Ndị nnọchi anya AI
An AI agent is a system that uses observations and a goal to choose actions, often through tools, and then evaluates what happened.
Nchịkọta
Products use the term differently. The practical questions are what the system can do, under whose authority, and how completion is verified.
Isi ihe na-ewe
- Specify authority and stopping conditions.
- Treat external instructions as untrusted content.
- Verify final state and disclose partial completion.
Ime miri emi
A typical agent loop observes the current state, selects an action, receives a result, and decides whether to continue. The model may participate in planning or action selection, while ordinary software enforces permissions, budgets, and tool contracts. Define the stopping conditions before execution. A task can be complete, blocked, cancelled, or only partially achieved. Repeated attempts without new evidence can waste resources or repeat harmful side effects. Limit action count, elapsed time, and spending where relevant. External content can contain instructions that conflict with the user’s goal. Treat pages, messages, and tool responses according to their trust level. A document describing an action does not grant permission to carry it out. Evaluate real outcomes. For a file-editing agent, inspect the final files and run appropriate checks. For an account workflow, verify the intended account and state. Record enough evidence to explain what changed and what remains uncertain. More autonomy increases the importance of clear boundaries and recovery procedures.
Nghọta nka nka
An agent can produce a convincing account of success while its tools failed. Completion should be tied to observable postconditions, not to generated narration.
Define completion before acting
- Suppose an agent must create a draft event for Tuesday at 2 p.m. in a specified calendar.
- The postconditions include the correct calendar, date, time zone, title, and draft state. A successful tool response alone is not enough if it saved to another calendar.
- Read the resulting record and report any mismatch before declaring the task complete.
The invented workflow demonstrates outcome-based verification.
Mmetụta atụmatụ
Mee nhọrọ
Nhazi ọkwa-ngwa na-ekpebi ma AI ọ na-eme ka ezigbo nsonaazụ.
Team na usoro ọrụ
Ngwakọta arụmọrụ dị mma na-emepụta uru nrụpụta ọrụ ndị ọrụ nwere ike ịtụkwasị obi.
Ihe ize ndụ na nchekwa
Usoro eji eme ihe nke ọma na-ebelata ike ọgwụgwụ mgbanwe na ihe ize ndụ mmejuputa.
Mmejuputa n'ezie n'ụwa
Repair a failing test, then rerun it and inspect the change.
Collect authorized records and produce a report with traceable sources.
Ihe ize ndụ & okporo ụzọ nche
Ime ka usoro gbajiri agbaji nwere ike ịbawanye nsogbu ndị dị adị.
Otu dị iche iche nwere ike megharịa ma wepụ ikpe mmadụ chọrọ.
Ogo nwere ike ịfegharị ma ọ bụrụ na enyochaghị nsonaazụ ya.
Map mmejuputa
Map usoro ọrụ dị ugbu a wee chọpụta usoro mgbagha kachasị elu.
Kọwaa ebe nlele mmadụ tupu akpaaka zuru oke.
Zụlite ndị ọrụ na mkpali, ụzọ mmụba, na ụkpụrụ ịdị mma.
Soro nsonaazụ ọkwa-ọrụ iji kwado uru na-adịgide adịgide.
Isi mmalite na ịgụkwu ihe
Nọgide na-eme nchọpụta
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Next in Building with AI Systems
AI arụ ọrụ akpaaka
Ajụjụ a na-ajụkarị
Does an agent need unrestricted access?
No. Narrow tools and permissions can support useful work while limiting the consequences of mistakes.