But for now, humanoids are still relatively incompetent. So if you're rich enough and you want things done like cleaning and cooking, it's more convenient to hire a human and give them specific instructions instead of buying a robot that can currently do only half the things they want to get done. Or they just want a nice gadget.
HN user
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Ironic that I’m going to give another anecdotal experience here, but I’ve noticed this myself too. I catch myself trying to keep on prompting after an llm has not been able to solve some problem in a specific way. While I can probably do it faster at that point if I switch to doing it fully myself. Maybe because the llm output feels like its ‘almost there’, or some sunken cost fallacy.
For me, this has somehow gotten to a point where I keep questioning myself if I’m actually doing something out of curiosity or because of the idea I could share something with other people or some other motive. So I’m not even sure what I’m curious about anymore, which might sound ridiculous.
Not sure about AI specific but: Todo apps, habit trackers, lots of social media, job boards, recommendation apps, fun things to do with friends, travel planners, trackers (movies/books). I think it’s more common for B2C because these are things that a lot of people come across.
Some of these ideas could maybe be done better now that we have genAI but the question might would it work as a standalone app or is it just a feature?
Apple has a screentime API which allows the app/dev to block an app after the user chooses it
I've counted 18! The next one was blank.
I don't see how this is not possible using knowledge graphs? You retrieve the entity, Sharon, and the additional context you get will be the nodes and edges close to Sharon. After this it becomes the LLM's job because if it is not mentioned in the given context, it should let the prompter know "In the given context the occupation of Sharon could not be found".
I had to double check the date the article was posted because all 4 examples, while using ChatGPT 4o, did not give the output mentioned in the article. It seems the examples are old, which becomes obvious when you look at the chat interface of the screenshots in the article. They do not match the current ChatGPT interface. I'm sure there are new ways to do visual prompt injection though!
The API is not used for training purposes either. https://openai.com/enterprise-privacy