• Repeat clustering and plot for K=3 (see below plot)
• Finally, present discussion paragraph (about ½ page) to answer the following point: "If
you are a hiring manger, how the this analysis help you to choose/narrow candidates"
j
Clusters
Cand 5
Transcribed Image Text:l JO 100 4G 2:02 AM @ 52% assignment_3 v2 AI and ML Assignment 3 Write a python program to cluster candidates into 2/3 groups. The program performs dimensionality reduction, then clustering of candidates based on top 2 PCs. The results are plotted to visually show the performance of candidates. The program performs the following tasks: Read input "pca cluster.csv" file. Use Panda library. Example of the file: candi cand2 cand3 cand4 cand5 cad6 experience 10 9 7 3 education 10 10 8 10 health 4 6 8 9 9. interview 9 6 6 8 7 test 4 9. 10 communication skills 7. 6 9 10 10 writing skills team player leadership 10 9 6 6. 8 7 4 10 9 4 10 4 9 6 8 5 9 7 enthusiasm 7. 7 7 9 ready to start 5 6 6. 9 1 flexible in hours 10 1 9. 5 6. able to relocate 6 6 6. 10 4 references 9 9 7 9 4 10 • Apply PCA analysis to identify top 2 PCs. Eigen No. 0 Eigen value (33.50+0j) Contribution % (40.87+0j) Points on new scale [5 5-8 3 0-5] Eigen No. I Eigen value- (22.65+Oj) Contribution % (27.63+0j) Points on new scale [0-4107-5] • Calculate the scores on top 2 PCs: PCI [5 5-8 3 0 -5] PC2 |0-4 10 7-5 • Apply K-Means cluster algorithm to classify candidates into 2 clusters. Plot the results as shown (see below plot) • Repeat clustering and plot for K=3 (see below plot) • Finally, present discussion paragraph (about ½ page) to answer the following point: "If you are a hiring manger, how the this analysis help you to choose/narrow candidates" j Clusters Cand 5
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