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Designing Trustable
AI Experiences
Carol Smith @carologic
IxDA Pittsburgh, January 24, 2019
This work is licensed under a Creative
Commons Attribution-NonCommercial
4.0 International License except where
noted otherwise.
Designing Trustable AI Experiences / @carologic
Humanity…
AI is as imperfect
as the humans making it
Designing Trustable AI Experiences / @carologic
What is AI?
AI is present when computers/machines
– Exhibit intelligence
– Perceive their environment
– Take actions/make decision
to maximize chance of success at goal
https://developer.softbankrobotics.com/us-en/showcase/nao-ibm-create-new-hilton-concierge
Designing Trustable AI Experiences / @carologic
AI/Cognitive computers are
Algorithms
Know ONLY what you teach
Control ONLY what given control of
Aware of nuances and can continue to learn
Designing Trustable AI Experiences / @carologic
Types of AI
Image: Best Artificial Intelligence Software, © 2019 G2 Crowd, Inc. All rights reserved
Dynamic
Data + training
- Apply to new situations
Designing Trustable AI Experiences / @carologic
Taxonomies and Ontologies coming to life
(NOT like humans learn)
Photo: https://commons.wikimedia.org/wiki/File:Baby_Boy_Oliver.jpg
Not sentient
Not unknowable black box
“We need
AI for that!”
Designing Trustable AI Experiences / @carologic
Like Any Good Design
Understand people and problem deeply
Build right AI system
Different problems require different systems
Designing Trustable AI Experiences / @carologic
Major Decision Points
Content
and curation
TrainingManagement
Designing Trustable AI Experiences / @carologic
Ethics and Morals
Trolley Problem
Trolley Car 36, Rockford, Illinois https://www.rockfordparkdistrict.org/trolley
Does the Trolley Problem Have a Problem? What if your answer to an absurd hypothetical question had no bearing on how you behaved in real life?
By Daniel Engber. Slate.com. June 18, 2018. Image of anxious hypothetical trolley car lever operator by Lisa Larson-Walker
https://slate.com/technology/2018/06/psychologys-trolley-problem-might-have-a-problem.html
NSF…
Designing Trustable AI Experiences at IxDA Pittsburgh, Jan 2019
Designing Trustable AI Experiences / @carologic
Designing for Trust
Designing Trustable AI Experiences / @carologic
Provide Transparency
Who
What
When*
Why
How
*Where isn’t typically applicable
Designing Trustable AI Experiences / @carologic
Content and Curation
Content
and curation
TrainingManagement
Designing Trustable AI Experiences / @carologic
Content Source
Exists
Available
Quantity
Quality
Photo by sunlightfoundation
https://www.flickr.com/photos/sunlightfoundation/2385174105
Designing Trustable AI Experiences / @carologic
Number Five “Needs Input”
Short Circuit (1986 film)
Ally Sheedy and Number Five (Tim Blaney)
https://en.wikipedia.org/wiki/Short_Circuit_(1986_film)
all Content
all Data
all AI
= Biased
Social class, resource availability
Race, Gender, Sexuality
Culture, Theology, Tradition
More…
Designing Trustable AI Experiences / @carologic
Who: Creation and Curation
Respected experts
Diverse backgrounds
Designing Trustable AI Experiences / @carologic
Humans required to teach and monitor AI
Water
Prune/Shape
Cull
Only as good
as data
and time spent
improving it
Designing Trustable AI Experiences / @carologic
Training and Accuracy
Content
and curation
TrainingManagement
Designing Trustable AI Experiences / @carologic
Experts to train system
Vetting
Availability
Process
Maintain quality
who doesn’t
bring
cookies
Accuracy
Similar
to cloning
a colleague
no-bake cookies photo by Melissa Hillier - recipe blogged at jonahbonah.com
https://www.flickr.com/photos/77423179@N02/7848109610/in/photolist-cXvByE-x51nF-218WBFr-Z78P3y-6HKkBs-MMkWFT-6wKNxR-7jmLft-6kDRm3-6kDSsN-6kDUvY-6wRRoV-7cYgGN-6kEnjs-6kEaKh-3kHP9P-6kEo6N-6kEAg9-giXGrA-N67c4-5X mXw1-
cgk3ow-6kzJog-6kA5oZ-aYqEpT-MMkVVV-7aQLnM-ecL6fm-6kEd67-5ykEkC-2bsTnp3-dCh7J9-T4tu4i-8HdYNJ-73SMVr-6uwEGT-6kE34b-MMkEqr-6kEFws-6kEjVu-25rwHBc-6kA42g-6kzTi4-T36Moj-7Bx3rf-7vPVhb-6YNEHC-amariC-neddpV-ZNpJHE
Designing Trustable AI Experiences / @carologic
Priority of accuracy across industries
Higher Priority
90-99%+
Lower Priority
60-89% accuracy is acceptable
Financial
Ecommerce
Designing Trustable AI Experiences / @carologic
Management
Content
and curation
TrainingManagement
Designing Trustable AI Experiences / @carologic
Responsible,
Intentional
Design
http://www.flickr.com/photos/rockyvi/6451635085/sizes/m/in/photolist-aQ7jkF/
Some rights reserved by Rocky VI - http://www.flickr.com/photos/rockyvi/
License: http://creativecommons.org/licenses/by-nc-nd/2.0/
Who gets to use our tools?
Don’t be ableist
How People with Disabilities Use the Web: Overview https://www.w3.org/WAI/intro/people-use-web /
Designing Trustable AI Experiences / @carologic
Privacy
What must a user reveal?
Who owns the data?
Life expectancy of data?
PAPA (Privacy, Accuracy, Property, Accessibility)
Ethical Issues in IS by Richard Mason.
https://www.gdrc.org/info-design/4-ethics.html
Designing Trustable AI Experiences / @carologic
Bias
Show awareness
Acknowledge issues
Overcommunicate
“Be uncomfortable”
- Laura Kalbag
Ethical design is not superficial.
Designing Trustable AI Experiences / @carologic
Take Responsibility
Desk Set (1957), Twentieth Century Fox
How to Keep Your AI from Turning into a Racist Monster
By Megan Garcia. https://www.wired.com/2017/02/keep-ai-turning-racist-monster/
Designing Trustable AI Experiences / @carologic
Code of Conduct / Ethics
What do you value?
Helping people?
What lines won’t your
AI cross?
How will you track your
progress?
Inspired by “3 guiding principles for ethical AI, from IBM CEO Ginni Rometty”
by Alison DeNisco. January 17, 2017, Tech Republic
http://www.techrepublic.com/article/3-guiding-principles-for-ethical-ai-from-ibm-ceo-ginni-rometty/
Designing Trustable AI Experiences / @carologic
Guidance
UXPA Code
of professional
conduct
ACM Code of Ethics
and Professional
Conduct
Designing Trustable AI Experiences / @carologic
Hire/work with people affected by bias
Designing Trustable AI Experiences / @carologic
Make it your business to keep people safe
Monitor system
Identify warning signs
Use plain language
Designing Trustable AI Experiences / @carologic
Black Mirror Brainstorms
Create Black Mirror
episode about misuse
of your product
Pair with @brownorama's
"abusability testing"
Tweet by @aaronzlewis:
https://twitter.com/aaronzlewis/status/1063544871472914432
Designing Trustable AI Experiences / @carologic
Unintended consequences
Becomes a Nazi?
Who can report? To whom?
Method for turning it off?
Who notified?
Unintended consequences
of turning off?
Google’s tensor processing units:
https://www.nytimes.com/2018/02/12/technology/google-artificial-intelligence-chips.html
Designing Trustable AI Experiences / @carologic
“If it’s not usable, it’s not secure.”
– Jared Spool, IAS17
“Ensure humans can unplug the machines”
– Grady Booch, Ted Talk
Unintuitive and Insecure: Fixing the Failures of Authentication, Jared Spool, IA Summit 2017
Grady Booch, Scientist, philosopher, IBM’er
https://www.ted.com/talks/grady_booch_don_t_fear_superintelligence
Designing Trustable AI Experiences at IxDA Pittsburgh, Jan 2019
Designing Trustable AI Experiences / @carologic
How might we
engender trust?
Content
and curation
TrainingManagement
Designing Trustable AI Experiences / @carologic
Provide Transparency
Who
What
When*
Why
How
*Where isn’t typically applicable
pintura - paint /blue/azul by Alexander Andrade.
Designing Trustable AI Experiences / @carologic
Who
Experience, knowledge
– Content creator and curator
– System trainer and manager
– Report issues to
– Shuts down the system
Designing Trustable AI Experiences / @carologic
My content - Image Recognition
Carol’s search for “cat” on her Google Photos account.
Designing Trustable AI Experiences / @carologic
What
Content
– Source
– Method of curation
– AI generated vs. other
– Changes
– Known inherent biases
Type of training
Confidence
Management practices
Examples of potential
building bias
Designing Trustable AI Experiences / @carologic
Understanding human speech
IBM Watson developed for quiz show Jeopardy
Won against champions in 2011
https://en.wikipedia.org/wiki/Watson_(computer)
Video: “IBM's Watson Supercomputer Destroys Humans in Jeopardy | Engadget”
Designing Trustable AI Experiences / @carologic
When
Content age
System created
Updated
Audited
Changed
Mysore Clocktower - clock face By Christopher Fynn
Designing Trustable AI Experiences / @carologic
American Tax Day (2017)
H&R Block worked with IBM Watson for 2017 Tax Season
Designing Trustable AI Experiences / @carologic
Why
Decisions made
Content of communications
Data changed
Designing Trustable AI Experiences / @carologic
Strategic Games
1997 Chess, IBM
2016 Go, Google
Floor goban, 2007, By Goban1 https://commons.wikimedia.org/wiki/File:FloorGoban.JPG
Graphic, Science Magazine: http://www.sciencemag.org/news/2016/03/update-why-week-s-man-
versus-machine-go-match-doesn-t-matter-and-what-does
Designing Trustable AI Experiences / @carologic
Chatbots?
IA
Mapping
Expected language
https://www.pexels.com/photo/close-up-of-mobile-phone-248512/
https://www.amazon.com/Amazon-Echo-Bluetooth-Speaker-with-WiFi-Alexa/dp/B00X4WHP5E
https://www.ibm.com/watson/developercloud/doc/conversation/index.html
Designing Trustable AI Experiences / @carologic
How
Address common fears
Manage unintended consequences
Report issues
Control balance
Image: 2001: A Space Odyssey (1968) “Odyssee im weltraum” – German
DVD disc cover. From IMBD.
Designing Trustable AI Experiences / @carologic
Automating labeling of birdsongs
Photo by Gallo71 (Own work) [Public domain], via Wikimedia Commons
https://commons.wikimedia.org/wiki/File%3ARbruni.JPG
Designing Trustable AI Experiences / @carologic
Pattern recognition
Natural Language
Processing
Image Analysis
IBM Watson https://twitter.com/IBMWatson/status/844545761740292096
AI matures:
Update management
approach
Create
ethical,
transparent
and fair
AI
Toward ethical, transparent and fair AI/ML: a critical reading list
By Eirini Malliaraki, Feb 19 via tweet from @robmccargow https://medium.com/@eirinimalliaraki/toward-ethical-
transparent-and-fair-ai-ml-a-critical-reading-list-d950e70a70ea
Designing Trustable AI Experiences / @carologic
Create ethical, transparent and fair AI
Content
and curation
TrainingManagement
Designing Trustable AI Experiences / @carologic
Continue the conversation... UX Breakfast!
LinkedIn: CarolJSmith
Twitter: @Carologic
Slideshare: carologic
Designing Trustable AI Experiences / @carologic
AI, UX – you pick
Designing Trustable AI Experiences / @carologic
Appendix
Additional Information and Resources
Designing Trustable AI Experiences / @carologic
Explore AI - Don’t fear AI
Try out tools (appendix and notes)
Pair with others
Teach others about AI
Designing Trustable AI Experiences / @carologic
AI Tools
• A list of artificial intelligence tools you can use today — for businesses, by Liam
Hanel, July 11, 2017 on Lyr.AI
https://lyr.ai/a-list-of-artificial-intelligence-tools-you-can-use-today%E2%80%8A-
%E2%80%8Afor-businesses/ and https://medium.com/imlyra/a-list-of-artificial-
intelligence-tools-you-can-use-today-for-personal-use-1-3-7f1b60b6c94f
• Best AI and machine learning tools for developers, By Christina Mercer, Sep 26,
2017 in Techworld from IDG https://www.techworld.com/picture-gallery/apps-
wearables/best-ai-machine-learning-tools-for-developers-3657996/
• 15 Top Open Source Artificial Intelligence Tools by Cynthia Harvey, September
12, 2016 on Datamation https://www.datamation.com/open-source/slideshows/15-
top-open-source-artificial-intelligence-tools.html
• IBM Watson Developer Tools (free trials):
https://console.ng.bluemix.net/catalog/?category=watson
Designing Trustable AI Experiences / @carologic
10 Major Milestones in the History of AI
https://www.analyticsvidhya.com/blog/2016/12/artificial-intelligence-demystified/
Designing Trustable AI Experiences / @carologic
Types
of
Machine Learning
Designing Trustable AI Experiences / @carologic
Supervised Learning
Specialists involved in content creation and training
Programmer and/or GUI
Most common
Artificial Intelligence Demystified by. Rahul December 23, 2016. Analytics Vidhya
https://www.analyticsvidhya.com/blog/2016/12/artificial-intelligence-demystified/
Designing Trustable AI Experiences / @carologic
Annotating Content
Image created by Angela Swindell, Visual Designer, IBM
Designing Trustable AI Experiences / @carologic
Supervised Machine Learning - GUI
Watson Knowledge Studio, Supervised Machine Learning:
https://www.ibm.com/us-en/marketplace/supervised-machine-learning
Designing Trustable AI Experiences / @carologic
Types of Machine Learning
Unsupervised learning
– Machine defines patterns
Reinforced learning
– Games – rules and rewards
Artificial Intelligence Demystified by Rahul
rahul@upxacademy.com December 23, 2016. Analytics Vidhya
https://www.analyticsvidhya.com/blog/2016/12/artificial-intelligence-demystified/
Designing Trustable AI Experiences / @carologic
Deep Learning
Classify objects based
on features
Can be applied
to other types of AI
Toward ethical, transparent and fair AI/ML: a critical reading list
By Eirini Malliaraki, Feb 19 via tweet from @robmccargow https://medium.com/@eirinimalliaraki/toward-ethical-
transparent-and-fair-ai-ml-a-critical-reading-list-d950e70a70ea
Designing Trustable AI Experiences / @carologic
Want to Know More?
• The Rise Of Artificial Intelligence As A Service In The Public
Cloud
Rise Of Artificial Intelligence As A Service In The Public Cloud by Janakiram MSV , Forbes Article:
https://www.forbes.com/sites/janakirammsv/2018/02/22/the-rise-of-artificial-intelligence-as-a-service-in-the-public-cloud/#11aa85a8198e
Courses at http://www.fast.ai/
Designing Trustable AI Experiences / @carologic
Humans love robots
Designing Trustable AI Experiences / @carologic
Resources
• AI​ ​Now​ ​2017​ ​Report, New York University, and AI Now
https://assets.ctfassets.net/8wprhhvnpfc0/1A9c3ZTCZa2KEYM64Wsc2a/8636557c5fb14f2b74b2be64c3ce0c
78/_AI_Now_Institute_2017_Report_.pdf
• “How IBM is Competing with Google in AI.” The Information. https://www.theinformation.com/how-ibm-is-
competing-with-google-in-ai?eu=2zIDMNYNjDp7KqL4YqAXXA
• “The business case for augmented intelligence” https://medium.com/cognitivebusiness/the-business-case-for-
augmented-intelligence-36afa64cd675
• “Comparison of machine learning methods applied to birdsong element classification” by David Nicholson.
Proceedings of the 15th Python in Science Conference (SCIPY 2016).
http://conference.scipy.org/proceedings/scipy2016/pdfs/david_nicholson.pdf
• “Staples’ “Easy Button” Comes to Life with IBM Watson” in Business Wire, October 25, 2016.
http://www.businesswire.com/news/home/20161025006273/en/Staples%E2%80%99-%E2%80%9CEasy-
Button%E2%80%9D-Life-IBM-Watson
• “How Staples Is Making Its Easy Button Even Easier With A.I.” by Chris Cancialosi, Forbes.
https://www.forbes.com/sites/chriscancialosi/2016/12/13/how-staples-is-making-its-easy-button-even-easier-
with-a-i/#4ae66e8359ef
• “Inside Intel: The Race for Faster Machine Learning”
Designing Trustable AI Experiences / @carologic
More Resources
• “Update: Why this week’s man-versus-machine Go match doesn’t matter (and what does)” by Dana
Mackenzie. Science Magazine. Mar. 15, 2016 http://www.sciencemag.org/news/2016/03/update-why-week-s-
man-versus-machine-go-match-doesn-t-matter-and-what-does
• “For IBM’s CTO for Watson, not a lot of value in replicating the human mind in a computer.” by Frederic
Lardinois (@fredericl), TechCrunch, Posted Feb 27, 2017. https://techcrunch.com/2017/02/27/for-ibms-cto-
for-watson-not-a-lot-of-value-in-replicating-the-human-mind-in-a-computer/
• “Google and IBM: We Want Artificial Intelligence to Help You, Not Replace You” Most Powerful Women by
Michelle Toh. Mar 02, 2017. Fortune. http://fortune.com/2017/03/02/google-ibm-artificial-intelligence/
• “Facebook scales back AI flagship after chatbots hit 70% f-AI-lure rate - 'The limitations of automation‘” by
Andrew Orlowski. Feb 22, 2017. The Register https://www.theregister.co.uk/2017/02/22/facebook_ai_fail/
• “Microsoft is deleting its AI chatbot's incredibly racist tweets” by Rob Price. Mar. 24, 2016. Business Insider
UK. http://www.businessinsider.com/microsoft-deletes-racist-genocidal-tweets-from-ai-chatbot-tay-2016-3
Special Thanks: Soundtrack to 'Run Lola Run', 1998 German thriller film written and directed by Tom Tykwer,
and starring Franka Potente as Lola and Moritz Bleibtreu as Manni. Soundtrack by Tykwer, Johnny Klimek, and
Reinhold Heil
Designing Trustable AI Experiences / @carologic
Even More Resources
• “IBM’s Automated Radiologist Can Read Images and Medical Records” by Tom Simonite, February 4, 2016.
Intelligent Machines, MIT Technology Review. https://www.technologyreview.com/s/600706/ibms-automated-
radiologist-can-read-images-and-medical-records/
• “The IBM, Salesforce AI Mash-Up Could Be a Stroke of Genius” by Adam Lashinsky, Mar 07, 2017. Fortune.
http://fortune.com/2017/03/07/data-sheet-ibm-salesforce/
• "Google can now tell you're not a robot with just one click" by Andy Greenberg. Dec. 3, 2014. Security: Wired.
https://www.wired.com/2014/12/google-one-click-recaptcha/
• “Essentials of Machine Learning Algorithms (with Python and R Codes)” by Sunil Ray, August 10, 2015.
Analytics Vidhya. https://www.analyticsvidhya.com/blog/2015/08/common-machine-learning-algorithms/
• IBM on Machine Learning https://www.ibm.com/analytics/us/en/technology/machine-learning/
• “At Davos, IBM CEO Ginni Rometty Downplays Fears of a Robot Takeover” by Claire Zillman, Jan 18, 2017.
Fortune. http://fortune.com/2017/01/18/ibm-ceo-ginni-rometty-ai-davos/
• “Google and IBM: We Want Artificial Intelligence to Help You, Not Replace You” by Michelle Toh. Mar 02,
2017. Fortune. http://fortune.com/2017/03/02/google-ibm-artificial-intelligence/
Designing Trustable AI Experiences / @carologic
Yes, even more resources
• Video: “IBM Watson Knowledge Studio: Teach Watson about your unstructured data”
https://www.youtube.com/watch?v=caIdJjtvX1s&t=6s
• “The optimist’s guide to the robot apocalypse” by Sarah Kessler, @sarahfkessler. March 09, 2017. QZ.
https://qz.com/904285/the-optimists-guide-to-the-robot-apocalypse/
• “AI Influencers 2017: Top 30 people in AI you should follow on Twitter" by Trips Reddy @tripsy, Senior
Content Manager, IBM Watson . February 10, 2017 https://www.ibm.com/blogs/watson/2017/02/ai-
influencers-2017-top-25-people-ai-follow-twitter/
• “3 guiding principles for ethical AI, from IBM CEO Ginni Rometty” by Alison DeNisco. January 17, 2017, Tech
Republic http://www.techrepublic.com/article/3-guiding-principles-for-ethical-ai-from-ibm-ceo-ginni-rometty/
• "Transparency and Trust in the Cognitive Era" January 17, 2017 Written by: IBM THINK Blog
https://www.ibm.com/blogs/think/2017/01/ibm-cognitive-principles/
• "Ethics and Artificial Intelligence: The Moral Compass of a Machine“ by Kris Hammond, April 13, 2016.
Recode. http://www.recode.net/2016/4/13/11644890/ethics-and-artificial-intelligence-the-moral-compass-of-a-
machine
Designing Trustable AI Experiences / @carologic
Last bit: I promise
• "The importance of human innovation in A.I. ethics" by John C. Havens. Oct. 03, 2015
http://mashable.com/2015/10/03/ethics-artificial-intelligence/#yljsShvAFsqy
• "Me, Myself and AI" Fjordnet Limited 2017 - Accenture Digital.
https://trends.fjordnet.com/trends/me-myself-ai
• "Testing AI concepts in user research" By Chris Butler, Mar 2, 2017. https://uxdesign.cc/testing-ai-
concepts-in-user-research-b742a9a92e55#.58jtc7nzo
• "CMU prof says computers that can 'see' soon will permeate our lives“ by Aaron Aupperlee. March
16, 2017. http://triblive.com/news/adminpage/12080408-74/cmu-prof-says-computers-that-can-
see-soon-will-permeate-our-lives
• “The business case for augmented intelligence” by Nancy Pearson, VP Marketing, IBM Cognitive.
https://medium.com/cognitivebusiness/the-business-case-for-augmented-intelligence-
36afa64cd675#.qqzvunakw
Designing Trustable AI Experiences / @carologic
Definition: Artificial Intelligence
• Artificial intelligence (AI) is intelligence exhibited by machines.
• In computer science, an ideal "intelligent" machine is a flexible rational agent that
perceives its environment and takes actions that maximize its chance of success
at some goal.[1] Colloquially, the term "artificial intelligence" is applied when a
machine mimics "cognitive" functions that humans associate with other human
minds, such as "learning" and "problem solving".[2]
• Capabilities currently classified as AI include successfully understanding human
speech,[4] competing at a high level in strategic game systems (such as Chess
and Go[5]), self-driving cars, and interpreting complex data.
Wikipedia: https://en.wikipedia.org/wiki/Artificial_intelligence#cite_note-Intelligent_agents-1
Designing Trustable AI Experiences / @carologic
Definition: The Singularity
• If research into Strong AI produced sufficiently intelligent software, it might be able to reprogram
and improve itself. The improved software would be even better at improving itself, leading to
recursive self-improvement.[245] The new intelligence could thus increase exponentially and
dramatically surpass humans. Science fiction writer Vernor Vinge named this scenario
"singularity".[246] Technological singularity is when accelerating progress in technologies will
cause a runaway effect wherein artificial intelligence will exceed human intellectual capacity and
control, thus radically changing or even ending civilization. Because the capabilities of such an
intelligence may be impossible to comprehend, the technological singularity is an occurrence
beyond which events are unpredictable or even unfathomable.[246]
• Ray Kurzweil has used Moore's law (which describes the relentless exponential improvement in
digital technology) to calculate that desktop computers will have the same processing power as
human brains by the year 2029, and predicts that the singularity will occur in 2045.[246]
Wikipedia: https://en.wikipedia.org/wiki/Artificial_intelligence#cite_note-Intelligent_agents-1
Designing Trustable AI Experiences / @carologic
Definition: Machine Learning
• Ability for system to take basic knowledge (does not mean simple or non-complex)
and apply that knowledge to new data
• Raises ability to discover new information. Find unknowns in data.
• https://en.wikipedia.org/wiki/Machine_learning
More Definitions:
• Algorithm: a process or set of rules to be followed in calculations or other problem-
solving operations, especially by a computer.
https://en.wikipedia.org/wiki/Algorithm
• Natural Language Processing (NLP):
https://en.wikipedia.org/wiki/Natural_language_processing

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Designing Trustable AI Experiences at IxDA Pittsburgh, Jan 2019

  • 1. Designing Trustable AI Experiences Carol Smith @carologic IxDA Pittsburgh, January 24, 2019 This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License except where noted otherwise.
  • 2. Designing Trustable AI Experiences / @carologic Humanity…
  • 3. AI is as imperfect as the humans making it
  • 4. Designing Trustable AI Experiences / @carologic What is AI?
  • 5. AI is present when computers/machines – Exhibit intelligence – Perceive their environment – Take actions/make decision to maximize chance of success at goal https://developer.softbankrobotics.com/us-en/showcase/nao-ibm-create-new-hilton-concierge
  • 6. Designing Trustable AI Experiences / @carologic AI/Cognitive computers are Algorithms Know ONLY what you teach Control ONLY what given control of Aware of nuances and can continue to learn
  • 7. Designing Trustable AI Experiences / @carologic Types of AI Image: Best Artificial Intelligence Software, © 2019 G2 Crowd, Inc. All rights reserved
  • 8. Dynamic Data + training - Apply to new situations
  • 9. Designing Trustable AI Experiences / @carologic Taxonomies and Ontologies coming to life (NOT like humans learn) Photo: https://commons.wikimedia.org/wiki/File:Baby_Boy_Oliver.jpg
  • 11. “We need AI for that!”
  • 12. Designing Trustable AI Experiences / @carologic Like Any Good Design Understand people and problem deeply Build right AI system Different problems require different systems
  • 13. Designing Trustable AI Experiences / @carologic Major Decision Points Content and curation TrainingManagement
  • 14. Designing Trustable AI Experiences / @carologic Ethics and Morals
  • 15. Trolley Problem Trolley Car 36, Rockford, Illinois https://www.rockfordparkdistrict.org/trolley Does the Trolley Problem Have a Problem? What if your answer to an absurd hypothetical question had no bearing on how you behaved in real life? By Daniel Engber. Slate.com. June 18, 2018. Image of anxious hypothetical trolley car lever operator by Lisa Larson-Walker https://slate.com/technology/2018/06/psychologys-trolley-problem-might-have-a-problem.html
  • 18. Designing Trustable AI Experiences / @carologic Designing for Trust
  • 19. Designing Trustable AI Experiences / @carologic Provide Transparency Who What When* Why How *Where isn’t typically applicable
  • 20. Designing Trustable AI Experiences / @carologic Content and Curation Content and curation TrainingManagement
  • 21. Designing Trustable AI Experiences / @carologic Content Source Exists Available Quantity Quality Photo by sunlightfoundation https://www.flickr.com/photos/sunlightfoundation/2385174105
  • 22. Designing Trustable AI Experiences / @carologic Number Five “Needs Input” Short Circuit (1986 film) Ally Sheedy and Number Five (Tim Blaney) https://en.wikipedia.org/wiki/Short_Circuit_(1986_film)
  • 24. Social class, resource availability Race, Gender, Sexuality Culture, Theology, Tradition More…
  • 25. Designing Trustable AI Experiences / @carologic Who: Creation and Curation Respected experts Diverse backgrounds
  • 26. Designing Trustable AI Experiences / @carologic Humans required to teach and monitor AI Water Prune/Shape Cull
  • 27. Only as good as data and time spent improving it
  • 28. Designing Trustable AI Experiences / @carologic Training and Accuracy Content and curation TrainingManagement
  • 29. Designing Trustable AI Experiences / @carologic Experts to train system Vetting Availability Process Maintain quality
  • 30. who doesn’t bring cookies Accuracy Similar to cloning a colleague no-bake cookies photo by Melissa Hillier - recipe blogged at jonahbonah.com https://www.flickr.com/photos/77423179@N02/7848109610/in/photolist-cXvByE-x51nF-218WBFr-Z78P3y-6HKkBs-MMkWFT-6wKNxR-7jmLft-6kDRm3-6kDSsN-6kDUvY-6wRRoV-7cYgGN-6kEnjs-6kEaKh-3kHP9P-6kEo6N-6kEAg9-giXGrA-N67c4-5X mXw1- cgk3ow-6kzJog-6kA5oZ-aYqEpT-MMkVVV-7aQLnM-ecL6fm-6kEd67-5ykEkC-2bsTnp3-dCh7J9-T4tu4i-8HdYNJ-73SMVr-6uwEGT-6kE34b-MMkEqr-6kEFws-6kEjVu-25rwHBc-6kA42g-6kzTi4-T36Moj-7Bx3rf-7vPVhb-6YNEHC-amariC-neddpV-ZNpJHE
  • 31. Designing Trustable AI Experiences / @carologic Priority of accuracy across industries Higher Priority 90-99%+ Lower Priority 60-89% accuracy is acceptable Financial Ecommerce
  • 32. Designing Trustable AI Experiences / @carologic Management Content and curation TrainingManagement
  • 33. Designing Trustable AI Experiences / @carologic Responsible, Intentional Design http://www.flickr.com/photos/rockyvi/6451635085/sizes/m/in/photolist-aQ7jkF/ Some rights reserved by Rocky VI - http://www.flickr.com/photos/rockyvi/ License: http://creativecommons.org/licenses/by-nc-nd/2.0/
  • 34. Who gets to use our tools? Don’t be ableist How People with Disabilities Use the Web: Overview https://www.w3.org/WAI/intro/people-use-web /
  • 35. Designing Trustable AI Experiences / @carologic Privacy What must a user reveal? Who owns the data? Life expectancy of data? PAPA (Privacy, Accuracy, Property, Accessibility) Ethical Issues in IS by Richard Mason. https://www.gdrc.org/info-design/4-ethics.html
  • 36. Designing Trustable AI Experiences / @carologic Bias Show awareness Acknowledge issues Overcommunicate
  • 37. “Be uncomfortable” - Laura Kalbag Ethical design is not superficial.
  • 38. Designing Trustable AI Experiences / @carologic Take Responsibility Desk Set (1957), Twentieth Century Fox How to Keep Your AI from Turning into a Racist Monster By Megan Garcia. https://www.wired.com/2017/02/keep-ai-turning-racist-monster/
  • 39. Designing Trustable AI Experiences / @carologic Code of Conduct / Ethics What do you value? Helping people? What lines won’t your AI cross? How will you track your progress? Inspired by “3 guiding principles for ethical AI, from IBM CEO Ginni Rometty” by Alison DeNisco. January 17, 2017, Tech Republic http://www.techrepublic.com/article/3-guiding-principles-for-ethical-ai-from-ibm-ceo-ginni-rometty/
  • 40. Designing Trustable AI Experiences / @carologic Guidance UXPA Code of professional conduct ACM Code of Ethics and Professional Conduct
  • 41. Designing Trustable AI Experiences / @carologic Hire/work with people affected by bias
  • 42. Designing Trustable AI Experiences / @carologic Make it your business to keep people safe Monitor system Identify warning signs Use plain language
  • 43. Designing Trustable AI Experiences / @carologic Black Mirror Brainstorms Create Black Mirror episode about misuse of your product Pair with @brownorama's "abusability testing" Tweet by @aaronzlewis: https://twitter.com/aaronzlewis/status/1063544871472914432
  • 44. Designing Trustable AI Experiences / @carologic Unintended consequences Becomes a Nazi? Who can report? To whom? Method for turning it off? Who notified? Unintended consequences of turning off? Google’s tensor processing units: https://www.nytimes.com/2018/02/12/technology/google-artificial-intelligence-chips.html
  • 45. Designing Trustable AI Experiences / @carologic “If it’s not usable, it’s not secure.” – Jared Spool, IAS17 “Ensure humans can unplug the machines” – Grady Booch, Ted Talk Unintuitive and Insecure: Fixing the Failures of Authentication, Jared Spool, IA Summit 2017 Grady Booch, Scientist, philosopher, IBM’er https://www.ted.com/talks/grady_booch_don_t_fear_superintelligence
  • 47. Designing Trustable AI Experiences / @carologic How might we engender trust? Content and curation TrainingManagement
  • 48. Designing Trustable AI Experiences / @carologic Provide Transparency Who What When* Why How *Where isn’t typically applicable pintura - paint /blue/azul by Alexander Andrade.
  • 49. Designing Trustable AI Experiences / @carologic Who Experience, knowledge – Content creator and curator – System trainer and manager – Report issues to – Shuts down the system
  • 50. Designing Trustable AI Experiences / @carologic My content - Image Recognition Carol’s search for “cat” on her Google Photos account.
  • 51. Designing Trustable AI Experiences / @carologic What Content – Source – Method of curation – AI generated vs. other – Changes – Known inherent biases Type of training Confidence Management practices Examples of potential building bias
  • 52. Designing Trustable AI Experiences / @carologic Understanding human speech IBM Watson developed for quiz show Jeopardy Won against champions in 2011 https://en.wikipedia.org/wiki/Watson_(computer) Video: “IBM's Watson Supercomputer Destroys Humans in Jeopardy | Engadget”
  • 53. Designing Trustable AI Experiences / @carologic When Content age System created Updated Audited Changed Mysore Clocktower - clock face By Christopher Fynn
  • 54. Designing Trustable AI Experiences / @carologic American Tax Day (2017) H&R Block worked with IBM Watson for 2017 Tax Season
  • 55. Designing Trustable AI Experiences / @carologic Why Decisions made Content of communications Data changed
  • 56. Designing Trustable AI Experiences / @carologic Strategic Games 1997 Chess, IBM 2016 Go, Google Floor goban, 2007, By Goban1 https://commons.wikimedia.org/wiki/File:FloorGoban.JPG Graphic, Science Magazine: http://www.sciencemag.org/news/2016/03/update-why-week-s-man- versus-machine-go-match-doesn-t-matter-and-what-does
  • 57. Designing Trustable AI Experiences / @carologic Chatbots? IA Mapping Expected language https://www.pexels.com/photo/close-up-of-mobile-phone-248512/ https://www.amazon.com/Amazon-Echo-Bluetooth-Speaker-with-WiFi-Alexa/dp/B00X4WHP5E https://www.ibm.com/watson/developercloud/doc/conversation/index.html
  • 58. Designing Trustable AI Experiences / @carologic How Address common fears Manage unintended consequences Report issues Control balance Image: 2001: A Space Odyssey (1968) “Odyssee im weltraum” – German DVD disc cover. From IMBD.
  • 59. Designing Trustable AI Experiences / @carologic Automating labeling of birdsongs Photo by Gallo71 (Own work) [Public domain], via Wikimedia Commons https://commons.wikimedia.org/wiki/File%3ARbruni.JPG
  • 60. Designing Trustable AI Experiences / @carologic Pattern recognition Natural Language Processing Image Analysis IBM Watson https://twitter.com/IBMWatson/status/844545761740292096
  • 62. Create ethical, transparent and fair AI Toward ethical, transparent and fair AI/ML: a critical reading list By Eirini Malliaraki, Feb 19 via tweet from @robmccargow https://medium.com/@eirinimalliaraki/toward-ethical- transparent-and-fair-ai-ml-a-critical-reading-list-d950e70a70ea
  • 63. Designing Trustable AI Experiences / @carologic Create ethical, transparent and fair AI Content and curation TrainingManagement
  • 64. Designing Trustable AI Experiences / @carologic Continue the conversation... UX Breakfast! LinkedIn: CarolJSmith Twitter: @Carologic Slideshare: carologic
  • 65. Designing Trustable AI Experiences / @carologic AI, UX – you pick
  • 66. Designing Trustable AI Experiences / @carologic Appendix Additional Information and Resources
  • 67. Designing Trustable AI Experiences / @carologic Explore AI - Don’t fear AI Try out tools (appendix and notes) Pair with others Teach others about AI
  • 68. Designing Trustable AI Experiences / @carologic AI Tools • A list of artificial intelligence tools you can use today — for businesses, by Liam Hanel, July 11, 2017 on Lyr.AI https://lyr.ai/a-list-of-artificial-intelligence-tools-you-can-use-today%E2%80%8A- %E2%80%8Afor-businesses/ and https://medium.com/imlyra/a-list-of-artificial- intelligence-tools-you-can-use-today-for-personal-use-1-3-7f1b60b6c94f • Best AI and machine learning tools for developers, By Christina Mercer, Sep 26, 2017 in Techworld from IDG https://www.techworld.com/picture-gallery/apps- wearables/best-ai-machine-learning-tools-for-developers-3657996/ • 15 Top Open Source Artificial Intelligence Tools by Cynthia Harvey, September 12, 2016 on Datamation https://www.datamation.com/open-source/slideshows/15- top-open-source-artificial-intelligence-tools.html • IBM Watson Developer Tools (free trials): https://console.ng.bluemix.net/catalog/?category=watson
  • 69. Designing Trustable AI Experiences / @carologic 10 Major Milestones in the History of AI https://www.analyticsvidhya.com/blog/2016/12/artificial-intelligence-demystified/
  • 70. Designing Trustable AI Experiences / @carologic Types of Machine Learning
  • 71. Designing Trustable AI Experiences / @carologic Supervised Learning Specialists involved in content creation and training Programmer and/or GUI Most common Artificial Intelligence Demystified by. Rahul December 23, 2016. Analytics Vidhya https://www.analyticsvidhya.com/blog/2016/12/artificial-intelligence-demystified/
  • 72. Designing Trustable AI Experiences / @carologic Annotating Content Image created by Angela Swindell, Visual Designer, IBM
  • 73. Designing Trustable AI Experiences / @carologic Supervised Machine Learning - GUI Watson Knowledge Studio, Supervised Machine Learning: https://www.ibm.com/us-en/marketplace/supervised-machine-learning
  • 74. Designing Trustable AI Experiences / @carologic Types of Machine Learning Unsupervised learning – Machine defines patterns Reinforced learning – Games – rules and rewards Artificial Intelligence Demystified by Rahul rahul@upxacademy.com December 23, 2016. Analytics Vidhya https://www.analyticsvidhya.com/blog/2016/12/artificial-intelligence-demystified/
  • 75. Designing Trustable AI Experiences / @carologic Deep Learning Classify objects based on features Can be applied to other types of AI Toward ethical, transparent and fair AI/ML: a critical reading list By Eirini Malliaraki, Feb 19 via tweet from @robmccargow https://medium.com/@eirinimalliaraki/toward-ethical- transparent-and-fair-ai-ml-a-critical-reading-list-d950e70a70ea
  • 76. Designing Trustable AI Experiences / @carologic Want to Know More? • The Rise Of Artificial Intelligence As A Service In The Public Cloud Rise Of Artificial Intelligence As A Service In The Public Cloud by Janakiram MSV , Forbes Article: https://www.forbes.com/sites/janakirammsv/2018/02/22/the-rise-of-artificial-intelligence-as-a-service-in-the-public-cloud/#11aa85a8198e Courses at http://www.fast.ai/
  • 77. Designing Trustable AI Experiences / @carologic Humans love robots
  • 78. Designing Trustable AI Experiences / @carologic Resources • AI​ ​Now​ ​2017​ ​Report, New York University, and AI Now https://assets.ctfassets.net/8wprhhvnpfc0/1A9c3ZTCZa2KEYM64Wsc2a/8636557c5fb14f2b74b2be64c3ce0c 78/_AI_Now_Institute_2017_Report_.pdf • “How IBM is Competing with Google in AI.” The Information. https://www.theinformation.com/how-ibm-is- competing-with-google-in-ai?eu=2zIDMNYNjDp7KqL4YqAXXA • “The business case for augmented intelligence” https://medium.com/cognitivebusiness/the-business-case-for- augmented-intelligence-36afa64cd675 • “Comparison of machine learning methods applied to birdsong element classification” by David Nicholson. Proceedings of the 15th Python in Science Conference (SCIPY 2016). http://conference.scipy.org/proceedings/scipy2016/pdfs/david_nicholson.pdf • “Staples’ “Easy Button” Comes to Life with IBM Watson” in Business Wire, October 25, 2016. http://www.businesswire.com/news/home/20161025006273/en/Staples%E2%80%99-%E2%80%9CEasy- Button%E2%80%9D-Life-IBM-Watson • “How Staples Is Making Its Easy Button Even Easier With A.I.” by Chris Cancialosi, Forbes. https://www.forbes.com/sites/chriscancialosi/2016/12/13/how-staples-is-making-its-easy-button-even-easier- with-a-i/#4ae66e8359ef • “Inside Intel: The Race for Faster Machine Learning”
  • 79. Designing Trustable AI Experiences / @carologic More Resources • “Update: Why this week’s man-versus-machine Go match doesn’t matter (and what does)” by Dana Mackenzie. Science Magazine. Mar. 15, 2016 http://www.sciencemag.org/news/2016/03/update-why-week-s- man-versus-machine-go-match-doesn-t-matter-and-what-does • “For IBM’s CTO for Watson, not a lot of value in replicating the human mind in a computer.” by Frederic Lardinois (@fredericl), TechCrunch, Posted Feb 27, 2017. https://techcrunch.com/2017/02/27/for-ibms-cto- for-watson-not-a-lot-of-value-in-replicating-the-human-mind-in-a-computer/ • “Google and IBM: We Want Artificial Intelligence to Help You, Not Replace You” Most Powerful Women by Michelle Toh. Mar 02, 2017. Fortune. http://fortune.com/2017/03/02/google-ibm-artificial-intelligence/ • “Facebook scales back AI flagship after chatbots hit 70% f-AI-lure rate - 'The limitations of automation‘” by Andrew Orlowski. Feb 22, 2017. The Register https://www.theregister.co.uk/2017/02/22/facebook_ai_fail/ • “Microsoft is deleting its AI chatbot's incredibly racist tweets” by Rob Price. Mar. 24, 2016. Business Insider UK. http://www.businessinsider.com/microsoft-deletes-racist-genocidal-tweets-from-ai-chatbot-tay-2016-3 Special Thanks: Soundtrack to 'Run Lola Run', 1998 German thriller film written and directed by Tom Tykwer, and starring Franka Potente as Lola and Moritz Bleibtreu as Manni. Soundtrack by Tykwer, Johnny Klimek, and Reinhold Heil
  • 80. Designing Trustable AI Experiences / @carologic Even More Resources • “IBM’s Automated Radiologist Can Read Images and Medical Records” by Tom Simonite, February 4, 2016. Intelligent Machines, MIT Technology Review. https://www.technologyreview.com/s/600706/ibms-automated- radiologist-can-read-images-and-medical-records/ • “The IBM, Salesforce AI Mash-Up Could Be a Stroke of Genius” by Adam Lashinsky, Mar 07, 2017. Fortune. http://fortune.com/2017/03/07/data-sheet-ibm-salesforce/ • "Google can now tell you're not a robot with just one click" by Andy Greenberg. Dec. 3, 2014. Security: Wired. https://www.wired.com/2014/12/google-one-click-recaptcha/ • “Essentials of Machine Learning Algorithms (with Python and R Codes)” by Sunil Ray, August 10, 2015. Analytics Vidhya. https://www.analyticsvidhya.com/blog/2015/08/common-machine-learning-algorithms/ • IBM on Machine Learning https://www.ibm.com/analytics/us/en/technology/machine-learning/ • “At Davos, IBM CEO Ginni Rometty Downplays Fears of a Robot Takeover” by Claire Zillman, Jan 18, 2017. Fortune. http://fortune.com/2017/01/18/ibm-ceo-ginni-rometty-ai-davos/ • “Google and IBM: We Want Artificial Intelligence to Help You, Not Replace You” by Michelle Toh. Mar 02, 2017. Fortune. http://fortune.com/2017/03/02/google-ibm-artificial-intelligence/
  • 81. Designing Trustable AI Experiences / @carologic Yes, even more resources • Video: “IBM Watson Knowledge Studio: Teach Watson about your unstructured data” https://www.youtube.com/watch?v=caIdJjtvX1s&t=6s • “The optimist’s guide to the robot apocalypse” by Sarah Kessler, @sarahfkessler. March 09, 2017. QZ. https://qz.com/904285/the-optimists-guide-to-the-robot-apocalypse/ • “AI Influencers 2017: Top 30 people in AI you should follow on Twitter" by Trips Reddy @tripsy, Senior Content Manager, IBM Watson . February 10, 2017 https://www.ibm.com/blogs/watson/2017/02/ai- influencers-2017-top-25-people-ai-follow-twitter/ • “3 guiding principles for ethical AI, from IBM CEO Ginni Rometty” by Alison DeNisco. January 17, 2017, Tech Republic http://www.techrepublic.com/article/3-guiding-principles-for-ethical-ai-from-ibm-ceo-ginni-rometty/ • "Transparency and Trust in the Cognitive Era" January 17, 2017 Written by: IBM THINK Blog https://www.ibm.com/blogs/think/2017/01/ibm-cognitive-principles/ • "Ethics and Artificial Intelligence: The Moral Compass of a Machine“ by Kris Hammond, April 13, 2016. Recode. http://www.recode.net/2016/4/13/11644890/ethics-and-artificial-intelligence-the-moral-compass-of-a- machine
  • 82. Designing Trustable AI Experiences / @carologic Last bit: I promise • "The importance of human innovation in A.I. ethics" by John C. Havens. Oct. 03, 2015 http://mashable.com/2015/10/03/ethics-artificial-intelligence/#yljsShvAFsqy • "Me, Myself and AI" Fjordnet Limited 2017 - Accenture Digital. https://trends.fjordnet.com/trends/me-myself-ai • "Testing AI concepts in user research" By Chris Butler, Mar 2, 2017. https://uxdesign.cc/testing-ai- concepts-in-user-research-b742a9a92e55#.58jtc7nzo • "CMU prof says computers that can 'see' soon will permeate our lives“ by Aaron Aupperlee. March 16, 2017. http://triblive.com/news/adminpage/12080408-74/cmu-prof-says-computers-that-can- see-soon-will-permeate-our-lives • “The business case for augmented intelligence” by Nancy Pearson, VP Marketing, IBM Cognitive. https://medium.com/cognitivebusiness/the-business-case-for-augmented-intelligence- 36afa64cd675#.qqzvunakw
  • 83. Designing Trustable AI Experiences / @carologic Definition: Artificial Intelligence • Artificial intelligence (AI) is intelligence exhibited by machines. • In computer science, an ideal "intelligent" machine is a flexible rational agent that perceives its environment and takes actions that maximize its chance of success at some goal.[1] Colloquially, the term "artificial intelligence" is applied when a machine mimics "cognitive" functions that humans associate with other human minds, such as "learning" and "problem solving".[2] • Capabilities currently classified as AI include successfully understanding human speech,[4] competing at a high level in strategic game systems (such as Chess and Go[5]), self-driving cars, and interpreting complex data. Wikipedia: https://en.wikipedia.org/wiki/Artificial_intelligence#cite_note-Intelligent_agents-1
  • 84. Designing Trustable AI Experiences / @carologic Definition: The Singularity • If research into Strong AI produced sufficiently intelligent software, it might be able to reprogram and improve itself. The improved software would be even better at improving itself, leading to recursive self-improvement.[245] The new intelligence could thus increase exponentially and dramatically surpass humans. Science fiction writer Vernor Vinge named this scenario "singularity".[246] Technological singularity is when accelerating progress in technologies will cause a runaway effect wherein artificial intelligence will exceed human intellectual capacity and control, thus radically changing or even ending civilization. Because the capabilities of such an intelligence may be impossible to comprehend, the technological singularity is an occurrence beyond which events are unpredictable or even unfathomable.[246] • Ray Kurzweil has used Moore's law (which describes the relentless exponential improvement in digital technology) to calculate that desktop computers will have the same processing power as human brains by the year 2029, and predicts that the singularity will occur in 2045.[246] Wikipedia: https://en.wikipedia.org/wiki/Artificial_intelligence#cite_note-Intelligent_agents-1
  • 85. Designing Trustable AI Experiences / @carologic Definition: Machine Learning • Ability for system to take basic knowledge (does not mean simple or non-complex) and apply that knowledge to new data • Raises ability to discover new information. Find unknowns in data. • https://en.wikipedia.org/wiki/Machine_learning More Definitions: • Algorithm: a process or set of rules to be followed in calculations or other problem- solving operations, especially by a computer. https://en.wikipedia.org/wiki/Algorithm • Natural Language Processing (NLP): https://en.wikipedia.org/wiki/Natural_language_processing