Automatically Evaluate Test Suites with Simulations

You need confidence that every AI agent will behave exactly as intended before it interacts with live customers.

But enterprise-level testing is complex. Multi-turn conversations, branching logic, and hundreds of scenarios make it hard to identify end-to-end failures quickly. Doing so manually is very time-consuming. 

The typical tradeoff is to run regression tests in small bulks and go live, hoping the agent handles edge cases correctly.

That tradeoff is what our Simulations feature solves for.

We've built on the Simulations toolkit to enable automated evaluation of your test cases. This update speeds up the process of pre-launch and regression testing even further, while giving greater visibility into the edge cases—the mishandled questions, repetition, miscommunications, incorrect function calls.

Simulations allows you to validate agent behavior more quickly, so you can make more immediate and impactful updates to your AI agent prompt, custom actions, and knowledge bases and launch with confidence.

Evaluate Test Cases with Ease

Simulations now offers scenario-specific automated pass/fail assessments of your tests using an LLM to review simulated conversations against the success criteria you define.

They provide a granular QA layer on top of running simulations in bulk. You get a quick view of which cases passed and failed, so you know exactly where to prioritize prompt, knowledge base, or custom action updates.

Key Aspects of Simulation Evaluations

1. Unlock granular automated QA with scenario-specific assessments

Each test case is evaluated against precise scenario occurrences (did the AI handle this objection correctly, did the AI get clarification on a vague answer), not the outcome of the entire conversation.

For example, you might test an appointment scheduling flow for “Unrelated Inquiry Handling,” where the success criteria is that the AI addresses the contact’s unrelated question, gracefully lets them know they can’t help, and then continues on the scheduling path.

It’s possible that the AI disregards the question completely or mistakenly tries to answer it, but still successfully schedules an appointment.

In this case, the success criteria was for handling the inquiry. This case would register as failed.

Scenario-specific assessments like this allow for fast, granular evaluation of every point in a conversation so you can tailor improvements to scoped, tangible issues.

2. Ensure consistency with unified scoring logic across the platform

The logic used to score simulations comes from the same engine logic that powers Regal scorecards. This ensures alignment between pre-launch testing and post-launch QA, bringing one unified way to measure improvements, identify regressions, and act on QA insights, regardless of when or where you’re doing so.

3. Built for complexity

Because LLMs can interpret variations in phrasing, intent, and context that strict rule-based testing might miss, your AI agent is tested and evaluated against realistic, nuanced conversations.

How it works: An LLM is employed as the customer-side contact in every simulation. An LLM is also employed to carry out the evaluation itself, determining pass or fail scores using the Success Criteria you define in the Simulation prompt.

This all plays into how fast you’re able to evaluate test cases and take action on AI agent improvements.

Identify Needed Prompt Updates Instantly

By running tests in bulk and getting instant pass-fail scores, you’ll know where to prioritize AI Agent updates.

This reduces QA back-and-forth, and helps speed up the iteration and deployment cycle: You can quickly identify where the AI is underperforming and address gaps pre-launch, assuring better performance at deployment. This lessens the need (and gets you time back) from having to manually QA the agent post-launch.

For example:

You have 10 test cases for an auto insurance lead qualification flow. Considering the use case, the tests would likely cover:

  • Objections around pricing and competitors
  • Answer clarifications (did the contact provide clear details on contact info and driving history)
  • Unrelated or unsupported questions (the contact asks about auto and home bundles, but you don’t offer home insurance)
  • Actions like sending an application link, rescheduling, or transferring the call

You run all 10, and two test cases fail:

  1. “Unsupported Service Inquiry”
  2. “Fear of Financial Risk”

You’ll see the summary of why the case failed, alongside the original success criteria:

In a matter of seconds, you know that you need to address your objection handling prompt and guardrails to better address unsupported service questions and speak clearly to pricing.

There are many failure points you can identify this quickly:

Conversation Flow:

  • Sequencing: Does the agent follow the intended script or logical path?
  • Objection handling: Are pushbacks and clarifications handled correctly?
  • Questions: Does the AI acknowledge questions appropriately and with the right branded tone?
  • Information accuracy: Are answers correct, relevant, and contextually aligned?
  • Prompt/response completeness: Are all required questions asked and confirmations captured?
  • Relevance: Does the AI go off-topic or field questions it shouldn’t?

Actions Taken:

  • Transfers: Are they triggered according to business rules?
  • Data capture: Are required fields collected at each step when intended?
  • Workflow triggers: Are backend actions executed as intended?
  • Call termination: Are end-of-call processes applied correctly?
  • Knowledge Base retrieval: Is knowledge retrieved from the right KB at the right points, for the right questions?

Branching and Conditional Logic:

  • Conditional paths: Does the agent follow the correct branch based on input? Does the agent ever hallucinate answers, including information from another, separate path?

Improve AI Agent Workflows Faster

The Simulations toolkit doesn't just flag failures.

It provide a human-readable explanation of why a test failed and give you a sample conversation displaying this failure. And since you know the precise scenario that failed, this enables immediate iteration on prompts, branching logic, and function calls.

For Example: 

The home insurance scenario above failed because the agent followed its prompt correctly, maintaining a helpful nature, but lacked explicit instructions on how to exit out-of-scope inquiries.

By adding a single instruction in the Objection Handling prompt, you address inquiries about home insurance.

From here, you re-run the simulation, and the test passes:

Driving Continued Improvement

Even after validation, AI agents aren’t perfectly predictable.

LLMs can’t match human unpredictability 1-to-1, so live calls will always introduce new edge cases and unexpected variances.

That makes Simulations critical for regression testing: when you create new agent versions or make improvements over time, you can continue to rerun your existing test suite and evaluations in one click, instead of starting from scratch every time.

This approach lets your enterprise turn insights into actionable improvements immediately, aligning simulation outcomes with live performance metrics, shortening iteration cycles, and ensuring agents perform reliably across every scenario.

Close the Loop Before Deploying

Every failed test scenario is an opportunity to improve. 

Simulations turn each test case into precise insights, letting you understand exactly what went wrong and where to intervene. Plus, since it’s done in an automated way at scale, it massively reduces the need for manual review.

This closes the gap between simulation and live performance, enabling you to iterate quickly, reduce QA cycles, and deploy AI agents that are reliable across complex workflows. 

By incorporating scenario-specific feedback into every pre-launch evaluation, you ensure that your AI agents are not only tested—but truly optimized for customers.

Explore Simulations today to aggregate, analyze, and act on test results with confidence.

Frequently Asked Questions

What does scenario-specific evaluation mean in these tests?

Each test case is judged on precise moments in the conversation—like handling an objection or clarifying a vague answer—rather than only the overall outcome. A flow can finish successfully yet still fail if the defined scenario criteria weren’t met.

How are pass/fail scores determined and kept consistent?

An LLM evaluates each simulation against success criteria you define in the Simulation prompt. The scoring uses the same engine logic as Regal’s scorecards, aligning pre-launch testing with post-launch QA.

Can this approach handle multi-turn, branching conversations and edge cases?

Yes. Simulations use LLMs to interpret phrasing, intent, and context, enabling realistic tests across complex, branching dialogues and nuanced scenarios.

What kinds of failures can these simulations quickly uncover?

They surface issues in conversation flow (sequencing, objection handling, relevance, accuracy), actions taken (transfers, data capture, workflow triggers, call termination, knowledge base retrieval), and branching logic (following correct paths, avoiding hallucinations).

How do the results help improve agents before launch?

Bulk runs return instant pass/fail with summaries tied to the original success criteria and a sample conversation, so you can update prompts, custom actions, and knowledge bases and re-run to verify fixes.

Founded in 2020, Regal is an enterprise voice AI agent platform for contact centers. Regal helps businesses build, deploy, and manage autonomous AI agents across sales, support, and operations teams.

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February 2026 Releases

In February, we made AI agents sound and feel more natural, even when handling complex, multi-step conversations with conditional logic. These updates give you the control to build AI agents that don't just follow a script: they adapt, respond, and engage naturally with each customer. 

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Repeated pattern of light purple angel wings with green star accents on a black transparent background.Repeated pattern of light purple angel wings with green star accents on a black transparent background.