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CONNECTING THE ETHICS
AND EPISTEMOLOGY OF AI
FEDERICA RUSSO, ERIC SCHLIESSER, JEAN WAGEMANS
UNIVERSITY OF AMSTERDAM
@FEDERICARUSSO | @NESCIO13 | @JEANWAGEMANS
OUTLINE
● From Ethics aut Epistemology to Ethics cum Epistemology
○ Disconnected projects, ethics as a post-hoc assessment
○ Shifting focus from output to process
○ Ethics as continuous assessment, from design to use
● What can XAI learn from argumentation theory?
● A crash course on arguments from expert’s opinion
● 4 simplified scenarios
● A normative stance for real scenarios
2
FROM ETHICS AUT EPISTEMOLOGY
TO ETHICS CUM EPISTEMOLOGY
3
DISCONNECTED PROJECTS,
ETHICS AS POST HOC ASSESSMENT
• Disconnected projects:
• [Ethics] Questions of how to make AI ethically compliant, ensuring that algorithms are
as fair as possible and as unbiased as possible.
• [Epistemology] Questions of transparency / opacity of AI, i.e. , AI as a glass or opaque
box.
• AI raises important ethical concerns, therefore we need to produce suitable
mechanisms
• To audit ethics compliance
• To verify responsibility and accountability
4
Post-hoc assessment
‘STAND ALONE’ EPISTEMOLOGY
• A vast and rich debate on transparency
• What is it?
• Can we trust outcomes of opaque AI?
• But the whole debate is orthogonal to ethics concerns
5
SHIFTING FOCUS: FOR OUTCOME TO PROCESS
• Typical question: Can we trust output X of AI system Y?
• Our proposal: look at the process, before the outcome
• The whole process: design, implementation, use
• At each and every point of the process we can (should) make considerations
about
• Epistemology > transparency, explainability, validation/verification, …
• Ethics > which values are operationalized? How?
6
Builds on ‘Computational
Reliabilism’ and on Creel’s
3 types of transparency
Unlike Kearns & Roth, it is
not a trade-off, but a
design choice, proper
ETHICS AS CONTINUOUS ASSESSMENT
• Ethical considerations have to be raised
• Already at the design stage
• Throughout the whole process
• And in combination with epistemological / technical considerations
• Epistemology-cum-Ethics: the way forward for XAI
• We care about the role of designers, programmers, engineers
7
Complements
‘ethics auditing’,
e.g. Mokander &
Floridi
On how to train
ethical designers
and engineers, see
Bezuidenhout&Ratti
XAI AND
ARGUMENTS FROM EXPERT OPINION
8
LEARNING FROM ARGUMENTATION THEORY
ARGUMENT FROM EXPERT OPINION
p is true, because p is said by expert E
POSSIBLE CRITICAL QUESTIONS
• Is E really an expert about p?
• Is p true or not?
• Do other experts agree?
• Are there other interests at play?
9
• Check which form of
institutionalization guarantees
trusting the source of expertise
• Check contents p said by E
• Confront p with other expert opinions
• Check other institutional guarantees
DIMENSIONS OF INQUIRY
10
Epistemological
Queries
Normative
Queries
Expert
Non-expert
SIMPLIFIED SCENARIO 1: EPISTEMIC SYMMETRY OF
EXPERTS
• Expert A: “How did you get to result
X?”
• Expert B: “Because the system is
designed such-and-such”
• Expert A: “Is your AI system fair and
transparent?”
• B: “Yes, I operationalized concepts
XYZ in such-and-such way”
11
A question about
epistemology of AI
Expert B gives technical
details about AI system
A question about ethics
of AI
Expert B gives technical
details about how AI
system is ethical
In case of epistemic symmetry between experts, both
epistemological and ethical questions can be answered
with technical details of AI
SIMPLIFIED SCENARIO 2: EPISTEMIC ASYMMETRY
• Non-expert: “I am diagnosed with
disease X, why?”
• Expert: “Because AI said you are in
reference class XYZ”
• Non-expert: “Is your AI fair and
unbiased?”
• B: “Yes, I operationalized XYZ in
such-and-such way”
12
A question about
epistemology AI
Expert’s technical answer
is meaningless to non-
expert
As non-expert, if you
can’t grasp
epistemology, you
inquiry about axiology
Expert’s technical answer
is meaningless to non-
expert
In case of epistemic Asymmetry between experts, both
epistemological and ethical questions cannot be
answered with technical details of AI
A SIMPLIFIED SCENARIO 3: EPISTEMIC ASYMMETRY
• Non-expert: “I am diagnosed with
disease X, why?”
• Expert: “Because the system said you
are in reference class XYZ”
• Non-expert: “Is your AI system fair and
transparent?”
• Expert: “Yes, our research and
algorithms comply with standards and
codes of conduct XYZ”
13
A question about
epistemology AI
Expert’s technical answer
is meaningless to non-
expert
As non-expert, if you
can’t grasp
epistemology, you
inquiry about axiology
Expert’s answer appeals
to axiology +
institutionalization
In case of epistemic Asymmetry, both epistemological and
ethical questions are answered appealing to axiology and
institutionalization: the non-experts trusts that the process
complies with institutionalized standards
A SIMPLIFIED SCENARIO: EPISTEMIC SYMMETRY OF
NON-EXPERTS
• Non-expert A: “My request for a loan
was rejected, why?”
• Non-expert B: “Because AI said you
don’t comply with XYZ”
• Non-expert A: “Is your AI system fair
and unbiased?”
• Non-expert B: “Yes, our bank is part
of the EU Federation of Ethical
Banks”
14
A question about
epistemology of AI
Non-expert cannot give
details about process,
only output
A question about ethics
of AI
Non experts answers
epistemological and
ethical questions with
instititutionalization
In case of epistemic symmetry between non-experts
epistemological and ethical questions are answered
appealing to axiology and institutionalization: the non-
experts trusts that the process complies with
institutionalized standards
FROM SIMPLIFIED SCENARIOS TO REAL SCENARIOS
• Requests of ethical compliance have to be anticipated with clear and accessible
coding documentation
• Making nested algorithms more transparent is not a compromise on e.g. on
efficiency but a positive stance about e.g. faireness and transparency
• Kearns & Roth: a trade-off
• Russo-Schliesser-Wagemans: value-promoting
15
Thanks for your attention
FEDERICA RUSSO, ERIC SCHLIESSER, JEAN WAGEMANS
UNIVERSITY OF AMSTERDAM
@FEDERICARUSSO | @NESCIO13 | @JEANWAGEMANS
CONNECTING THE ETHICS
AND EPISTEMOLOGY OF AI
FEDERICA RUSSO, ERIC SCHLIESSER, JEAN WAGEMANS
UNIVERSITY OF AMSTERDAM
@FEDERICARUSSO | @NESCIO13 | @JEANWAGEMANS
Thanks for your attention
EPISTEMIC SYMMETRY
EPISTEMOLOGICAL QUERIES
• Expert A: Can I trust output of
algorithm G?
• Expert B: Yes. Look at technical
features XYZ.
NORMATIVE QUERIES
• Expert A: Is the algorithm G fair?
• Expert B: Yes. Look at technical
features XYZ.
18
This follows from
epistemology: can trust
outcome if can trust process
This follows from
epistemology-cum-ethics:
can trust G is fair because of
features of process
EPISTEMIC ASYMMETRY
EPISTEMOLOGICAL QUERIES
• Non-expert: Can I trust output of
algorithm G?
• Expert: Yes. You can trust my
expertise in designing and
implementing technical features XYZ.
NORMATIVE QUERIES
• Non-expert: Is algorithm G fair?
• Expert: Yes. You can trust I comply
with ethics requirements, as
mandated by institution Y.
19
Axiological component
to address normative
question
Axiology +
institutionalization to
address normative
question
TO SUM UP AND CONCLUDE
20
EPISTEMOLOGICAL AND NORMATIVE
• It is high time that epistemological and normative questions are considered
together, rather than separately
• To develop an ethics-cum-epistemology, we shift focus from the outcome to the
whole process
• At each stage of the whole process, normative and epistemic questions have to
be considered
• Ethics is continuous assessment, rather than post-hoc
21
Epistemological
Queries
Normative
Queries
ARGUMENTS FROM EXPERT OPINION AND AI
• With an ethics-cum-epistemology, and with the aid of argumentation theory, we
account for situations of epistemic symmetry and asymmetry
• In epistemic symmetry, both epistemological and normative questions can be
answered at technical level
• In epistemic asymmetry, axiology and institutionalization help address both
epistemological and normative questions
22
Expert
Non-expert

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Connecting the epistemology and ethics of AI

  • 1. CONNECTING THE ETHICS AND EPISTEMOLOGY OF AI FEDERICA RUSSO, ERIC SCHLIESSER, JEAN WAGEMANS UNIVERSITY OF AMSTERDAM @FEDERICARUSSO | @NESCIO13 | @JEANWAGEMANS
  • 2. OUTLINE ● From Ethics aut Epistemology to Ethics cum Epistemology ○ Disconnected projects, ethics as a post-hoc assessment ○ Shifting focus from output to process ○ Ethics as continuous assessment, from design to use ● What can XAI learn from argumentation theory? ● A crash course on arguments from expert’s opinion ● 4 simplified scenarios ● A normative stance for real scenarios 2
  • 3. FROM ETHICS AUT EPISTEMOLOGY TO ETHICS CUM EPISTEMOLOGY 3
  • 4. DISCONNECTED PROJECTS, ETHICS AS POST HOC ASSESSMENT • Disconnected projects: • [Ethics] Questions of how to make AI ethically compliant, ensuring that algorithms are as fair as possible and as unbiased as possible. • [Epistemology] Questions of transparency / opacity of AI, i.e. , AI as a glass or opaque box. • AI raises important ethical concerns, therefore we need to produce suitable mechanisms • To audit ethics compliance • To verify responsibility and accountability 4 Post-hoc assessment
  • 5. ‘STAND ALONE’ EPISTEMOLOGY • A vast and rich debate on transparency • What is it? • Can we trust outcomes of opaque AI? • But the whole debate is orthogonal to ethics concerns 5
  • 6. SHIFTING FOCUS: FOR OUTCOME TO PROCESS • Typical question: Can we trust output X of AI system Y? • Our proposal: look at the process, before the outcome • The whole process: design, implementation, use • At each and every point of the process we can (should) make considerations about • Epistemology > transparency, explainability, validation/verification, … • Ethics > which values are operationalized? How? 6 Builds on ‘Computational Reliabilism’ and on Creel’s 3 types of transparency Unlike Kearns & Roth, it is not a trade-off, but a design choice, proper
  • 7. ETHICS AS CONTINUOUS ASSESSMENT • Ethical considerations have to be raised • Already at the design stage • Throughout the whole process • And in combination with epistemological / technical considerations • Epistemology-cum-Ethics: the way forward for XAI • We care about the role of designers, programmers, engineers 7 Complements ‘ethics auditing’, e.g. Mokander & Floridi On how to train ethical designers and engineers, see Bezuidenhout&Ratti
  • 8. XAI AND ARGUMENTS FROM EXPERT OPINION 8
  • 9. LEARNING FROM ARGUMENTATION THEORY ARGUMENT FROM EXPERT OPINION p is true, because p is said by expert E POSSIBLE CRITICAL QUESTIONS • Is E really an expert about p? • Is p true or not? • Do other experts agree? • Are there other interests at play? 9 • Check which form of institutionalization guarantees trusting the source of expertise • Check contents p said by E • Confront p with other expert opinions • Check other institutional guarantees
  • 11. SIMPLIFIED SCENARIO 1: EPISTEMIC SYMMETRY OF EXPERTS • Expert A: “How did you get to result X?” • Expert B: “Because the system is designed such-and-such” • Expert A: “Is your AI system fair and transparent?” • B: “Yes, I operationalized concepts XYZ in such-and-such way” 11 A question about epistemology of AI Expert B gives technical details about AI system A question about ethics of AI Expert B gives technical details about how AI system is ethical In case of epistemic symmetry between experts, both epistemological and ethical questions can be answered with technical details of AI
  • 12. SIMPLIFIED SCENARIO 2: EPISTEMIC ASYMMETRY • Non-expert: “I am diagnosed with disease X, why?” • Expert: “Because AI said you are in reference class XYZ” • Non-expert: “Is your AI fair and unbiased?” • B: “Yes, I operationalized XYZ in such-and-such way” 12 A question about epistemology AI Expert’s technical answer is meaningless to non- expert As non-expert, if you can’t grasp epistemology, you inquiry about axiology Expert’s technical answer is meaningless to non- expert In case of epistemic Asymmetry between experts, both epistemological and ethical questions cannot be answered with technical details of AI
  • 13. A SIMPLIFIED SCENARIO 3: EPISTEMIC ASYMMETRY • Non-expert: “I am diagnosed with disease X, why?” • Expert: “Because the system said you are in reference class XYZ” • Non-expert: “Is your AI system fair and transparent?” • Expert: “Yes, our research and algorithms comply with standards and codes of conduct XYZ” 13 A question about epistemology AI Expert’s technical answer is meaningless to non- expert As non-expert, if you can’t grasp epistemology, you inquiry about axiology Expert’s answer appeals to axiology + institutionalization In case of epistemic Asymmetry, both epistemological and ethical questions are answered appealing to axiology and institutionalization: the non-experts trusts that the process complies with institutionalized standards
  • 14. A SIMPLIFIED SCENARIO: EPISTEMIC SYMMETRY OF NON-EXPERTS • Non-expert A: “My request for a loan was rejected, why?” • Non-expert B: “Because AI said you don’t comply with XYZ” • Non-expert A: “Is your AI system fair and unbiased?” • Non-expert B: “Yes, our bank is part of the EU Federation of Ethical Banks” 14 A question about epistemology of AI Non-expert cannot give details about process, only output A question about ethics of AI Non experts answers epistemological and ethical questions with instititutionalization In case of epistemic symmetry between non-experts epistemological and ethical questions are answered appealing to axiology and institutionalization: the non- experts trusts that the process complies with institutionalized standards
  • 15. FROM SIMPLIFIED SCENARIOS TO REAL SCENARIOS • Requests of ethical compliance have to be anticipated with clear and accessible coding documentation • Making nested algorithms more transparent is not a compromise on e.g. on efficiency but a positive stance about e.g. faireness and transparency • Kearns & Roth: a trade-off • Russo-Schliesser-Wagemans: value-promoting 15
  • 16. Thanks for your attention FEDERICA RUSSO, ERIC SCHLIESSER, JEAN WAGEMANS UNIVERSITY OF AMSTERDAM @FEDERICARUSSO | @NESCIO13 | @JEANWAGEMANS
  • 17. CONNECTING THE ETHICS AND EPISTEMOLOGY OF AI FEDERICA RUSSO, ERIC SCHLIESSER, JEAN WAGEMANS UNIVERSITY OF AMSTERDAM @FEDERICARUSSO | @NESCIO13 | @JEANWAGEMANS Thanks for your attention
  • 18. EPISTEMIC SYMMETRY EPISTEMOLOGICAL QUERIES • Expert A: Can I trust output of algorithm G? • Expert B: Yes. Look at technical features XYZ. NORMATIVE QUERIES • Expert A: Is the algorithm G fair? • Expert B: Yes. Look at technical features XYZ. 18 This follows from epistemology: can trust outcome if can trust process This follows from epistemology-cum-ethics: can trust G is fair because of features of process
  • 19. EPISTEMIC ASYMMETRY EPISTEMOLOGICAL QUERIES • Non-expert: Can I trust output of algorithm G? • Expert: Yes. You can trust my expertise in designing and implementing technical features XYZ. NORMATIVE QUERIES • Non-expert: Is algorithm G fair? • Expert: Yes. You can trust I comply with ethics requirements, as mandated by institution Y. 19 Axiological component to address normative question Axiology + institutionalization to address normative question
  • 20. TO SUM UP AND CONCLUDE 20
  • 21. EPISTEMOLOGICAL AND NORMATIVE • It is high time that epistemological and normative questions are considered together, rather than separately • To develop an ethics-cum-epistemology, we shift focus from the outcome to the whole process • At each stage of the whole process, normative and epistemic questions have to be considered • Ethics is continuous assessment, rather than post-hoc 21 Epistemological Queries Normative Queries
  • 22. ARGUMENTS FROM EXPERT OPINION AND AI • With an ethics-cum-epistemology, and with the aid of argumentation theory, we account for situations of epistemic symmetry and asymmetry • In epistemic symmetry, both epistemological and normative questions can be answered at technical level • In epistemic asymmetry, axiology and institutionalization help address both epistemological and normative questions 22 Expert Non-expert