Raw LLM Responses
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G
There's no reason to have LiDAR if you have good enough AI system. And it curren…
ytc_Ugw7qonIS…
G
And that’s what makes them being conscious an impossibility, a human can do or t…
ytr_UgytBcKa3…
G
At BEST, you can think of AI as the artist. So typing in prompts is not creating…
ytc_UgwEaUQn9…
G
One of those that this pissed off, I have dozens of story ideas always have had …
ytc_Ugzo3Qh5M…
G
Are artists really pretending like it’s the people who create AI art who are act…
ytc_Ugxscaqii…
G
>We can still morally eat animals but we are obligated to insure that their l…
rdc_h6u4fqc
G
What did you expect, it is AI developed for Florida. The AI was doing what it …
ytc_UgyUvCrlG…
G
I need to understand how companies can generate any profit if 99% of the economy…
ytc_Ugwy-KvYm…
Comment
> (a) the test’s probability estimates are systematically skewed upward or downward for at least one gender;
This is undesirable because it results in inaccurate estimates.
>(b) the test assigns a higher average risk estimate to healthy people (non-carriers) in one gender than the other; or (c) the test assigns a higher average risk estimate to carriers of the disease in one gender than the other.
Why are these undesirable? I would expect both of these to hold true in a fair algorithm. One gender is more at risk of the disease than the other; risk estimates for that gender should be higher on average, or what you're calculating isn't a risk estimate. If you knew ahead of time who was healthy and who was a carrier, you wouldn't need a risk estimate, so the average estimate for members of that gender should be higher whether or not they are a carrier. That's if literally the only data point you're looking at is gender (not a very effective risk estimate); if you try to give women and men the same average risk rating when more of one gender is a carrier than the other, you're asking your algorithm to lie to you.
reddit
Cross-Cultural
1539206251.0
♥ 35
Coding Result
| Dimension | Value |
|---|---|
| Responsibility | none |
| Reasoning | consequentialist |
| Policy | none |
| Emotion | indifference |
| Coded at | 2026-04-25T08:33:43.502452 |
Raw LLM Response
[
{"id":"rdc_e7jcup6","responsibility":"none","reasoning":"consequentialist","policy":"none","emotion":"indifference"},
{"id":"rdc_e7j520q","responsibility":"company","reasoning":"consequentialist","policy":"none","emotion":"indifference"},
{"id":"rdc_e7j7w3s","responsibility":"distributed","reasoning":"deontological","policy":"regulate","emotion":"fear"},
{"id":"rdc_e7j89pj","responsibility":"company","reasoning":"consequentialist","policy":"industry_self","emotion":"approval"},
{"id":"rdc_e7jcxyx","responsibility":"user","reasoning":"virtue","policy":"none","emotion":"outrage"}
]