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By Tatiana Cristea 
Supervised by Lora Aroyo (VU) & Robert-Jan Sips (IBM)
Visualizations for 
quality assessment 
of crowdsourced 
data 
Noisy 
Crowdsourced 
data 
Quality data
 Current practices: based on the consensus of workers 
 CrowdTruth metrics : considers disagreement informative
Select from the list the objects depicted in the image: 
Unclear image (content unit) 
Worker 1 Worker 2 Worker 3 
 Balloon 
 Flower 
 Human 
 Car 
 Ghost 
 Person 
 Balloon 
 Flower 
 Human 
 Car 
 Ghost 
 Person 
 Balloon 
 Flower 
 Human 
 Car 
 Ghost 
 Person 
Can you identify the low quality worker(s)?
Select from the list the objects depicted in the image: 
separable 
Worker 1 
 Balloon 
 Flower 
 Human 
Not clearly  Car 
answers 
 Ghost 
 Person 
Worker 2 
 Balloon 
 Flower 
 Human 
 Car 
 Ghost 
 Person 
Worker 3 
 Balloon 
 Flower 
 Human 
 Car 
 Ghost 
 Person 
Can you identify the low quality worker(s)?
Select from the list the objects depicted in the image: 
Worker 
2  Balloon 
Worker 
1  Balloon 
 Balloon 
 Flower 
workers 
 Human 
Low quality  Car 
 Ghost 
 Person 
 Flower 
 Human 
 Car 
 Ghost 
 Person 
Worker 
3 
 Flower 
 Human 
 Car 
 Ghost 
 Person 
Can you identify the low quality workers?
How good is the 
unit for the 
specific task? 
How well the 
worker 
understood the 
task? 
Are the 
annotation 
options clear and 
separable? 
Unit 
Worker Annotation
JOB 1 JOB 2 
Unit 
Worker Annotation 
Annotation 
JOB N 
Unit 
Unit 
Worker 
Worker 
Annotation
Visualization approach for quality assessment of 
crowdsourced data : 
a) at aggregate level 
b) at a specific level 
c) and in the context of their interdependencies
 Extracted through interviews 
 Visualization of properties, statistics and metrics of: 
 single job/unit/worker 
 collection of jobs/unit/workers 
 Functional requirements: 
 Filtering, sorting 
 Support for detection of outliers 
 Visualization of connected workers, content units and jobs 
 Support of comparative analysis 
 Support for navigation between connected elements, etc.
 DEMO TOUR
 We evaluated the design with 9 persons 
 Different levels of experience with 
crowdsourcing tasks
 useful in: 
 the assessment of quality 
 deep analysis of the data 
But….
The amount of information was a (little) bit overwhelming…
The interactions are great! 
… if you know about them 
The time dimension is not always present…
 Create user profiles 
 Decouple the visualization component and 
provide it as a separate plugin 
 Add the time dimension Time to the visualizations

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Visualization of Disagreement-based Quality Metrics of Crowdsourcing Data

  • 1. By Tatiana Cristea Supervised by Lora Aroyo (VU) & Robert-Jan Sips (IBM)
  • 2. Visualizations for quality assessment of crowdsourced data Noisy Crowdsourced data Quality data
  • 3.  Current practices: based on the consensus of workers  CrowdTruth metrics : considers disagreement informative
  • 4. Select from the list the objects depicted in the image: Unclear image (content unit) Worker 1 Worker 2 Worker 3  Balloon  Flower  Human  Car  Ghost  Person  Balloon  Flower  Human  Car  Ghost  Person  Balloon  Flower  Human  Car  Ghost  Person Can you identify the low quality worker(s)?
  • 5. Select from the list the objects depicted in the image: separable Worker 1  Balloon  Flower  Human Not clearly  Car answers  Ghost  Person Worker 2  Balloon  Flower  Human  Car  Ghost  Person Worker 3  Balloon  Flower  Human  Car  Ghost  Person Can you identify the low quality worker(s)?
  • 6. Select from the list the objects depicted in the image: Worker 2  Balloon Worker 1  Balloon  Balloon  Flower workers  Human Low quality  Car  Ghost  Person  Flower  Human  Car  Ghost  Person Worker 3  Flower  Human  Car  Ghost  Person Can you identify the low quality workers?
  • 7. How good is the unit for the specific task? How well the worker understood the task? Are the annotation options clear and separable? Unit Worker Annotation
  • 8. JOB 1 JOB 2 Unit Worker Annotation Annotation JOB N Unit Unit Worker Worker Annotation
  • 9. Visualization approach for quality assessment of crowdsourced data : a) at aggregate level b) at a specific level c) and in the context of their interdependencies
  • 10.
  • 11.  Extracted through interviews  Visualization of properties, statistics and metrics of:  single job/unit/worker  collection of jobs/unit/workers  Functional requirements:  Filtering, sorting  Support for detection of outliers  Visualization of connected workers, content units and jobs  Support of comparative analysis  Support for navigation between connected elements, etc.
  • 13.  We evaluated the design with 9 persons  Different levels of experience with crowdsourcing tasks
  • 14.  useful in:  the assessment of quality  deep analysis of the data But….
  • 15. The amount of information was a (little) bit overwhelming…
  • 16. The interactions are great! … if you know about them 
  • 17. The time dimension is not always present…
  • 18.  Create user profiles  Decouple the visualization component and provide it as a separate plugin  Add the time dimension Time to the visualizations