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Training Course on Transformer Models for Computer Vision
Introduction
The landscape of Computer Vision has been profoundly reshaped by the advent of Transformer Models, particularly Vision Transformers (ViT). Traditionally dominated by Convolutional Neural Networks (CNNs), the field is now experiencing a paradigm shift as ViTs demonstrate unparalleled capabilities in capturing global context and long-range dependencies within visual data. This intensive training course delves deep into the theoretical foundations and practical applications of ViT, equipping participants with the cutting-edge skills to design, implement, and deploy advanced AI-powered solutions for diverse visual intelligence tasks.
Training Course on Transformer Models for Computer Vision is meticulously designed to bridge the gap between theoretical understanding and real-world implementation, offering a comprehensive exploration of ViT architectures, training methodologies, and optimization techniques. Participants will gain hands-on experience with popular deep learning frameworks like PyTorch and TensorFlow, mastering the art of transfer learning and fine-tuning pre-trained ViT models for superior performance across various benchmarks. Upon completion, attendees will be proficient in leveraging ViTs for state-of-the-art image classification, object detection, semantic segmentation, and generative AI applications, positioning them at the forefront of the AI innovation wave.
Programme Curriculum
Training Course on Transformer Models for Computer Vision
Introduction
The landscape of Computer Vision has been profoundly reshaped by the advent of Transformer Models, particularly Vision Transformers (ViT). Traditionally dominated by Convolutional Neural Networks (CNNs), the field is now experiencing a paradigm shift as ViTs demonstrate unparalleled capabilities in capturing global context and long-range dependencies within visual data. This intensive training course delves deep into the theoretical foundations and practical applications of ViT, equipping participants with the cutting-edge skills to design, implement, and deploy advanced AI-powered solutions for diverse visual intelligence tasks.
Training Course on Transformer Models for Computer Vision is meticulously designed to bridge the gap between theoretical understanding and real-world implementation, offering a comprehensive exploration of ViT architectures, training methodologies, and optimization techniques. Participants will gain hands-on experience with popular deep learning frameworks like PyTorch and TensorFlow, mastering the art of transfer learning and fine-tuning pre-trained ViT models for superior performance across various benchmarks. Upon completion, attendees will be proficient in leveraging ViTs for state-of-the-art image classification, object detection, semantic segmentation, and generative AI applications, positioning them at the forefront of the AI innovation wave.
Course Duration
10 days
Course Objectives
Master the foundational concepts of Transformer architecture and self-attention mechanisms.
Understand the evolution from CNNs to Vision Transformers (ViT) in Computer Vision.
Implement ViT models from scratch using leading deep learning frameworks (PyTorch, TensorFlow).
Apply transfer learning and fine-tuning strategies for pre-trained ViT models.
Develop expertise in image classification with Vision Transformers on large-scale datasets.
Upon successful completion of this training, participants will be issued with a globally- recognized certificate.
Tailor-Made Course
We also offer tailor-made courses based on your needs.
Key Notes
a. The participant must be conversant with English.
b. Upon completion of training the participant will be issued with an Authorized Training Certificate
c. Course duration is flexible and the contents can be modified to fit any number of days.
d. The course fee includes facilitation training materials, 2 coffee breaks, buffet lunch and A Certificate upon successful completion of Training.
e. One-year post-training support Consultation and Coaching provided after the course.
f. Payment should be done at least a week before commence of the training, to FINESKILL TRAINING CENTER account, as indicated in the invoice so as to enable us prepare better for you.