TechSource & Ascendas Events

เรียนรู้แนวทางการใช้งาน MATLAB เเละ Simulink ที่มีประสิทธิภาพ รับคำแนะนำจากผู้เชี่ยวชาญ และสร้าง
เครือข่ายกับเพื่อนร่วมวิชาชีพผ่านกิจกรรมของเรา

Design and Simulate Scenarios for Automated Driving Applications

ธันวาคม 15, 2022

You will learn how to author scenarios for simulation on realistic road networks designed in RoadRunner. You can use this workflow to simulate autonomous driving with built-in agents as well as author and integrate custom agents designed in MATLAB, Simulink, or CARLA. The scenarios can be exported to OpenSCENARIO for simulation and analysis in external tools if desired.

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Introduction to Simulink for System Modeling and Simulation

มกราคม 24, 2023

In this session you will learn the basics of Simulink for modIn this session you will learn the basics of Simulink for modeling, simulating, and analyzing multidomain dynamical systems. You will see how to build simulation models using Simulink’s block diagramming interface, customizable set of libraries, and connectivity to MATLAB.eling, simulating, and analyzing multidomain dynamical systems. You will see how to build simulation models using Simulink’s block diagramming interface, customizable set of libraries, and connectivity to MATLAB.

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Modeling Electrical Power Systems in Simscape Electrical

มกราคม 25, 2023

In this webinar, MathWorks will demonstrate modeling and simulation of electrical power systems using Simscape Electrical™. The presentation is developed for students and educators looking to understand the capabilities of Simscape Electrical for the learning and teaching environment.

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Introduction to AI with MATLAB

มกราคม 31, 2023

In webinar will be discussing how to incorporate AI into your project by understanding and implementing the steps of the AI workflow. We will show various demos using Machine Learning and Deep Learning techniques and discuss how MATLAB can work with open-source tools for AI projects.

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AI for Agriculture

พฤศจิกายน 22, 2022

Learn how to use MATLAB for hyperspectral imaging and aerial lidar data processing for terrain classification and vegetation detection in agricultural applications.

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Accelerate Processing Time with Parallel Computing

ตุลาคม 13, 2022

Signal processing and biomedical applications are becoming increasingly complex and computationally intensive. With the increasing adoption of machine learning and deep learning techniques, powerful hardware like multicore CPUs, GPUs, and High-Performance Computing clusters/cloud are common. With Parallel Computing Toolbox™, MATLAB® helps you take advantage of your hardware to speed up your applications without having to rewrite code. High-level constructs such as parallel for-loops, special array types, and parallelized numerical algorithms enable you to parallelize MATLAB® applications without CUDA or MPI programming.

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MathWorks Finance Conference 2022 (Online)

ตุลาคม 11, 2022

The MathWorks Finance Conference 2022 brings together industry professionals to showcase MathWorks tools in real-world industry use cases and offers practitioner advice through live presentations, Q&A, interactive panel discussions, and in-depth demos.

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Deep Learning and Machine Learning for Signal Processing Applications

พฤศจิกายน 15, 2022

Deep Learning and Machine Learning are powerful tools to build applications for signals and time-series data across a broad range of industries. These applications range from predictive maintenance and health monitoring to financial portfolio forecasting and advanced driver assistance systems.

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MATLAB with TensorFlow and PyTorch for Deep Learning

พฤศจิกายน 10, 2022

MATLAB® and Simulink® with deep learning frameworks, TensorFlow and PyTorch, provide enhanced capabilities for building and training your machine learning models. Via interoperability, you can take full advantage of the MATLAB ecosystem and integrate it with resources developed by the open-source community. You can combine workflows that include data-centric preprocessing, model tuning, model compression, model integration, and automatic code generation with models developed outside of MATLAB.

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