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DSTC-00877 Online (e-LMS) Advanced Postgrad

Transformer LSTM Hybrid Forecast Engine for RE Storage Dispatch

by - DSTC

Master Transformer LSTM Hybrid Forecast Engine for RE Storage Dispatch in 4 weeks through hands-on, project-based online training with DSTC.

★★★★★ Be the first to review 3 Days · 4.5 hrs e-Certificate Included
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From ₹2,500 + GST

Programme Parameters

Educational Level:
Advanced Postgrad
Duration & Workload:
3 Days (4.5 Hrs)
Delivery Mode:
Online (e-LMS)
Prerequisites:
• Prior working knowledge of the field and comfort with core tools and quantitative reasoning.
• A laptop or desktop with a stable internet connection.
• Willingness to complete assignments and the capstone project.

About This Course

The Transformer–LSTM Hybrid Forecast Engine for RE + Storage Dispatch course is a three-day, hands-on sprint from data prep to operations. Every participant receives a verified e-Certificate and e-Marksheet from the Deep Science & Technology Consortium.

🎯 Program Aim

The Transformer–LSTM Hybrid Forecast Engine for RE + Storage Dispatch course is a three-day, hands-on sprint from data prep to operations.

📋 Course Objectives

1. Put AI Enablement techniques to work on real datasets and case studies.
2. Build a defensible project you can showcase to supervisors, reviewers, or employers.

👥 Who Should Enroll?

• Master's and senior undergraduate students specializing in AI Enablement
• R&D engineers and working professionals applying AI Enablement in industry
• Academics and educators building research or teaching capacity in AI Enablement

🚀 Key Learning Outcomes

• Tangible, reproducible AI Enablement work to show supervisors or employers.
• A verified e-Certificate of competency and e-Marksheet from the Deep Science & Technology Consortium.

💎 What You'll Gain

🎥

Live & Recorded Sessions

Lifetime access to class recordings
🎓

e-Certificate on Completion

Cryptographically verified credential
💬

Post-Programme Support

Direct access to mentors & council
💻

Hands-On Experience

Notebooks, real-world code & datasets

Curriculum Outline

Module 1 Outline

Data Preparation & Hybrid Model Fundamentals

Understand signals and horizons for solar/wind, net load, and price in intraday/day-ahead scenarios. • Apply time-aware data splits and engineer features (lags/rolls, weather look-ahead, plant metadata, calendar). • Define metrics like RMSE/sMAPE and multi-horizon pinball loss; design persistence baselines. • Grasp the hybrid concept: Transformer for exogenous weather and LSTM for plant history with late fusion.

Module 2 Outline

Advanced Hybrid Model Training & Calibration

Explore Transformer-LSTM architecture details including sequence lengths, encoder–decoder attention, LSTM history streams, fusion, and multi-task heads. • Implement training hygiene practices: scaling, scheduled sampling, dropout/weight decay, gap handling, and early stopping. • Integrate uncertainty quantification: quantile heads, ensembles, and conformal calibration for P10/P50/P90 outputs. • Perform rolling-origin backtests for evaluation; analyze error by regime and hour.

Module 3 Outline

Forecast-driven Storage Dispatch with MPC

Construct comprehensive battery models including SoC bounds, power limits, efficiency, degradation proxies, and reserves. • Implement optimization using rolling-horizon Model Predictive Control (MPC) with forecast ensembles. • Define optimization objectives: arbitrage, ramp smoothing, and peak shaving. • Understand operational considerations: DA/RT alignment, penalties, and fail-safes for inaccurate forecasts.

Module 4 Outline

KPI Dashboard & Operationalization

Track key performance indicators (KPIs) such as cost savings, reserve compliance, curtailment avoided, and VFF (Value of Forecast). • Build time-aligned SCADA+weather datasets with time-aware splits. • Engineer features; establish persistence/LSTM baselines. • Ensure training hygiene and uncertainty calibration.

Technical Specifications

ParameterRequirement
Covered Tool / PlatformPython
Covered Tool / PlatformSCADA
Covered Tool / PlatformWeather Data
Covered Tool / PlatformMachine Learning Libraries

Frequently Asked Questions

This is an Recorded Lectures (Self-Paced) course delivered via our e-LMS platform. You will have access to pre-recorded video lectures, reading materials, assignments, quizzes, and hands-on projects that you can complete at your own pace.

Yes! Upon successful completion of all modules, assignments, and assessments, you will receive an e-Certification along with an e-Marksheet from DSTC (DSTC) that you can showcase on your CV and LinkedIn profile.

No prior experience is required. This course is designed for beginners and takes you step by step from the basics to advanced topics.

You will have access to all course materials for the duration of 3 Days (60-90 Minutes each day). The self-paced format allows you to learn according to your own schedule through our online learning management system.

Yes, dedicated mentor support is available throughout the course. You can reach out for doubt-clearing sessions, project guidance, and career advice related to AI. Our mentors are industry experts and experienced professionals. Enroll in Transformer LSTM Hybrid Forecast Engine for RE Storage Dispatch today and take the next step in your professional journey. With expert-curated content, practical projects, and industry-recognized certification, this course is your gateway to mastering AI skills that matter.

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