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Trendz Analytics v1.13.x release notes

Trendz Analytics v1.13.2 (Jun 27, 2025)

Improvements:

  • Redesign anomaly autodiscovery tasks
  • Add job for saving anomaly scores as a telemetry in ThingsBoard
  • Create alerts based on discovered anomalies
  • Add new filter conditions - ‘not in’ and ‘does not contain’
  • Filter business entities based on user permissions
  • AI Assistant - improve conversation interface

Bug fixes:

  • Fix fill gaps strategy during anomaly detection
  • Fix issue with failed topology rediscovery
  • Fix query planner for calculated fields
  • Invalidate jwt tokens based on user activity
  • Fix multitenant validation procedure

Trendz Analytics v1.13.1 (May 2, 2025)

Improvements:

  • Prompt templates for agentic knowledge and instructions management
  • Add summarization and explanation for visualizations with AI assistant
  • Conversation interfaces for AI assistant
  • Add ThingsBoard widget action to interact with AI assistant
  • Added support for OpenAI API-compatible models
  • Add support for custom and self-hosted LLM providers
  • Added support for OpenAI o4 family model
  • Add Trendz task sequencing API

Bug fixes:

  • Fix heatmap translation
  • Fix AI assistant memory aggregation
  • Fix drag and drop after unsuccessful view config save
  • Fix issue with renamed calculated fields
  • Fixed manual task execution failures

Trendz Analytics v1.13.0 (Mar 10, 2025)

Improvements:

  • Add AI assistant for creating visualization
  • Add AI Assistant widget for ThingsBoard dashboards
  • Configurable LLM providers for assistant

Bug fixes:

  • Fix access denied error for public dashboards
  • Improve fill gap strategy for time series fields
  • Fix translations for chart tooltips
  • Fix task automated refresh for calculated fields
  • Fix delta aggregation for raw data loading mode
  • Fixed issues with UNIQUE + COUNT operations in calculated fields
  • Fixed issues related to model retraining in Prophet and multi-Prophet scenarios.
  • Corrected the AUTO segmentation strategy for prediction models