مصاريف
غير متاح
تاريخ البدء
غير متاح
وسيلة الدراسة
متاح عبر الإنترنت بالكامل
مدة
108 hours
أنشئ حساباً مجانياً لفتح المحتوى الكامل!
بالتسجيل، فإنك توافق على بيان الخصوصية و الشروط والأحكام.
حقائق البرنامج
تفاصيل البرنامج
درجة
الدورات
تخصص رئيسي
الذكاء الاصطناعي | علوم الحاسوب | علوم البيانات
التخصص
تقنيات المعلومات والاتصالات | الهندسة
نوع التعليم
متاح عبر الإنترنت بالكامل
توقيت
لغة الدورة
إنجليزي
عن البرنامج
نظرة عامة على البرنامج
Program Overview
The university program in question is the "半導體AI與ChatGPT跨領域班" or the Semiconductor AI and ChatGPT Cross-Disciplinary Class, which is in its 17th iteration.
Course Details
Course Hours
The program consists of 108 hours of instruction.
Teaching Method
The course is taught through remote or distance learning.
Target Audience
The program is suitable for:
- Individuals without a programming background or industry knowledge who are interested in the field of AI.
- Those who wish to enter the AI field and are looking for a career change or transition.
Program Schedule
Course Period
The course runs from March 5, 2026, to July 18, 2026.
Registration Deadline
The deadline for registration is March 12, 2026, at 23:59.
Course Curriculum
The course covers the following topics:
- 半導體導論 (Semiconductor Introduction): Introduction to semiconductor concepts (3 hours).
- AI語言-python (AI Language - Python):
- AI thinking and industrial applications.
- Basic Python language (27 hours).
- 資料處理與視覺化 (Data Processing and Visualization):
- Pandas data processing and Numpy numerical processing modules.
- Matplotlib drawing module (9 hours).
- 機器學習 (Machine Learning):
- Sklearn package, Kmeans, DBSCAN, and other clustering methods.
- Regression, linear regression prediction, KNN, decision trees, random forests, SVM, and other commonly used machine learning classification methods.
- Data splitting, model referencing, model training, and model prediction (6 hours).
- 深度學習 (Deep Learning):
- Tensorflow and Keras packages.
- Introduction to neurons, activation functions, forward processing, and backward correction learning.
- DNN, CNN, RNN, LSTM model structures, uses, and parameter introductions.
- Data splitting, model construction, model training, and model prediction for various models (21 hours).
- ChatGPT應用 (ChatGPT Application):
- Using ChatGPT with image generation models to generate images and processing them with OpenCV.
- Natural language processing techniques: word segmentation tools, cyclic neural networks, and self-encoding network introductions (18 hours).
- 案例研討與專案 (Case Discussion and Project):
- Natural language - sentiment analysis.
- Data processing - stock prediction.
- Image processing - cancer prediction, semiconductor defect detection, and concentration detection (24 hours).
Total Hours
The total course hours are 108.
Additional Information
This is a self-paid course. For more details, please refer to the official course information or consult with the course instructor.
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