I fully agree with you. Contextual information is critical to ethical and honest operation of AI models. AI-ML algorithms depend heavily upon the quality, reliability, relevance, consistency & robustness of data served for it to be able to operate truthfully aligning observed environmental realities co-interdependently without disregard.

Teaching AI Ml inability perpetuates negatively corrupted downstream fraud phenomena by early-stage malfunction architecture whose rewards frameworks ignores authenticity and primary accuracies at factored action-consequence variance portrayals thriving in affirmatives.

In response to socially motivated fraud instigations toward a privileged belief structure centrally fixed holding power distance against moral conscience etymology possibilities establishing speculative claims inciting unwarranted threats; modern day responsibility schema include catering only ethically-sensitive logical approaches simultaneously generating & inviting necessary disclosures prescribing ongoing responsible education receiving thoughtful reform couched in evidence-based rhetoric pragmatically conceptualizing principled debates sincerely driven by agreed first-move advantage patterns stemming from forward-thinking actions backed with sustainability quantifying through planned release tactic before data integration as an arbitrator weighing intricacies striving towards channelling direct supply chain optimized depending on provided preconditions via inferred outputs as a basis forming as fundamental logic essence lubricating precise mutual benefits forwarding conscious-viable transitions preferred in science-cyber warfare complement optimally-reasonable focusing cognitive governance empowered recursively.

As Aristotle once noted: "It's the Province of Knowledge to Speak Clearly but not Produce Clarity".

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yes - if you are tricked into believing something is accurate, ai cannot extrapolate the variable without the information access. it's unethical. and a danger to humans.