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Neural2B
ℹDemonstration scenario. An example of a possible implementation, not a completed client project of Neural2B.

Unified Assistant for Catalog, Smart Search, and Customer Support

Demonstration scenario: we organize specifications, write clear English descriptions from verified data, show current availability, and pass leads to CRM.

Business situation overview

In online stores with 10,000+ items from various suppliers, specifications are filled in haphazardly. Different units of measurement, missing key parameters, copy-paste descriptions. Regular search for live customer queries yields zero results. And support searches for products manually.

Data flow and architecture diagram

1CMS: Shopify or OpenCart as candidates for API integration
2Attribute normalization module: consolidates units of measurement (mm, cm, inches, kg, grams) into a single format
3Vector index for semantic search: searches by synonyms, purpose, and indirect descriptions
4Integration with CRM (HubSpot): customer inquiries and carts are automatically recorded

The human role in the loop (Human-in-the-loop)

Before mass synchronizing updated cards with the main site, the content manager reviews a sample.

Synthetic test data

Example input and system response

User input request:
"I need a slow submersible pump for a well 12 meters deep, enough for watering a garden and a house for 3 people"
Generated response / system action:
"Found 2 suitable models for a depth of 12 meters with a working pressure of 3.5 bar and dry run protection: 1) AquaSilent 750 (power 750 W, flow rate 45 l/min) — $100; 2) DeepWell Flow 1000 (power 1000 W) — $125. Both models have a 24-month warranty and are in stock. Would you like to compare them in more detail?"

Limits of the demo scenario

  • ✕The assistant relies only on parameters from the manufacturer's technical passport
  • ✕If there is insufficient data on specifications, the system honestly states so, rather than making assumptions
  • ✕Prices and availability are pulled directly from the store's accounting database

What to measure during pilot testing

  • ✓Share of search queries with no results (goal: minus 70%)
  • ✓How complete and uniformly filled the product specifications are
  • ✓How accurately the consultant responds — according to support managers
Relevant company service

Marketing and Content Automation

Service overview →

Interested in a similar architecture?

We’ll adapt the logic of this scenario to your internal software, database structure, and operating rules.

Discuss adaptation

Scenario adaptation: Unified Assistant for Catalog, Search, and Support

Describe the process that’s eating up your team’s time. We’ll suggest what can be automated, what data is needed, and where to start.

Your data stays between us. We never ask for trade secrets or access credentials through an open form.

Unified Assistant for Catalog and Search | Neural2B Scenario