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後端工程師 & DevOps @創業家兄弟Kuobrothers Corp.
2022 ~ 2024
Senior Backend Engineer | DevOps | SRE
En un mes
AWS
CI/CD Drone
Cloudflare
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De 4 a 6 años
National Taipei University of Technology
資工系
Avatar of 李佳謙.
Avatar of 李佳謙.
Past
Marketing Manager @幫你優股份有限公司 BoniO Inc. / 閱讀優有限公司 TaaO Company Limited
2021 ~ Presente
Marketing Manager
En un mes
李佳謙 CHIEN LI Marketing Manager / BoniO Inc. Marketing Strategy | Customer Growth 負責品牌行銷,規劃產品銷售策略,推動品牌會員成長 熟悉市場、訂閱經濟、平台營運 以終為始策略型思考,帶領團隊有效達到營運目標 工作專長 用戶、營運成長數據指標分析 Operating Data Management ● 產品市場規模及用戶調
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淡江大學
英文學系
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資深前端工程師 @比房科技
2022 ~ 2024
Frontend developer.
En un mes
Frontend
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Product
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暨南大學
電機工程
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UX/UI 設計師 @網際威信股份有限公司
2023 ~ Presente
UX/UI Designer
En un mes
UI/UX Design
Flowchart
UI Flow
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De 4 a 6 años
iSpan資展國際
前端工程師就業養成班
Avatar of Naomi Lin.
Avatar of Naomi Lin.
行銷副理 / KOL Radar 行銷科技事業部 @愛卡拉互動媒體股份有限公司
2021 ~ Presente
品牌專案企劃、網路行銷企劃、數位行銷企劃
En un mes
林孟嫻 (Naomi Lin) 超過 5 年整合行銷與專案策略經驗 ,善於跨部門溝通、協作與專案管理,以邏輯和創意超越一切挑戰。 Contact: [email protected] 【專業能力】 英語能力: 多益 955 分,曾任台大英語辯論賽裁判 產品與市場數據分析: GA4, Ahrefs, SimilarWeb, Hotjar, Google Looker Studio 圖表串接與分析 行銷
Google Analytics
Sales & Marketing
Photoshop
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臺北市立大學
英語教學系
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Avatar of 潘揚燊.
智慧製造全端開發工程師 @聯華電子股份有限公司
2022 ~ Presente
AI工程師、機器學習工程師、深度學習工程師、影像演算法工程師、資料科學家、Machine Learning Engineer、Deep Learning Engineer、Data Scientist
En un mes
潘揚燊 ㄕㄣ Shen Pan Kaohsiung City,Taiwan •  [email protected] 希望職務:人工智慧、機器視覺應用開發工程師 現任 : 聯華電子 RPA 平台全端開發工程師 您好,我是潘揚燊,目前任職於 聯華電子 , 擔任 智慧製造 全端開發工程師 , 畢業於元智大學工業工程與管理學系研
Python
Qt
Git
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De 4 a 6 años
元智大學
工業工程與管理學系所
Avatar of Sosuke Guo.
Avatar of Sosuke Guo.
Past
資深前端工程師 @辰凝有限公司
2022 ~ 2023
前端工程師 Front-End Developer
En un mes
Sosuke Guo 專職於網頁前端工程師近五年,擅於從0開始打造產品,有用Vue + Golang + Python自己打造產品的經驗。 前端工程師 Front-End Developer [email protected] 作品 - SocialPicMaker.com 製作精美Twtter card 的小工具網站 只要兩個步驟,輸入網址、點擊下載,即可完成 可以選擇黑白兩種介面佈
vue.js
golang
Python
Desempleado
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De 4 a 6 años
Avatar of Patrick Hsu.
Avatar of Patrick Hsu.
Algorithm Research & Development @適着三維科技股份有限公司 TG3D Studio Inc.
2021 ~ Presente
Software Engineer
En un mes
Patrick Hsu AI Research & Development As a seasoned AI engineer with six years of experience, I specialize in computer vision, 3D body model reconstruction, generative AI, and possessing some knowledge in natural language processing (NLP). | New Taipei City, [email protected] Work Experience (6 years) Algorithm Research & Design• TG3D Studio MayPresent A skilled engineer specialized in computer vision and generative AI with experience in developing and training AI models for digital fashion applications. Body AI: Virtual Try On Integrated cutting-edge technologies such as Stable Diffusion, ControlNet, and Prompt Engineering to create a sophisticated system for
Python
AI & Machine Learning
Image Processing
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De 4 a 6 años
國立台灣大學
生物產業機電工程所
Avatar of 吳昊諶.
Avatar of 吳昊諶.
Past
前端工程師 @科智企業股份有限公司
2018 ~ 2023
資深前端工程師, Sr. Frontend Engineer
En un mes
吳昊諶 Mike 擁有 5 年經驗的前端工程師,開發過 AI 模型標註和訓練系統與機聯網相關應用,擅長 React.js, Firebase,也曾負責過網站管理、雲端部署、API 開發,平時開發會關注代碼的品質以及程式的效能,喜歡不停打磨產品和解決問題的過程,也熱衷於技術
MySQL
WordPress
React.js
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國立交通大學 National Chiao Tung University
土木工程
Avatar of Jimmy Lu.
Avatar of Jimmy Lu.
Past
Lead of Country Product Manager @Asus 華碩電腦股份有限公司
2022 ~ 2023
Business Development / Product Manager / Product Marketing/ Strategy Manager
En un mes
Jimmy Lu (呂正彥) Senior Product Manager [Consumer Electronics Expatriate PM/Sales/BD] Entrepreneurship business development & management Leadership flexible & efficient international/cross-functional organizing Target-oriented project lead & SOP consolidation, product lifecycle management Begin with the end in mind Go-to-market execution Taipei, Taiwan < > London, UK https://www.linkedin.com/in/itsjimmy/ [email protected] Work experience Senior Product Manager [Consumer NB & Gaming ] • ASUSTeK Computer Indonesia JulDec 2023 | Jakarta, Indonesia Key responsibilities & Achievements - #business management #business development #team leading #cross-functional organizing
Business Development Project Management
Cross-Functional Project Management
Product Life Cycle Management
Desempleado
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De 4 a 6 años
國立陽明交通大學(National Yang Ming Chiao Tung University)
Bachelor of management , Management of Transportation and Logistics

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En un año
Test Solution Engineer @ Micron Technology 台灣美光
Logo of Micron Technology 台灣美光.
Micron Technology 台灣美光
2022 ~ Presente
New Taipei City, Taiwan
Professional Background
Situación actual
Empleado
Progreso en la búsqueda de empleo
Professions
Research / R&D
Fields of Employment
Mechanical or Industrial Engineering
Experiencia laboral
De 4 a 6 años experiencia laboral (6-10 años relevante)
Management
I've had experience in managing 5-10 people
Habilidades
System Identification
Composite Materials
Embedded System
Machine Vision
Control System
Electrical
Network
LabView
Arduino
PLC Programming
machine learning
computer vision
signal processing
PHP development
Wafer
Eager To Learn
Idiomas
Chinese
Fluido
English
Profesional
Malay
Nativo o bilingüe
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Posición
Software Engineer, Research & Development, Project Manager
Tipo de trabajo
A tiempo completo
Ubicación
Taiwan, 台灣
A distancia
Interesado en trabajar a distancia
Freelance
Sí, soy un autónomo amateur.
Educación
Escuela
Universiti Malaysia Perlis
Mayor
Mechatronic Engineering
Imprimir
Profile 03 00@2x

ANG JIA YI

Ang Jia Yi currently joins Micron Memory Taiwan as an advance packaging technology development department as silicon integration. He previously had years of experience in various programming language Eg: Modelling, C programming, Python, MATLAB Vision knowledge. He love robotic and have vase knowledge in embedded system

Mechatronic Engineer, Software Engineer, Project Manager, Data Engineer, Research & Development,
TW
[email protected]
Research Gate Page
My Curriculum Vitae


SKILL


C language, Assembly, Python, Basic Stamp, PLC, Matlab, PCB design, Robotics, Embedded system, 3D printing, Control system, Arduino, Microcontroller, LabView, Electronic and Electrical, System Identification, Artificial Neuron Network, Composite materials and piping, Machine Vision, Signal Processing, PHP .


Work Experience

Micron Technology 台灣美光, Test Solution Engineer, Mar 2022 ~ Present

-HBM2e & HBM3 3D Packaging Test Program Development
-Develop test program for HBM production automated test equipment including new test, product algorithms which covers software and hardware requirements.
-Evaluate and verify yield/quality to ensure the -Provide statistical data analysis, analytics and justification on program validation and its release

Micron Technology 台灣美光, APTD SILICON INTEGRATION ENGINEER, Feb 2021 ~ Mar 2022

 HBM2e & HBM3 3D Packaging Research Program and Development
 Analyze and improve BEOL layout and chip package interaction (CPI) failure
 Prepare test environment for new test chip by determine the spec limit and monitor yield.
 Prepare details information for team member by document layout and CPI information.
 Provide layout related support to process team on determine failure

Braintech Sdn Bhd, Project Manager, Jun 2019 ~ Jul 2020

 Manage and maintain brain computer interface the product/software development
 Meet customer timeline and expectation by managing the project flow
 Increase the brain signal channel from 2 to 6 channel by restructure hardware and software
 Interpret brain signal using ANN modelling for hardware application
 Represent company in various talk, expedition, and competition local or oversea

X-CProblem, R&D Engineer, Apr 2014 ~ Oct 2018

Fulfill customer need by dealing with both hardware and software development
 Design a python based raspberry pi MCU tutorial module for lecturer
 Develop a mini demo waves electric generator
 Develop and design a SPA system by preparing the embedded system, custom protocol and PCB circuits to communicate with smartphone device using Bluetooth
 Redesign a hotel door lock system by giving support on the protocol restructure to support IoT system to link with smartphone

Cytron Technology Sdn Bhd, Internship Test Engineer, Jun 2012 ~ Aug 2012

 Design MCU PIC16/18 training kit by prepare coding tutorial and training documentation
 Decode PS2 keyboard/mouse protocol as controller input by prepare sample code/circuit
 Preparing NFC-MCU application by understanding protocol and preparing tutorial
 Design high power motor robot and control using RF signal

EDUCATION

Doctor of Philosophy (Ph.D.) in Mechatronic Engineering, School of Mechatronic Engineering, University Malaysia Perlis, Perlis, Malaysia  2013/10 – 2018/10


Bachelor of Engineering (Hons) in Mechatronic Engineering, School of Mechatronic Engineering, University Malaysia Perlis, Perlis, Malaysia 2009/6 – 2013/10

Professional Certification

Graduate Engineer, Board of Engineer Malaysia (BEM), 102258A (Mechatronic)

Certified LabVIEW Associate Developer (CLAD), 100-312-1821 (National Instruments)

Publication

Universiti Malaysia Perlis, Doctor of Philosophy (PhD), Mechatronic Engineering, 2013 ~ 2018


Thesis title: “Design and Development of Artificial Neural Network Model for Liquid Pressurized System Based on Glass Fibre Reinforced Epoxy (GRE) Composite Pipe”

With the rapid growth of science and technology, glass fibre reinforced epoxy (GRE) composite pipe has become part of the vital engineering elements in the engineering field. Therefore, qualification program plays an important role to ensure that the performance of the GRE pipe has achieved a reliable standard with excellent quality. Conventional test procedure which refers to ISO 14692 qualification test based on the regression analysis requires typically extensive amounts of time and cost to identify the performance of the new composite pipe. With the aid of mathematical modelling, the performance of the composite pipe can be predicted where this can reduce errors when designing the pipe. This research aims to model the performance of the GRE composite pipes and thus, identify the pipe’s first ply failure (FPF). First of all, an artificial neural network (ANN) model was developed to predict the onset of failure of GRE composite pipes. The ANN model was developed using input data namely, modulus of elasticity (axial), modulus of elasticity (hoop), volume fraction, diameter, thickness, pipe winding angle, stress ratio and pressure and the output data from the first-ply failure indicator of experimental data from previous research. The data obtained then underwent the smoothing and classification process to improve the accuracy of the model developed. In the smoothing process, the data was filtered using a smoothing algorithm to remove the unnecessary noise data followed by the classification process which categorised, recognised and differentiated the data from the known population. After the pre-processing, the data was used for the model training process. In the process, neural network training parameters needed to be decided. The parameter decided the number of neurons and the number of layers. In the model development, the mean accuracy of the model was calculated based on ten trials. By analysis and various trials, the highest accuracy model obtained would be used to predict the first-ply failure of the GRE composite pipe. A portable automated pressure test rig was also developed based on the monotonic/cyclic test protocol similar to the procedure elucidated in ASTM D2992 standard. The test rig served as a platform to obtain the experimental data for another model verification procedures. The validation process, on the other hand, was conducted to strengthen the reliability of the ANN model obtained. The validation process of the model was conducted using some other finding which was not included in the training process data. Therefore, the developed model was expected to predict the first-ply failure within the pipe composite laminated under various biaxial stress ratios. From the result, the three-layer ANN model structure was chosen where the means accuracy achieved was within 95%-99.66%. From the model verification process, the pure hydrostatic experimental comparison and the five different stress ratios test for ±55° GRE pipe accuracy was in the range of 77%-97%. For the validation test with experimental findings, a good agreement with the model’s predictions was achieved, with less than 30% variation. From the results, it has suggested that the ANN model can be extended to yield useful predictions of the onset of failure in composite pipes under a range of stress conditions. This can be utilised as an internal means for pipe rating prior to the required standard of the ASTM qualification process.

Universiti Malaysia Perlis, Bachelor of Engineering (Hons)(BEng), Mechatronic Engineering, 2008 ~ 2013


Final Year Project title: “Modeling and Control of Flexible structure for a Satellite Using Active and Passive Damper


Vibration normally will be a problem for satellite since there are disturbance occurred when maneuvering the satellite due to satellite reaction wheel and the solar wind. Therefore studying on vibration is one of the important issues to solve the problem of the vibration. Modeling for the flexible structure for the satellite which causes vibration would be proposed. The appendages of the satellite will only be represented by using a cantilever. Only an appendage will be considered for the sake of analysis. The mathematical equation of the cantilever and its model will be developed and designed in order to make research on it. The combination of embedded system and control system will be applied for analysis and to verify and developed model. Passive damper is introduced in this project to reduce the vibration. Also an active damper will be tested for further reducing the vibration. The development of the flexible model had been verified through cantilever experiment. Passive damper has been used to reduce the vibration and further improvement has been achieved further using an active damper.

Project 1

Projects 00 00@2x

Design and Development of Artificial Neural Network Model for Liquid Pressurized System Based on Glass Fibre Reinforced Epoxy (GRE) Composite Pipe

(Q1, IF: 3.858)

Patent Application No. : PI 2015 700298

Industry Design Application No. : 15-E0048-0101

了解詳情

Project 2

Projects 00 00@2x

Microcontroller-based for system identification tools using least square method for RC circuits

SCOPUS Indexed

了解詳情
Projects 02 00@2x

Intelligent Railway Control & Track Switching

The project is to design an intelligent railway gate control and tracking switching.The project is also programmed using PIC18F4580 using C language. All the information will be sent wirelessly through X-Bee to the PC.

Robotic Arms

Design and develop a robotic arm from hardware design, electric circuit and programming.

Paragraph image 00 00@2x

PCB Inspection Using Machine Vision

This project is design of smart machine vision (SMV) system to identified the damage of circuit board (PCB). This project is only completed using Matlab software which is one of the powerful mathematical toolbox program.

Paragraph image 02 00@2x

Mind Control Race Car

Mind Control VR for gaming


both using mindata chip.


Paragraph image 04 00@2x
Paragraph image 04 01@2x

QRCODE SCANNER

RASPBERRY PI + OPENCV

Wireless Power Transmission


Paragraph image 06 00@2x
Paragraph image 06 01@2x
Paragraph image 06 02@2x

Resume
Perfil
Profile 03 00@2x

ANG JIA YI

Ang Jia Yi currently joins Micron Memory Taiwan as an advance packaging technology development department as silicon integration. He previously had years of experience in various programming language Eg: Modelling, C programming, Python, MATLAB Vision knowledge. He love robotic and have vase knowledge in embedded system

Mechatronic Engineer, Software Engineer, Project Manager, Data Engineer, Research & Development,
TW
[email protected]
Research Gate Page
My Curriculum Vitae


SKILL


C language, Assembly, Python, Basic Stamp, PLC, Matlab, PCB design, Robotics, Embedded system, 3D printing, Control system, Arduino, Microcontroller, LabView, Electronic and Electrical, System Identification, Artificial Neuron Network, Composite materials and piping, Machine Vision, Signal Processing, PHP .


Work Experience

Micron Technology 台灣美光, Test Solution Engineer, Mar 2022 ~ Present

-HBM2e & HBM3 3D Packaging Test Program Development
-Develop test program for HBM production automated test equipment including new test, product algorithms which covers software and hardware requirements.
-Evaluate and verify yield/quality to ensure the -Provide statistical data analysis, analytics and justification on program validation and its release

Micron Technology 台灣美光, APTD SILICON INTEGRATION ENGINEER, Feb 2021 ~ Mar 2022

 HBM2e & HBM3 3D Packaging Research Program and Development
 Analyze and improve BEOL layout and chip package interaction (CPI) failure
 Prepare test environment for new test chip by determine the spec limit and monitor yield.
 Prepare details information for team member by document layout and CPI information.
 Provide layout related support to process team on determine failure

Braintech Sdn Bhd, Project Manager, Jun 2019 ~ Jul 2020

 Manage and maintain brain computer interface the product/software development
 Meet customer timeline and expectation by managing the project flow
 Increase the brain signal channel from 2 to 6 channel by restructure hardware and software
 Interpret brain signal using ANN modelling for hardware application
 Represent company in various talk, expedition, and competition local or oversea

X-CProblem, R&D Engineer, Apr 2014 ~ Oct 2018

Fulfill customer need by dealing with both hardware and software development
 Design a python based raspberry pi MCU tutorial module for lecturer
 Develop a mini demo waves electric generator
 Develop and design a SPA system by preparing the embedded system, custom protocol and PCB circuits to communicate with smartphone device using Bluetooth
 Redesign a hotel door lock system by giving support on the protocol restructure to support IoT system to link with smartphone

Cytron Technology Sdn Bhd, Internship Test Engineer, Jun 2012 ~ Aug 2012

 Design MCU PIC16/18 training kit by prepare coding tutorial and training documentation
 Decode PS2 keyboard/mouse protocol as controller input by prepare sample code/circuit
 Preparing NFC-MCU application by understanding protocol and preparing tutorial
 Design high power motor robot and control using RF signal

EDUCATION

Doctor of Philosophy (Ph.D.) in Mechatronic Engineering, School of Mechatronic Engineering, University Malaysia Perlis, Perlis, Malaysia  2013/10 – 2018/10


Bachelor of Engineering (Hons) in Mechatronic Engineering, School of Mechatronic Engineering, University Malaysia Perlis, Perlis, Malaysia 2009/6 – 2013/10

Professional Certification

Graduate Engineer, Board of Engineer Malaysia (BEM), 102258A (Mechatronic)

Certified LabVIEW Associate Developer (CLAD), 100-312-1821 (National Instruments)

Publication

Universiti Malaysia Perlis, Doctor of Philosophy (PhD), Mechatronic Engineering, 2013 ~ 2018


Thesis title: “Design and Development of Artificial Neural Network Model for Liquid Pressurized System Based on Glass Fibre Reinforced Epoxy (GRE) Composite Pipe”

With the rapid growth of science and technology, glass fibre reinforced epoxy (GRE) composite pipe has become part of the vital engineering elements in the engineering field. Therefore, qualification program plays an important role to ensure that the performance of the GRE pipe has achieved a reliable standard with excellent quality. Conventional test procedure which refers to ISO 14692 qualification test based on the regression analysis requires typically extensive amounts of time and cost to identify the performance of the new composite pipe. With the aid of mathematical modelling, the performance of the composite pipe can be predicted where this can reduce errors when designing the pipe. This research aims to model the performance of the GRE composite pipes and thus, identify the pipe’s first ply failure (FPF). First of all, an artificial neural network (ANN) model was developed to predict the onset of failure of GRE composite pipes. The ANN model was developed using input data namely, modulus of elasticity (axial), modulus of elasticity (hoop), volume fraction, diameter, thickness, pipe winding angle, stress ratio and pressure and the output data from the first-ply failure indicator of experimental data from previous research. The data obtained then underwent the smoothing and classification process to improve the accuracy of the model developed. In the smoothing process, the data was filtered using a smoothing algorithm to remove the unnecessary noise data followed by the classification process which categorised, recognised and differentiated the data from the known population. After the pre-processing, the data was used for the model training process. In the process, neural network training parameters needed to be decided. The parameter decided the number of neurons and the number of layers. In the model development, the mean accuracy of the model was calculated based on ten trials. By analysis and various trials, the highest accuracy model obtained would be used to predict the first-ply failure of the GRE composite pipe. A portable automated pressure test rig was also developed based on the monotonic/cyclic test protocol similar to the procedure elucidated in ASTM D2992 standard. The test rig served as a platform to obtain the experimental data for another model verification procedures. The validation process, on the other hand, was conducted to strengthen the reliability of the ANN model obtained. The validation process of the model was conducted using some other finding which was not included in the training process data. Therefore, the developed model was expected to predict the first-ply failure within the pipe composite laminated under various biaxial stress ratios. From the result, the three-layer ANN model structure was chosen where the means accuracy achieved was within 95%-99.66%. From the model verification process, the pure hydrostatic experimental comparison and the five different stress ratios test for ±55° GRE pipe accuracy was in the range of 77%-97%. For the validation test with experimental findings, a good agreement with the model’s predictions was achieved, with less than 30% variation. From the results, it has suggested that the ANN model can be extended to yield useful predictions of the onset of failure in composite pipes under a range of stress conditions. This can be utilised as an internal means for pipe rating prior to the required standard of the ASTM qualification process.

Universiti Malaysia Perlis, Bachelor of Engineering (Hons)(BEng), Mechatronic Engineering, 2008 ~ 2013


Final Year Project title: “Modeling and Control of Flexible structure for a Satellite Using Active and Passive Damper


Vibration normally will be a problem for satellite since there are disturbance occurred when maneuvering the satellite due to satellite reaction wheel and the solar wind. Therefore studying on vibration is one of the important issues to solve the problem of the vibration. Modeling for the flexible structure for the satellite which causes vibration would be proposed. The appendages of the satellite will only be represented by using a cantilever. Only an appendage will be considered for the sake of analysis. The mathematical equation of the cantilever and its model will be developed and designed in order to make research on it. The combination of embedded system and control system will be applied for analysis and to verify and developed model. Passive damper is introduced in this project to reduce the vibration. Also an active damper will be tested for further reducing the vibration. The development of the flexible model had been verified through cantilever experiment. Passive damper has been used to reduce the vibration and further improvement has been achieved further using an active damper.

Project 1

Projects 00 00@2x

Design and Development of Artificial Neural Network Model for Liquid Pressurized System Based on Glass Fibre Reinforced Epoxy (GRE) Composite Pipe

(Q1, IF: 3.858)

Patent Application No. : PI 2015 700298

Industry Design Application No. : 15-E0048-0101

了解詳情

Project 2

Projects 00 00@2x

Microcontroller-based for system identification tools using least square method for RC circuits

SCOPUS Indexed

了解詳情
Projects 02 00@2x

Intelligent Railway Control & Track Switching

The project is to design an intelligent railway gate control and tracking switching.The project is also programmed using PIC18F4580 using C language. All the information will be sent wirelessly through X-Bee to the PC.

Robotic Arms

Design and develop a robotic arm from hardware design, electric circuit and programming.

Paragraph image 00 00@2x

PCB Inspection Using Machine Vision

This project is design of smart machine vision (SMV) system to identified the damage of circuit board (PCB). This project is only completed using Matlab software which is one of the powerful mathematical toolbox program.

Paragraph image 02 00@2x

Mind Control Race Car

Mind Control VR for gaming


both using mindata chip.


Paragraph image 04 00@2x
Paragraph image 04 01@2x

QRCODE SCANNER

RASPBERRY PI + OPENCV

Wireless Power Transmission


Paragraph image 06 00@2x
Paragraph image 06 01@2x
Paragraph image 06 02@2x