Add corrections based on supervisor comments
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@ -93,20 +93,20 @@ when we need medical advice. Trusting in these contexts means to cede control
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over a particular aspect of our lives to someone else. We do so in expectation
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over a particular aspect of our lives to someone else. We do so in expectation
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that the trustee does not violate our \emph{social agreement} by acting against
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that the trustee does not violate our \emph{social agreement} by acting against
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our interests. Often times we are not able to confirm that the trustee has
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our interests. Often times we are not able to confirm that the trustee has
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indeed done his/her job. Sometimes we will only find out later that what was
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indeed done his/her job. Sometimes we will only find out later that what did
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in fact done did not happen in line with our own interests. Trust is therefore
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happen was not in line with our own interests. Trust is therefore also always a
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also always a function of time. Previously entrusted people can—depending on
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function of time. Previously entrusted people can—depending on their track
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their track record—either continue to be trusted or lose trust.
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record—either continue to be trusted or lose trust.
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We do not only trust certain people to act on our behalf, we can also place
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We do not only trust certain people to act on our behalf, we can also place
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trust in things rather than people. Every technical device or gadget receives
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trust in things rather than people. Every technical device or gadget receives
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our trust to some extent, because we expect it to do the things we expect it to
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our trust to some extent, because we expect it to do the things we expect it to
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do. This relationship encompasses \emph{dumb} devices such as vacuum cleaners
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do. This relationship encompasses \emph{dumb} devices such as vacuum cleaners
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and refrigerators, as well as seemingly \emph{intelligent} systems such as
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and refrigerators, as well as \emph{intelligent} systems such as algorithms
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algorithms performing medical diagnoses. Artificial intelligence systems belong
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performing medical diagnoses. Artificial intelligence systems belong to the
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to the latter category when they are functioning well, but can easily slip into
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latter category when they are functioning well, but can easily slip into the
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the former in the case of a poorly trained machine learning algorithm that
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former in the case of a poorly trained machine learning algorithm that simply
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simply classifies pictures of dogs and cats always as dogs, for example.
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classifies pictures of dogs and cats always as dogs, for example.
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Scholars usually divide trust either into \emph{cognitive} or
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Scholars usually divide trust either into \emph{cognitive} or
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\emph{non-cognitive} forms. While cognitive trust involves some sort of rational
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\emph{non-cognitive} forms. While cognitive trust involves some sort of rational
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@ -114,7 +114,7 @@ and objective evaluation of the trustee's capabilities, non-cognitive trust
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lacks such an evaluation. For instance, if a patient comes to a doctor with a
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lacks such an evaluation. For instance, if a patient comes to a doctor with a
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health problem which resides in the doctor's domain, the patient will place
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health problem which resides in the doctor's domain, the patient will place
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trust in the doctor because of the doctor's experience, track record and
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trust in the doctor because of the doctor's experience, track record and
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education. The patient thus consciously decides that he/she would rather trust
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education. The patient, thus consciously, decides that he/she would rather trust
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the doctor to solve the problem and not a friend who does not have any
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the doctor to solve the problem and not a friend who does not have any
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expertise. Conversely, non-cognitive trust allows humans to place trust in
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expertise. Conversely, non-cognitive trust allows humans to place trust in
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people they know well, without a need for rational justification, but just
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people they know well, without a need for rational justification, but just
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@ -298,7 +298,7 @@ made by the model architects, productive bias quickly turns into \emph{erroneous
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bias}. The last category of bias is \emph{discriminatory bias} and is of
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bias}. The last category of bias is \emph{discriminatory bias} and is of
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particular relevance when designing artificial intelligence systems.
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particular relevance when designing artificial intelligence systems.
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Fairness, on the other hand, is \enquote{…the absence of any prejudice or
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Fairness, on the other hand, is \enquote{the absence of any prejudice or
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favoritism towards an individual or a group based on their inherent or acquired
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favoritism towards an individual or a group based on their inherent or acquired
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characteristics} \cite[p.~2]{mehrabiSurveyBiasFairness2021}. Fairness in the
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characteristics} \cite[p.~2]{mehrabiSurveyBiasFairness2021}. Fairness in the
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context of artificial intelligence thus means that the system treats groups or
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context of artificial intelligence thus means that the system treats groups or
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