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ai & machine learningFriday, July 17, 2026

AI code's accessibility problem and more

Today's stories circle around the practical edges of AI: what it gets wrong, what it's good at, and how we're building around its limits. A deep look at AI-generated code reveals it's often inaccessible by default, while two hands-on pieces show local LLMs and Claude can still shine on narrow tasks. Meanwhile, Perplexity rolls out a clever skill system, and China's data annotation workforce offers a real-world view of AI's job impact.

Sources

Code and limits

Two pieces question what AI tools actually deliver, from accessibility to real-world troubleshooting.

Building smarter agents

Perplexity and China's data industry show two sides of making AI more capable: smarter architecture and human labor.

#04docs.perplexity.aiJul 17
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Skills - Perplexity

Perplexity's skill system uses progressive disclosure: the model loads full instructions only when needed. A smart pattern for keeping agents fast and focused.

Also today2

More roundups that day