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The Power of Visualizing
Embeddings
Pramod Singh
About Me ..
▪ Team Lead – Data Science
Bain and Company
▪ Speaker
-O’Reilly Strata conference
-GIDS
▪ Published Author
• Machine Learning using PySpark
• Learn PySpark
• Learn TensorFlow 2.0 : The easy way
• Machine Learning in Production ( WIP)
▪ https://www.linkedin.com/in/pramodchahar/
Agenda
▪ Inspiration for this session
▪ Conventional Approach
▪ Learning Embeddings
▪ Custom Embeddings
▪ Visualizing Embeddings
▪ FAQs
Interactions
Finance Exteriors Interiors Maintenance Car DealerFeatures
User Journey – Core Elements
Different Pages Categories Time Spent Sequence of
Events
User Representation – I
User ID Total Visits Total Time Spent Total Pages Total Sessions Converted
121A 10 25 110 4 0
User Representation – II
User ID Total Pages Finance Specification Dealer … … Finance(sec) Specification(sec) Dealer(sec) … Converted
121A 10 3 4 4 3 5 5 0
All Users
User ID Total Pages Finance Specification Dealer … … Finance(sec) Specification(sec) Dealer(sec) … Converted
121A 10 3 4 4 3 5 5 0
19X2 50 0 21 0 0 350 0 0
GG52 33 8 4 9 45 50 78 1
Applicable to other domains
Finance & Insurance E-Commerce/Retail Real Estate
Key Questions
▪ Which set of customer journeys are similar
to each other ?
▪ Which set of customer journeys indicate
broken vs seamless experience ?
▪ Which are those 4-5 major routes that
customers takes in order to convert ?
Category Representation
Frequency Based Prediction BasedOne Hot Encoding
Challenges
High-Cardinality Variables Sematic Signal w/o Supervision
Challenges
Specifications
Number of columns = Number of unique categories
Price
Features
Specifications Price Features Reviews .. …
1 0 0 0 0 0
0 1 0 0 0 0
0 0 1 0 0 0
Similarity between Specifications and Price = 0
Similarity between Price and Features = 0
Similarity between Features and Specifications = 0
Gaps
• Sequence of events is ignored
Can we represent each of these page categories with a vector which captures the underlying semantics ?
Using this vector , can we represent each user journey?
Embeddings
Embeddings
“An embedding is a mapping of a discrete — categorical — variable to a vector of continuous numbers such that the vectors of similar entities are
closer to one another in vector space.”
king  -  man + woman = queen
Category Similarity using Embeddings
Price 0.43 0.75 0.98 … …. … 0.55 0.87
Specification 0.23 0.10 0.33 … …. … 0.45 0.20
Features 0.22 0.09 0.30 … …. … 0.44 0.18
Similarity between Specifications and Price = - 0.75
Similarity between Price and Features = - 0.83
Similarity between Features and Specifications = 0.91
Immediate Advantages
Fix Size Representation Similar Categories
Embeddings
Image Text Music User
Learning Embeddings
Without Label With Label Pre-Trained
— John R. Firth (a dominant figure in 20th century Linguistics)
“You shall know a word by the
company it keeps.”
Without Label
Sequence Based Embedding
The earth is round and moves around the sun
“All we need is a sequence of categories”
Sequence Based Embedding*
The earth is round and moves around the sun
• Context and Target Words
• Given a word, which are the neighboring words ?
• Given the neighboring words, what's the target word ?
*Window size
CBOW Model
The
Earth
round
and
is
Neural Network
Target
Skip-Gram Model
The
Earth
round
and
is
Word2Vec
Homepage Offers Finance Offers Specification … … Test Drive
With Label
Embedding layer in DNN
Homepage
Offers
Finance
Specifications
…
…
…
…
CrossEntropy
Loss
Observed
target
Predicted
target
Embedding
Layer
Custom Embeddings
Category Embeddings
Page-Category Embedding
Brochure
Reviews
Finance
Test Drive
Specification
0.13 0.45 .. 0.21 0.67
Column Length : Embedding Size : 100
0.25 0.23 .. 0.53 0.98
0.98 0.12 .. 0.34 0.76
0.21 0.53 .. 0.23 0.87
0.87 0.24 .. 0.63 0.25
Embedding Visualization
Categories related to services,
warranty, review are closer
Categories related to
test drive activities are
closer
Categories vehicle
information are closer
User Journey Mapping
Page ‘A’ Page ‘B’ Page ‘D’Page ‘C’Visitor 1 Page ‘E’
Page ‘B’ Page ‘D’ Page ‘E’Visitor 2
0.43 0.75 0.98 0.55 0.87
0.54 0.23 0.56 0.35 0.76
Customize Embeddings
Page-Category Embedding
Brochure
Reviews
Finance
Test Drive
Specification
0.13 0.45 .. 0.21 0.67
Column Length : Embedding Size : 100
0.25 0.23 .. 0.53 0.98
0.98 0.12 .. 0.34 0.76
0.21 0.53 .. 0.23 0.87
0.87 0.24 .. 0.63 0.25
User Journey
0.43 0.75 0.98 0.55 0.87
Brochure Specification Finance Reviews Test Drive
Time Spent
Brochure 0.13 0.45 .. 0.21 0.67 0.43
Time Spent
Specification 0.25 0.23 .. 0.53 0.98 0.75
… … …
… … …
Test Drive 0.87 0.24 .. 0.63 0.25 0.87
User Journey Embedding 0.53 0.76 0.35 0.65 0.89
Customer Journey Visualization*
*Dummy Data
Tensorflow Projector
Advantages of Embeddings
• Finding nearest neighbours in the low dimensional space
• Input features for machine learning prediction
• For understanding relations between between categories
Additional Resources
• https://towardsdatascience.com/neural-network-embeddings-explained-4d028e6f0526
• http://jalammar.github.io/illustrated-transformer/
• https://www.youtube.com/results?search_query=sequence+embeddings+pramod
Feedback
Your feedback is important to us.
Don’t forget to rate and
review the sessions.
Power of Visualizing Embeddings

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