2 Answers
A:
During the perception phase, the AI agent gathers and interprets information from its environment. This includes:
This step is crucial because it sets the foundation for the agent’s decisions and actions in the next phases of the loop.
A:
The agent converts raw inputs into a structured, up-to-date view of the task and environment so it can plan next steps. Concretely, it:
Ingests signals: user message, prior tool outputs, files, UI/sensor state.
Parses & normalizes: cleans text, validates JSON/tables, transcribes/OCRs if needed.
Infers intent & entities: extracts goals, constraints, slots (who/what/when), success criteria.
Grounds to real objects: links mentions to canonical IDs (docs, contacts, issues, items).
Retrieves context: pulls only the most relevant knowledge/memory snippets (RAG).
Assesses affordances: identifies feasible tools/actions given the current state.
Flags uncertainty/policy risks: notes ambiguities, missing info, permissions needed.
Updates world state: emits a concise, machine-usable snapshot for the planner.
Output handed to planning: a structured task brief, the top-K supporting context, current environment state, feasible next actions, and open questions.
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