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© 2012 Visualising Data Ltd 1
Visualisation’s Duality:
Finding Stories and
Showing Stories
Andy Kirk
www.visualisingdata.com
© 2012 Visualising Data Ltd 2
Design architect/consultant
Trainer
© 2012 Visualising Data Ltd 3
Author
The real craft behind data
visualisation design is being able
to rationalise choices
What to show | How to show it
© 2012 Visualising Data Ltd 4
1. Establish the
visualisation’s
purpose and identify
key factors
What is ‘Purpose’?
Client project (brief)
Internal project (brief)
Self-initiated
Trigger
Its reason for existing
How well is it defined?
Intent
The intended tone and function
© 2012 Visualising Data Ltd 5
How important is accuracy
compared to aesthetics?
Read data vs Feel data
Precision vs Beauty
Pragmatism vs Emotion
Intent: Tone
Who does the work to surface
the insights?
Find or Show
Reader or Designer
Explore or Explain
Intent: Function
© 2012 Visualising Data Ltd 6
Analytical/Pragmatic
Abstract/Emotive
Exploratory(FindStories)
Explanatory(ShowStories)
Analytical | Exploratory
© 2012 Visualising Data Ltd 7
Analytical | Explanatory
Emotive | Exploratory
© 2012 Visualising Data Ltd 8
Emotive | Explanatory
The brief? Open, strict, helpful, unhelpful, clarity
Pressures? Timescales, managerial, financial
Format? Static, interactive, video, tools
Setting? Issued, presented, instant, prolonged
Technical? Software, hardware, infrastructure
Audience size? One, group, organisation, outside
Audience type? Domain, captive, general
Resolution? Headlines, detail
Frequency? One-off, regular
Rules? Structure, layout, style, colour
People? Individual, team, the 8 hats…
Potential key factors
© 2012 Visualising Data Ltd 9
2. Acquire and
prepare your data
Acquisition
Examination
Transform for quality
The hidden burden…
© 2012 Visualising Data Ltd 10
Transform for analysis
Consolidation
Visual Analysis
The hidden cleverness…
Using visualisation techniques to
familiarise, learn about and
discover insights from data
Requires curiosity and
graphical literacy
Visual analysis
© 2012 Visualising Data Ltd 11
Trends and patterns (or lack of)
– Up and down vs. flat?
– Linear vs. exponential
– Steady vs. fluctuating
– Seasonal vs. random
– Rate of change vs. steepness
Graphical literacy
0
10
20
30
40
50
60
70
80
90
Graphical literacy
© 2012 Visualising Data Ltd 12
Relationships
– Outliers
– Intersections
– Correlations
– Connections
– Clusters
– Associations
– Gaps
Graphical literacy
Graphical literacy
© 2012 Visualising Data Ltd 13
3. Establishing
editorial focus by
finding stories
Good content reasoners
and presenters are rare,
designers are not.
Edward Tufte
© 2012 Visualising Data Ltd 14
What questions do you have
about this data?
What questions do you want
readers to be able to answer
about this data?
© 2012 Visualising Data Ltd 15
We rejected them because they
didn’t do a good job of
answering some of the most
interesting questions... Different
forms do better jobs at
answering different questions.
Amanda Cox (on NYT Stream Graph)
© 2012 Visualising Data Ltd 16
4. Conceive your
visualisation design
specification
1. Data representation
The 5 layers of a visualisation
© 2012 Visualising Data Ltd 17
What are we trying to say
with what we are showing?
Which chart?
1. Consistency with purpose
2. Choose the correct visualisation method
3. Effectiveness of visual analysis techniques
4. Consider physical properties of your data
5. Create the appropriate metaphor
Data representation ingredients
© 2012 Visualising Data Ltd 18
Comparing categories
Assessing hierarchies & part-to-whole relationships
© 2012 Visualising Data Ltd 19
Showing changes over time
Charting connections and relationships
© 2012 Visualising Data Ltd 20
Mapping spatial data
2. Colour
The 5 layers of a visualisation
© 2012 Visualising Data Ltd 21
Colour used well can enhance
and clarify a presentation.
Colour used poorly will
obscure, muddle and confuse.
Maureen Stone
Colour (Hue)
Represent data values
Colour
(Saturation)
© 2012 Visualising Data Ltd 22
Distinguish between categorical items
Accentuate data
© 2012 Visualising Data Ltd 23
Exploit visual language
3. Interactivity
The 5 layers of a visualisation
© 2012 Visualising Data Ltd 24
Immersive interactivity
Details on demand
© 2012 Visualising Data Ltd 25
Potential for animation
4. Annotation
The 5 layers of a visualisation
© 2012 Visualising Data Ltd 26
The annotation layer is the
most important thing we do...
otherwise it’s a case of
here it is, you go figure it out.
Amanda Cox, Graphics Editor, New York Times
Layers of user assistance
© 2012 Visualising Data Ltd 27
Layers of user insight
5. Arrangement
The 5 layers of a visualisation
© 2012 Visualising Data Ltd 28
Consider the placement of
every single visible element in a
way that minimises thinking and
maximises interpretation
Size, sequence, position, grouping, orientation…
© 2012 Visualising Data Ltd 29
5. Construct and
launch your data
visualisation solution
© 2012 Visualising Data Ltd 30
© 2012 Visualising Data Ltd 31
© 2012 Visualising Data Ltd 32
© 2012 Visualising Data Ltd 33
www.visualisingdata.com
andy@visualisingdata.com
@visualisingdata

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II-SDV 2013 Finding Stories and Telling Stories: Two Sides of Data Visualization

  • 1. © 2012 Visualising Data Ltd 1 Visualisation’s Duality: Finding Stories and Showing Stories Andy Kirk www.visualisingdata.com
  • 2. © 2012 Visualising Data Ltd 2 Design architect/consultant Trainer
  • 3. © 2012 Visualising Data Ltd 3 Author The real craft behind data visualisation design is being able to rationalise choices What to show | How to show it
  • 4. © 2012 Visualising Data Ltd 4 1. Establish the visualisation’s purpose and identify key factors What is ‘Purpose’? Client project (brief) Internal project (brief) Self-initiated Trigger Its reason for existing How well is it defined? Intent The intended tone and function
  • 5. © 2012 Visualising Data Ltd 5 How important is accuracy compared to aesthetics? Read data vs Feel data Precision vs Beauty Pragmatism vs Emotion Intent: Tone Who does the work to surface the insights? Find or Show Reader or Designer Explore or Explain Intent: Function
  • 6. © 2012 Visualising Data Ltd 6 Analytical/Pragmatic Abstract/Emotive Exploratory(FindStories) Explanatory(ShowStories) Analytical | Exploratory
  • 7. © 2012 Visualising Data Ltd 7 Analytical | Explanatory Emotive | Exploratory
  • 8. © 2012 Visualising Data Ltd 8 Emotive | Explanatory The brief? Open, strict, helpful, unhelpful, clarity Pressures? Timescales, managerial, financial Format? Static, interactive, video, tools Setting? Issued, presented, instant, prolonged Technical? Software, hardware, infrastructure Audience size? One, group, organisation, outside Audience type? Domain, captive, general Resolution? Headlines, detail Frequency? One-off, regular Rules? Structure, layout, style, colour People? Individual, team, the 8 hats… Potential key factors
  • 9. © 2012 Visualising Data Ltd 9 2. Acquire and prepare your data Acquisition Examination Transform for quality The hidden burden…
  • 10. © 2012 Visualising Data Ltd 10 Transform for analysis Consolidation Visual Analysis The hidden cleverness… Using visualisation techniques to familiarise, learn about and discover insights from data Requires curiosity and graphical literacy Visual analysis
  • 11. © 2012 Visualising Data Ltd 11 Trends and patterns (or lack of) – Up and down vs. flat? – Linear vs. exponential – Steady vs. fluctuating – Seasonal vs. random – Rate of change vs. steepness Graphical literacy 0 10 20 30 40 50 60 70 80 90 Graphical literacy
  • 12. © 2012 Visualising Data Ltd 12 Relationships – Outliers – Intersections – Correlations – Connections – Clusters – Associations – Gaps Graphical literacy Graphical literacy
  • 13. © 2012 Visualising Data Ltd 13 3. Establishing editorial focus by finding stories Good content reasoners and presenters are rare, designers are not. Edward Tufte
  • 14. © 2012 Visualising Data Ltd 14 What questions do you have about this data? What questions do you want readers to be able to answer about this data?
  • 15. © 2012 Visualising Data Ltd 15 We rejected them because they didn’t do a good job of answering some of the most interesting questions... Different forms do better jobs at answering different questions. Amanda Cox (on NYT Stream Graph)
  • 16. © 2012 Visualising Data Ltd 16 4. Conceive your visualisation design specification 1. Data representation The 5 layers of a visualisation
  • 17. © 2012 Visualising Data Ltd 17 What are we trying to say with what we are showing? Which chart? 1. Consistency with purpose 2. Choose the correct visualisation method 3. Effectiveness of visual analysis techniques 4. Consider physical properties of your data 5. Create the appropriate metaphor Data representation ingredients
  • 18. © 2012 Visualising Data Ltd 18 Comparing categories Assessing hierarchies & part-to-whole relationships
  • 19. © 2012 Visualising Data Ltd 19 Showing changes over time Charting connections and relationships
  • 20. © 2012 Visualising Data Ltd 20 Mapping spatial data 2. Colour The 5 layers of a visualisation
  • 21. © 2012 Visualising Data Ltd 21 Colour used well can enhance and clarify a presentation. Colour used poorly will obscure, muddle and confuse. Maureen Stone Colour (Hue) Represent data values Colour (Saturation)
  • 22. © 2012 Visualising Data Ltd 22 Distinguish between categorical items Accentuate data
  • 23. © 2012 Visualising Data Ltd 23 Exploit visual language 3. Interactivity The 5 layers of a visualisation
  • 24. © 2012 Visualising Data Ltd 24 Immersive interactivity Details on demand
  • 25. © 2012 Visualising Data Ltd 25 Potential for animation 4. Annotation The 5 layers of a visualisation
  • 26. © 2012 Visualising Data Ltd 26 The annotation layer is the most important thing we do... otherwise it’s a case of here it is, you go figure it out. Amanda Cox, Graphics Editor, New York Times Layers of user assistance
  • 27. © 2012 Visualising Data Ltd 27 Layers of user insight 5. Arrangement The 5 layers of a visualisation
  • 28. © 2012 Visualising Data Ltd 28 Consider the placement of every single visible element in a way that minimises thinking and maximises interpretation Size, sequence, position, grouping, orientation…
  • 29. © 2012 Visualising Data Ltd 29 5. Construct and launch your data visualisation solution
  • 30. © 2012 Visualising Data Ltd 30
  • 31. © 2012 Visualising Data Ltd 31
  • 32. © 2012 Visualising Data Ltd 32
  • 33. © 2012 Visualising Data Ltd 33 www.visualisingdata.com andy@visualisingdata.com @visualisingdata