The escalating global imperative for sustainable forest management and climate change mitigation hinges on accurate, detailed, and up-to-date information about forest structure, health, and carbon stocks. Traditional forest inventory methods are often labor-intensive, costly, and provide limited spatial resolution, making it challenging to monitor vast and often inaccessible forest landscapes effectively. Light Detection and Ranging (LiDAR) technology has revolutionized this domain by offering an unparalleled ability to penetrate dense forest canopies and generate highly precise 3D point clouds. This data enables the accurate measurement of individual tree heights, canopy density, biomass, and ultimately, carbon sequestration potential, providing critical insights for sustainable forestry, carbon accounting, biodiversity conservation, and informed policy-making. By leveraging LiDAR, forest managers and environmental scientists can unlock a new era of data-driven decision-making, optimizing resource utilization and maximizing forests' role as vital carbon sinks. This essential training course focuses on LiDAR for Forest Management & Carbon Sequestration, equipping professionals with the expertise to utilize this cutting-edge technology for enhanced environmental stewardship.
This intensive training course provides a comprehensive and practical guide to utilizing LiDAR technology for advanced forest management and precise carbon sequestration assessment. Participants will gain in-depth knowledge of LiDAR data acquisition methods (airborne, terrestrial, drone-based) tailored for forestry applications, and master the techniques for processing raw LiDAR point clouds to generate high-resolution Digital Terrain Models (DTMs) and Canopy Height Models (CHMs). We will delve into applying these models for individual tree detection, biomass estimation, forest inventory, and accurate carbon stock quantification. By mastering the technical skills and methodological approaches for LiDAR-based forest analysis, you will be equipped to conduct efficient forest assessments, contribute to carbon accounting initiatives, and implement data-driven strategies for sustainable forest ecosystems.
DURATION
10 Days
COURSE CONTENT
Module 1: Introduction to LiDAR Technology & Forestry
Module 2: LiDAR Data Acquisition Platforms & Sensors
Module 3: LiDAR Data Pre-processing Essentials
Module 4: Digital Terrain Model (DTM) Generation
Module 5: Canopy Height Model (CHM) Creation & Analysis
Module 6: Individual Tree Detection & Characterization
Module 7: Forest Biomass Estimation with LiDAR
Module 8: Carbon Stock & Sequestration Assessment
Module 9: Forest Health, Change Detection & Disturbance Mapping
Module 10: Integration with Geographic Information Systems (GIS)
Module 11: Field Validation & Accuracy Assessment
Module 12: Best Practices & Operational Considerations
Module 13: Advanced Applications & Future Trends
Training Approach
This course will be delivered by our skilled trainers who have vast knowledge and experience as expert professionals in the fields. The course is taught in English and through a mix of theory, practical activities, group discussion and case studies. Course manuals and additional training materials will be provided to the participants upon completion of the training.
Tailor-Made Course
This course can also be tailor-made to meet organization requirement. For further inquiries, please contact us on: Email: info@skillsforafrica.org, training@skillsforafrica.org Tel: +254 702 249 449
Training Venue
The training will be held at our Skills for Africa Training Institute Training Centre. We also offer training for a group at requested location all over the world. The course fee covers the course tuition, training materials, two break refreshments, and buffet lunch.
Visa application, travel expenses, airport transfers, dinners, accommodation, insurance, and other personal expenses are catered by the participant
Certification
Participants will be issued with Skills for Africa Training Institute certificate upon completion of this course.
Airport Pickup and Accommodation
Airport pickup and accommodation is arranged upon request. For booking contact our Training Coordinator through Email: info@skillsforafrica.org, training@skillsforafrica.org Tel: +254 702 249 449
Terms of Payment: Unless otherwise agreed between the two parties’ payment of the course fee should be done 10 working days before commencement of the training.
Dates | Fees | Location | Apply |
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07/07/2025 - 18/07/2025 | $3500 | Nairobi, Kenya |
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14/07/2025 - 25/07/2025 | $3500 | Nairobi, Kenya |
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14/07/2025 - 25/07/2025 | $3500 | Nairobi, Kenya |
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04/08/2025 - 15/08/2025 | $3500 | Nairobi, Kenya |
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11/08/2025 - 22/08/2025 | $3500 | Nairobi, Kenya |
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18/08/2025 - 29/08/2025 | $3500 | Nairobi, Kenya |
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01/09/2025 - 12/09/2025 | $3500 | Nairobi, Kenya |
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08/09/2025 - 19/09/2025 | $3500 | Nairobi, Kenya |
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15/09/2025 - 26/09/2025 | $3500 | Nairobi, Kenya |
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06/10/2025 - 17/10/2025 | $3500 | Nairobi, Kenya |
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13/10/2025 - 24/10/2025 | $3500 | Nairobi, Kenya |
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20/10/2025 - 31/10/2025 | $3500 | Nairobi, Kenya |
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03/11/2025 - 14/11/2025 | $3500 | Nairobi, Kenya |
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10/11/2025 - 21/11/2025 | $3500 | Nairobi, Kenya |
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17/11/2025 - 28/11/2025 | $3500 | Nairobi, Kenya |
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01/12/2025 - 12/12/2025 | $3500 | Nairobi, Kenya |
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08/12/2025 - 19/12/2025 | $3500 | Nairobi, Kenya |
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05/01/2026 - 16/01/2026 | $3500 | Nairobi, Kenya |
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12/01/2026 - 23/01/2026 | $3500 | Nairobi, Kenya |
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19/01/2026 - 30/01/2026 | $3500 | Nairobi, Kenya |
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02/02/2026 - 13/02/2026 | $3500 | Nairobi, Kenya |
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09/02/2026 - 20/02/2026 | $3500 | Nairobi, Kenya |
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16/02/2026 - 27/02/2026 | $3500 | Nairobi, Kenya |
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02/03/2026 - 13/03/2026 | $3500 | Nairobi, Kenya |
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09/03/2026 - 20/03/2026 | $3500 | Nairobi, Kenya |
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16/03/2026 - 27/03/2026 | $3500 | Nairobi, Kenya |
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06/04/2026 - 17/04/2026 | $3500 | Nairobi, Kenya |
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13/04/2026 - 24/04/2026 | $3500 | Nairobi, Kenya |
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13/04/2026 - 24/04/2026 | $3500 | Nairobi, Kenya |
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04/05/2026 - 15/05/2026 | $3500 | Nairobi, Kenya |
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11/05/2026 - 22/05/2026 | $3500 | Nairobi, Kenya |
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18/05/2026 - 29/05/2026 | $3500 | Nairobi, Kenya |
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