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後端工程師 @Beyond Cars
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心比心】。 後端 & DevOps工程師 城市,TW MBTI人格測試結果 Skill Programming Language back-end Node.js(Typescript) (Expert) Python (Familiar) Go (Familiar) front-end React.js (Familiar) HTML(Familiar) CSS (Beginner) Database MySQL (Familiar) PostgreSQL (Familiar) Redis (Beginner) MongoDB (Beginner) Others DevOps 1. Cloud AWS CloudFront Route53 RDS SES EC2 S3 ECR ECS Fargate Codepipeline Amplify WAF(Web ACLs) CloudWatch CloudTrail Trusted Advisor SDK Azure LB Terraform 2. Server Nginx Docker Tools Git /SourceTree(GUI) Git Flow Agile (Scrum) Github/GitLab/Bitbucket/
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senior software engineer/ tenical pm @CYTENA BPS
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國立台灣大學 (National Taiwan University, NTU)
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DBA @旺淶科技有限公司
2023 ~ Present
程式工程師、後端工程師、DBA
Within one month
Eddie Chiang Database Administrator 擅長語法調教及表結構設計,對mysql架構及底層有一定程度理解,能快速掌握問題點並解決問題 Taipei City, Taiwan 工作經歷 十二月Present DBA 旺淶科技有限公司 管理Amazon Aurora、SingleStore 使用Python做資料搬移 特殊經歷 ・優化報表架構 八月十一月 2023 Database Administrator Paradise Soft 管理MySQL,MongoDB
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4-6 years
中臺科技大學
資料庫管理, 物件導向程式設計
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Front End Developer @Open Agent
2017 ~ 2019
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Computer Science
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資深主任工程師 @長青資訊
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and performance. Database Management: Relational Databases : Skilled in managing MySQL databases, with a focus on optimizing database designs through efficient schema creation. Experienced in enhancing query performance using indexing strategies and ensuring data integrity via comprehensive transaction management mechanisms. NoSQL Databases : Extensive experience with NoSQL databases, especially MongoDB, leveraging its flexible schema for rapid development and scaling. Knowledgeable in utilizing document-oriented storage principles for dynamic content management. Data Modeling & Migration : Expertise in ORM tools like GORM for Go, ensuring seamless data integration and migration strategies. Competent in designing data models that effectively reflect
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勤益科技大學
軟體工程
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Chiyuang Tseng Chiyuang [email protected] Skills Programming language: Go, Python, C++ Developing tool: Linux, Git, Docker, Kubernetes, Postman Databases: MySQL, Redis, MongoDB, Firestore, BigQuery Cloud: GCP(Kubernetes Engine, BigQuery, CloudSQL, Cloud Storage, Pub/Sub), AWS(SES, SNS) Others: Nginx, ELK stack, RESTful API, Swagger Experience FebDec 2023 Senior Software Engineer, iKala(CDP) OctJan 2023 Software Engineer, iKala(CDP) Designed and implemented an URL shortener for event tracking Designed and implemented IAM module of CDP Responsible for 3rd party API integrations, includes Google Ads, AWS SES&SNS, Newsleopard(email), MAAC(LINE messaging provider), and EVERY8D
golang
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台灣大學
計算機科學
Avatar of 宋浩茹 Ellie Sung.
AI工程師、機器學習工程師、深度學習工程師、資料科學家、Machine Learning Engineer、Deep Learning Engineer、Data Scientist
Within one month
宋浩茹 Hao-Ru Sung| [email protected] | LinkedIn | GitHub A s a Research Assistant at Academia Sinica , specializing in Generative AI research and application. With 3 + years of experience in NLP a nd Machine Learning , along with 4+ years in Backend Development . Proficient at translating complex theories into practical applications. Skills Languages: Python, R, SQL, MATLAB, C, C#, JavaScript, Node.js Software & Tools: PyTorch, PyTorch Lightning, Tensorflow, Scikit-Learn, NLTK , GCP, Linux, SQL / NoSQ , Pandas, Hugging Face, Gradio, LangChain, Tensorflow, Keras, FastAPI, OpenCV, Airflow
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4-6 years
國立政治大學(National Chengchi University)
資訊科學系
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Avatar of Erick Diaz.
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Desarrollador web @Apuestanweb
2022 ~ Present
Desarrollador backend
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Erick Diaz Desarrollador Full Stack apasionado y altamente capacitado, me especializo en la creación de soluciones web completas y eficientes utilizando tecnologías como WordPress, Next.js, React.js, Go y PHP. Mi experiencia abarca desde el diseño y desarrollo de interfaces de usuario interactivas hasta la implementación de lógica de servidor robusta. Contacto https://www.linkedin.com/in/[email protected] Habilidades Wordpress Nextjs Nodejs Mysql MongoDB Php Javascript Go Typescript Experiencia laboral Desarrollador web • Apuestanweb febreromayo 2023 tema WordPress desarrollado en php Desarrollador web • Freelance. eneroPresent
NextJS
WordPress
go
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6-10 years
INCES
Desarrollo de páginas web, contenido digital/multimedia y recursos informáticos
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PHP Developer @飛資得資訊股份有限公司
2023 ~ 2024
php後端工程師
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for Game Platform PHP Developer • 阿物科技股份有限公司 一月十二月 2021 | Taipei, Taiwan 商品推薦API 公司 API 專案的 PHP 開發維護工程師 開發資料庫有 Mysql, Elasticsearch, MongoDB, Neo4j 主要使用框架 Laravel 為主開發 (其中也有 CI) 使用 Docker 環境 PHP FPM 7.2~7.4 (依照專案切換) Recommandation API System PHP Developer • 中佑集團 三月十月
PHP Laravel Framework
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6-10 years
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奕瑞科技有限公司
2022 ~ Present
Taipei City, Taiwan
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Profile 03 00@2x

許哲偉  Tony Hsu

   Software Engineer,喜歡思考、學習各種新技術,擅於分析與結構化處理複雜問題,樂於鼓勵他人以及督促自我,能以積極樂觀的心面對一切事情。 

 自學過 Stanford 吳恩達教授的 Deep Learning 課程與作業以及 Kaggle和 Github 等網站上大量 Open Source 的知識。


Software Engineer
  新北市,TW, Tel: 0937848413
 [email protected]

Skills


程式語言-program                        機器學習-ML-1                              機器學習-ML-2

 Front-End, Template

  • JavaScript
  • Html5 
  • CSS 
  • JQuery 
  • Ajax
  • Bootstrap
 Back-End, Framework, Crawler                   
  • Python
  • C++
  • Django 
  • Fastapi
  • Flask

 Process Data Package & Skills
  • Numpy
  • Pandas
  • Matplotlib
  • EDA
 ML Package

  • Scikit-learn
  • Tensorflow
           TFRecords
           TF Data API (Pipeline)
           TF Hub
  • Keras

  




 Computer Vision Package
  • OpenCV
  • Dlib
  • Mediapipe
  • Darknet
 Training Hardware

  • GPU Tesla K8, T4 (Colab)
  • GPU P100-16GB (Kaggle)
  • TPUv3-8 128GB (Kaggle)


版本控制  - 資料庫  

  • Git / Github 
  • MySQL
  • MongoDB


系統與開發工具 

  • VSCode
  • Jupyter / Colab / Kaggle notebook
  • Raspberry Pi-3B
  • Linux - Ubuntu18.04
  • Docker
  • AWS EC2



經歷(Experience)

奕瑞科技有限公司, Software Engineer - 2022/03 ~ 2022/11

         1. 奕瑞科技的訓練資料網站:

         與 Frontend Engineer 合作開發公司內部系統,負責 Backend,以 Object Detection 需要的 Data 為主,使用 Yolo 系列算法所需的 Data labeling XML(PascalVOC) format,再將所需要的資料訊息轉成 json 儲存在 MongoDB database。用 Nosql 應對日後百萬至千萬的資料查詢。編寫資料搜尋引擎、XML 轉 json 工具、自動匯入 DB 工具、自動上傳下載工具優化,運用 Docker 部署在 Ubuntu上。


        2. Camera Integrity Check System (AI 影像辨識妥善率監控系統)」的「友達」維護案子:

        與 System Technical Supervisor, AI Engineer 負責處理公司自行研發的系統問題,了解網路架構、IP Camera 視訊串流( RTSP 協定),使用過 Clonezilla 硬碟分割備份技術,學習解決連接 483 台監控設備遇到的問題,等等。


        3. 運維「泛亞智慧工地」案子:

        了解 Face Recognition device 規格書,MQTT 通訊協定,實作過 Subscriber and Publisher 測試工具,等等。


        4. 影片訓練資料的收集與硬體 api 串接:
        協助處理「泛亞專案」影片訓練資料的收集,使用切影片 frame 程式、編寫 frame_to_time 程式,等等工具。 協助處理「華夏塑膠」專案的 IP Speaker api 串接。

        5.泰國超商」人流、物品偵測與追蹤專案:
        協助交接與練習,Detection 使用 Darknet Yolov4 Model 做訓練,Tracking 使用 FastMot 算法判斷。


Project 開發與自學 - 伯父指導 (Guide project development and Self-Study) - 2021/05 ~ 2021/12 

Project 開發
        1. 實作人臉偵測、識別 (Face Detection, Recognition):   
        偵測與辨識人臉系統,寫入 CSV 檔管理出勤人名中英文轉換 

        2. 種族分類器 (Race Classifier):   
        以 Kaggle UTKFace datasetEDA 種族辨識,存成 TFRecords 檔使用tf.data pipeline (載入資料, 預先處理, cache, map, shuffle, prefetch),建立模型 (VGG16, ResNet50, Xception, EfficientnetB5-7-L2, EfficientnetV2-m-l-xl),使用 Transfer Learningpre-trained model weights (ImageNet) or Self-Supervised learning weights (Noisy-student, ImageNet21K, ImageNet21K-ft1K)Kaggle TPU/GPU 訓練& Fine-tuningTest Top1 accuracy ≈ 85.x%。 

        3. 物件偵測 (Custom Multi-Object Detection - using YOLOv4):   
        使用 open images dataset v6 (Google Datasets) Custom 3 classes Datasets (train 90%, test 10%),以 yolov4-custom.cfg 架構 + Colab GPU 從頭訓練 2000 次,達到 mAP=91%
 
        其餘時間寫的: 
        Web Crawler:  1. Google Image  2. Unsplash 圖庫。 
        Dataset practice:  Fashion-Mnist:  best accuracy ≈ 94~95%,  Cifar10:  best accuracy ≈ 93~94%,  CNN training model:  VGG16,  ResNet34,  ResNet50,  Fine-tuning tool:  Keras-tuner . 

        Self-Study:  
        學習 ML Official API 文件、hands on ML 書籍、Open Source,看台大李弘毅 ML Youtube 教程,練習實作 Model Architecture 與運用一些 SOTA ModelSelf-Supervised Learning 技術。

Coursera Deep Learning Specialization (Self-Study) - 2019/05 ~ 2019/11 
Instructor:  Stanford's Andrew Ng 
學習課程:
        1. Neural Networks and Deep Learning 
        2. Improving Deep Neural Networks Hyperparameter tuning, Regularization and Optimization 
        3. Structuring Machine Learning Projects 
        4. Convolutional Neural Networks 
        5. Sequence Models

學歷(Education)

2018/08 ~ 2018/12

策會 - AI 人工智慧創新應用就業養成班


訓練課程

前端網頁設計、Django 後端開發、Python Data Analysis、網頁爬蟲、Machine Learning、Deep Learning、OpenCV、AWS Cloud、LineBot、Git/Github、RaspberryPi-3B、Linux(Ubuntu18.04)、MySQL

小組專題製作:

1. Fusic 音樂網站 (5人)   2. 咖啡廳 AI Service (6人)

Took extra courses: 

- Edx & Microsoft:  Logic and Computational Thinking  

- Edx & Microsoft:  Introduction to Python for Data Science  

Paragraph image 00 00@2x

2011/09 ~ 2017/01

文化大學 - 資訊工程學系 (畢業)

學習經歷:  在大學修習時期有些課程不認真,以至於延宕畢業時間。迫使我更加珍惜努力學習,而找到編程 (programing) 之樂趣。放棄與克服之間我最終選擇後者,克服它。因此,透過不斷的練習,在資料結構 (Data Structure) 的正課上獲得84分,程式實作課總平均提高到90分。


- 參與社團: 系上系籃
- 暑期工讀: PX Mart (全聯)

- TOEIC成績: 460分 (2020/10)

Paragraph image 00 00@2x

奕瑞科技 Projects


2022/03 ~ In progress

奕瑞科技的訓練資料網站 - (Internal System)

負責 Backend,以 Object Detection 需要的 Data 為主,使用 Yolo 系列算法所需的 Data labeling XML (PascalVOC) format,再將所需要的資料訊息轉成  json 儲存在 MongoDB database。用 Nosql 應對日後百萬至千萬的資料查詢。


編寫資料搜尋引擎、XML 轉 json工具、自動匯入 DB 工具、自動上傳下載工具優化,運用 Docker 部署在 Ubuntu 上。

2022/04 ~ In progress

Camera Integrity Check System (AI 影像辨識妥善率監控系統) - (Operation and Maintenance)

與 System Technical Supervisor, AI Engineer 處理運維系統問題,了解網路架構、IP Camera 視訊串流 ( RTSP 協定),使用過 Clonezilla 硬碟分割備份技術,學習解決連接 483 台監控設備遇到的問題,等等。

2022/09 ~ In progress

泛亞智慧工地 - (Operation and Maintenance)

與 System Technical Supervisor, AI Engineer 運維「泛亞智慧工地」案子,了解 Face Recognition device 規格書,MQTT 通訊協定,實作過 Subscriber and Publisher 測試工具,等等。 


協助處理「泛亞專案」影片訓練資料的收集,使用切影片 frame 程式、編寫 frame_to_time 程式,等等工具。


協助處理「華夏塑膠」專案的 IP Speaker api 串接。

2022/03 ~ 2022/04

「泰國超商」人流、物品偵測與追蹤專案

協助交接與練習,Detection 使用 Darknet Yolov4 Model 做訓練,Tracking 使用 FastMot 算法判斷。

AI Projects


2021/05 ~ 2020/12 

Custom YOLOv4 (Multi-Object Detection Project)

軟體實作:

使用 Open Images Dataset V6 (Google Datasets) 做Custom 3 classes Datasets (train: 三個類別各 1500 張 img + annotaions, test: 三個類別各 300 張img + annotaions),以 darknet yolov4-custom.cfg 架構 + Colab GPU training 1800 iterations,達到mAP=91%。

Paragraph image 02 00@2x

工具: 

Python, OpenCV, Darknet, 

Macbook Pro Camera, VSCode, 

Colab (GPU) 

 

參考資料 & Open Source: 

ScaledYOLOv4 (Github) 

https://github.com/WongKinYiu/ScaledYOLOv4 

YOLOv4: Optimal Speed and Accuracy of Object Detection 


My Github:   

Paragraph image 04 01@2x

2021/05 ~ 2020/12

種族分類器 (Race Classifier Project) 


軟體開發

Data:

Kaggle UTKFace (Open Data) 

Data Preprocess:

Python, Numpy, Pandas, Matplotlib, EDA

Build Model: 

Tensorflow, Keras 

CNN Architecture: 

VGG16, ResNet50, Xception, EfficientnetB4-5-7-L2 (SOTA), EfficientnetV2-m-l-xl (SOTA)


Skills used

1. Data-cleaning (Sklearn IsolationForest) -> not good

2. Data-Augmentation 

3. Transfer learning 

4. Learning Rate Scheduler

5. Tensorboard 

6. ImageNet pre-trained model 

7. Self-Supervised-Learning pre-trained model (Noisy Student, ImageNet21k or 21K-ft1k) 

8. Fine-tuning

9. TFRecords (protobuffer)

10. TF Data API (shuffle -> map -> batch -> prefetch)


Hardware

1. NV GPU K8, T4 (Colab) 

2. NV GPU P100-16GB (Kaggle) 

3. TPUv3-8 128GB (Kaggle)

  • TPU Skills - Convert tf.float32  to tf.bfloat16

Problem Solved: 

Training model

  • GPU Out of Memory
  • TPUv3 (Exceeded hbm capacity) 
  • Cloud VM problem

Project process: 

分析&預處理:

使用 Kaggle UTKFace 約 23708 張 Face dataset -> 做 EDA 分析 (ex: sex, age, race) -> Data cleaning -> 將資料用Sklearn train_test_split 方法切割成 train: 80%, valid: 10%, test: 10% -> 將分好的資料寫成二進位格式轉成TFRecords 檔 (能夠在訓練時快速讀取大量資料) -> 讀取大量圖片檔案並轉成 numpy 格式,遇到 I/O 問題,使用 multiprocessing 跟容器減少讀取時間跟記憶體消耗 -> 解析 TFRecords 檔使用 tf.data pipeline (載入資料, 預先處理, cache, map, shuffle, prefetch) 

建模&訓練:

建立模型 (ex: VGG16, ResNet50, Xception, EfficientnetB5-7-L2, EfficientnetV2-m-l-xl) -> 使用 Transfer Learning 加 pre-trained model weights (ex: ImageNet) or Self-Supervised learning weights (ex: Noisy-student, ImageNet21K, ImageNet21K-ft1K) -> Fine-tuning -> 使用 Kaggle TPU/GPU 訓練 -> Evaluate Accuracy -> Plot predict curves -> Confusion Matrix -> Visualize prediction images -> F1 score 

Test Top1 Accuracy: ≈ 85.x%                                                                                                                   My Github:  

2021/05 ~ 2020/12 

Face Detection and Recognition (Face Attendance Project)  


軟體實作:

Python, OpenCV, Pillow, Dlib, MediapipeFace_recognition


Paragraph image 02 00@2x
Paragraph image 03 00@2x

功能:

1. 偵測與辨識人臉系統,寫入CSV檔管理出勤 2. 人名中英文轉換

實作工具:

Macbook Pro Camera, VSCode








My Github:  

2018/8 ~ 2018/12

Automatic-Cafe (Group Project) 

Web 開發:

JavaScript, Html5, CSS, Bootstrap,

Nginx

軟體開發:

Tensorflow, Jupyter notebook, 

OpenCV, Tesseract OCR, Linux(Ubuntu18.04), Linebot

硬體 & 開源工具:

RaspberryPi-3B, Nvidia GPU 2080, LabelImg, Donkey Car & Ducky Car Framework

功能:

1. Web 顧客選位  

2. LineBot 語音點餐、拉花遊戲、滿意度調查服務  

3. 以 Donkey Car 架構為基礎訓練的送餐車

4. 用 LineBot 呈現以 RNN 做的詩詞

5. CNN 老鼠辨識器,用以解決倉儲中環境衛生問題。

6. 我的功能以下面的 Text Recognition 專題介紹。

Group of 6.

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Text Recognition (My Project)

軟體實作:

Python, OpenCV, Tesseract OCR,

EAST pre-trained model and Ubuntu18.04.

功能:

Text Recognition 用在辨識顧客的牌子文字

參考資料 & Open Source: 

1. EAST: An Efficient and Accurate Scene Text Detector (Github)

2. PyImageSearch

My Github:    

https://github.com/tonyhsu32/AI-Cafe-with-machine-learning

My Demo:  https://www.youtube.com/channel/UC8Rz5NB_A_FCEAXJjIC8xqw


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Web Crawler


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2021/05 ~ 2020/12 

圖片爬蟲程式(Web Crawler)

1. Google Image Crawler

軟體實作:

Python, Selenium, urllib

2. Unsplash 圖庫 Crawler

軟體實作:

Python, Selenium, urllib, BeautifulSoup

功能: 自動化圖片抓取

My Github:  

Web Projects


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2018/8 ~ 2018/12

Music Web (Group Project)

前端開發:

JavaScript, Html5, CSS, Bootstrap

後端開發:

Python, Django, MySQL

功能:

CRUD 服務, 註冊會員, 留言板, 聊天功能 (我), 自動匹配喜好 Youtube 音樂, FB Chatbot 服務。

UI介面: 參考 Spotify 網站

Group of 5.

My Github:  https://github.com/tonyhsu32/team4project                   

葆光系統 - POS 網站開發-Case (Project)

軟體開發:

JavaScript, Html5, CSS, Bootstrap, UI

資料: 

葆光系統 - POS 管理 Data

功能: 

POS 網站首頁動態介紹 (Self-Study期間完成)

My Github:  https://github.com/tonyhsu32/FitSoft-web


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Edx x Microsoft Certificate:


  1. Logic and Computational Thinking 

  2. Introduction to Python for Data Science

  3. Microsoft Professional Orientation Front-End Web Developer

  4. Essential Math for Machine Learning Python Edition

  5. Algorithms and Data Structures

  2018.8 ~ 2019.2

Coursera Certificate:


Deep Learning Specialization  

 Instructor:  Stanford's Andrew Ng

 5 courses: 

        - Neural Networks and Deep Learning 

        - Improving Deep Neural Networks Hyperparameter tuning, Regularization and Optimization 

        - Structuring Machine Learning Projects 

        - Convolutional Neural Networks 

        - Sequence Models

             

 2019.5 ~ 2019.11    Coursera link:   

      ( Self-study )

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Resume
Profile
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許哲偉  Tony Hsu

   Software Engineer,喜歡思考、學習各種新技術,擅於分析與結構化處理複雜問題,樂於鼓勵他人以及督促自我,能以積極樂觀的心面對一切事情。 

 自學過 Stanford 吳恩達教授的 Deep Learning 課程與作業以及 Kaggle和 Github 等網站上大量 Open Source 的知識。


Software Engineer
  新北市,TW, Tel: 0937848413
 [email protected]

Skills


程式語言-program                        機器學習-ML-1                              機器學習-ML-2

 Front-End, Template

  • JavaScript
  • Html5 
  • CSS 
  • JQuery 
  • Ajax
  • Bootstrap
 Back-End, Framework, Crawler                   
  • Python
  • C++
  • Django 
  • Fastapi
  • Flask

 Process Data Package & Skills
  • Numpy
  • Pandas
  • Matplotlib
  • EDA
 ML Package

  • Scikit-learn
  • Tensorflow
           TFRecords
           TF Data API (Pipeline)
           TF Hub
  • Keras

  




 Computer Vision Package
  • OpenCV
  • Dlib
  • Mediapipe
  • Darknet
 Training Hardware

  • GPU Tesla K8, T4 (Colab)
  • GPU P100-16GB (Kaggle)
  • TPUv3-8 128GB (Kaggle)


版本控制  - 資料庫  

  • Git / Github 
  • MySQL
  • MongoDB


系統與開發工具 

  • VSCode
  • Jupyter / Colab / Kaggle notebook
  • Raspberry Pi-3B
  • Linux - Ubuntu18.04
  • Docker
  • AWS EC2



經歷(Experience)

奕瑞科技有限公司, Software Engineer - 2022/03 ~ 2022/11

         1. 奕瑞科技的訓練資料網站:

         與 Frontend Engineer 合作開發公司內部系統,負責 Backend,以 Object Detection 需要的 Data 為主,使用 Yolo 系列算法所需的 Data labeling XML(PascalVOC) format,再將所需要的資料訊息轉成 json 儲存在 MongoDB database。用 Nosql 應對日後百萬至千萬的資料查詢。編寫資料搜尋引擎、XML 轉 json 工具、自動匯入 DB 工具、自動上傳下載工具優化,運用 Docker 部署在 Ubuntu上。


        2. Camera Integrity Check System (AI 影像辨識妥善率監控系統)」的「友達」維護案子:

        與 System Technical Supervisor, AI Engineer 負責處理公司自行研發的系統問題,了解網路架構、IP Camera 視訊串流( RTSP 協定),使用過 Clonezilla 硬碟分割備份技術,學習解決連接 483 台監控設備遇到的問題,等等。


        3. 運維「泛亞智慧工地」案子:

        了解 Face Recognition device 規格書,MQTT 通訊協定,實作過 Subscriber and Publisher 測試工具,等等。


        4. 影片訓練資料的收集與硬體 api 串接:
        協助處理「泛亞專案」影片訓練資料的收集,使用切影片 frame 程式、編寫 frame_to_time 程式,等等工具。 協助處理「華夏塑膠」專案的 IP Speaker api 串接。

        5.泰國超商」人流、物品偵測與追蹤專案:
        協助交接與練習,Detection 使用 Darknet Yolov4 Model 做訓練,Tracking 使用 FastMot 算法判斷。


Project 開發與自學 - 伯父指導 (Guide project development and Self-Study) - 2021/05 ~ 2021/12 

Project 開發
        1. 實作人臉偵測、識別 (Face Detection, Recognition):   
        偵測與辨識人臉系統,寫入 CSV 檔管理出勤人名中英文轉換 

        2. 種族分類器 (Race Classifier):   
        以 Kaggle UTKFace datasetEDA 種族辨識,存成 TFRecords 檔使用tf.data pipeline (載入資料, 預先處理, cache, map, shuffle, prefetch),建立模型 (VGG16, ResNet50, Xception, EfficientnetB5-7-L2, EfficientnetV2-m-l-xl),使用 Transfer Learningpre-trained model weights (ImageNet) or Self-Supervised learning weights (Noisy-student, ImageNet21K, ImageNet21K-ft1K)Kaggle TPU/GPU 訓練& Fine-tuningTest Top1 accuracy ≈ 85.x%。 

        3. 物件偵測 (Custom Multi-Object Detection - using YOLOv4):   
        使用 open images dataset v6 (Google Datasets) Custom 3 classes Datasets (train 90%, test 10%),以 yolov4-custom.cfg 架構 + Colab GPU 從頭訓練 2000 次,達到 mAP=91%
 
        其餘時間寫的: 
        Web Crawler:  1. Google Image  2. Unsplash 圖庫。 
        Dataset practice:  Fashion-Mnist:  best accuracy ≈ 94~95%,  Cifar10:  best accuracy ≈ 93~94%,  CNN training model:  VGG16,  ResNet34,  ResNet50,  Fine-tuning tool:  Keras-tuner . 

        Self-Study:  
        學習 ML Official API 文件、hands on ML 書籍、Open Source,看台大李弘毅 ML Youtube 教程,練習實作 Model Architecture 與運用一些 SOTA ModelSelf-Supervised Learning 技術。

Coursera Deep Learning Specialization (Self-Study) - 2019/05 ~ 2019/11 
Instructor:  Stanford's Andrew Ng 
學習課程:
        1. Neural Networks and Deep Learning 
        2. Improving Deep Neural Networks Hyperparameter tuning, Regularization and Optimization 
        3. Structuring Machine Learning Projects 
        4. Convolutional Neural Networks 
        5. Sequence Models

學歷(Education)

2018/08 ~ 2018/12

策會 - AI 人工智慧創新應用就業養成班


訓練課程

前端網頁設計、Django 後端開發、Python Data Analysis、網頁爬蟲、Machine Learning、Deep Learning、OpenCV、AWS Cloud、LineBot、Git/Github、RaspberryPi-3B、Linux(Ubuntu18.04)、MySQL

小組專題製作:

1. Fusic 音樂網站 (5人)   2. 咖啡廳 AI Service (6人)

Took extra courses: 

- Edx & Microsoft:  Logic and Computational Thinking  

- Edx & Microsoft:  Introduction to Python for Data Science  

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2011/09 ~ 2017/01

文化大學 - 資訊工程學系 (畢業)

學習經歷:  在大學修習時期有些課程不認真,以至於延宕畢業時間。迫使我更加珍惜努力學習,而找到編程 (programing) 之樂趣。放棄與克服之間我最終選擇後者,克服它。因此,透過不斷的練習,在資料結構 (Data Structure) 的正課上獲得84分,程式實作課總平均提高到90分。


- 參與社團: 系上系籃
- 暑期工讀: PX Mart (全聯)

- TOEIC成績: 460分 (2020/10)

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奕瑞科技 Projects


2022/03 ~ In progress

奕瑞科技的訓練資料網站 - (Internal System)

負責 Backend,以 Object Detection 需要的 Data 為主,使用 Yolo 系列算法所需的 Data labeling XML (PascalVOC) format,再將所需要的資料訊息轉成  json 儲存在 MongoDB database。用 Nosql 應對日後百萬至千萬的資料查詢。


編寫資料搜尋引擎、XML 轉 json工具、自動匯入 DB 工具、自動上傳下載工具優化,運用 Docker 部署在 Ubuntu 上。

2022/04 ~ In progress

Camera Integrity Check System (AI 影像辨識妥善率監控系統) - (Operation and Maintenance)

與 System Technical Supervisor, AI Engineer 處理運維系統問題,了解網路架構、IP Camera 視訊串流 ( RTSP 協定),使用過 Clonezilla 硬碟分割備份技術,學習解決連接 483 台監控設備遇到的問題,等等。

2022/09 ~ In progress

泛亞智慧工地 - (Operation and Maintenance)

與 System Technical Supervisor, AI Engineer 運維「泛亞智慧工地」案子,了解 Face Recognition device 規格書,MQTT 通訊協定,實作過 Subscriber and Publisher 測試工具,等等。 


協助處理「泛亞專案」影片訓練資料的收集,使用切影片 frame 程式、編寫 frame_to_time 程式,等等工具。


協助處理「華夏塑膠」專案的 IP Speaker api 串接。

2022/03 ~ 2022/04

「泰國超商」人流、物品偵測與追蹤專案

協助交接與練習,Detection 使用 Darknet Yolov4 Model 做訓練,Tracking 使用 FastMot 算法判斷。

AI Projects


2021/05 ~ 2020/12 

Custom YOLOv4 (Multi-Object Detection Project)

軟體實作:

使用 Open Images Dataset V6 (Google Datasets) 做Custom 3 classes Datasets (train: 三個類別各 1500 張 img + annotaions, test: 三個類別各 300 張img + annotaions),以 darknet yolov4-custom.cfg 架構 + Colab GPU training 1800 iterations,達到mAP=91%。

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工具: 

Python, OpenCV, Darknet, 

Macbook Pro Camera, VSCode, 

Colab (GPU) 

 

參考資料 & Open Source: 

ScaledYOLOv4 (Github) 

https://github.com/WongKinYiu/ScaledYOLOv4 

YOLOv4: Optimal Speed and Accuracy of Object Detection 


My Github:   

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2021/05 ~ 2020/12

種族分類器 (Race Classifier Project) 


軟體開發

Data:

Kaggle UTKFace (Open Data) 

Data Preprocess:

Python, Numpy, Pandas, Matplotlib, EDA

Build Model: 

Tensorflow, Keras 

CNN Architecture: 

VGG16, ResNet50, Xception, EfficientnetB4-5-7-L2 (SOTA), EfficientnetV2-m-l-xl (SOTA)


Skills used

1. Data-cleaning (Sklearn IsolationForest) -> not good

2. Data-Augmentation 

3. Transfer learning 

4. Learning Rate Scheduler

5. Tensorboard 

6. ImageNet pre-trained model 

7. Self-Supervised-Learning pre-trained model (Noisy Student, ImageNet21k or 21K-ft1k) 

8. Fine-tuning

9. TFRecords (protobuffer)

10. TF Data API (shuffle -> map -> batch -> prefetch)


Hardware

1. NV GPU K8, T4 (Colab) 

2. NV GPU P100-16GB (Kaggle) 

3. TPUv3-8 128GB (Kaggle)

  • TPU Skills - Convert tf.float32  to tf.bfloat16

Problem Solved: 

Training model

  • GPU Out of Memory
  • TPUv3 (Exceeded hbm capacity) 
  • Cloud VM problem

Project process: 

分析&預處理:

使用 Kaggle UTKFace 約 23708 張 Face dataset -> 做 EDA 分析 (ex: sex, age, race) -> Data cleaning -> 將資料用Sklearn train_test_split 方法切割成 train: 80%, valid: 10%, test: 10% -> 將分好的資料寫成二進位格式轉成TFRecords 檔 (能夠在訓練時快速讀取大量資料) -> 讀取大量圖片檔案並轉成 numpy 格式,遇到 I/O 問題,使用 multiprocessing 跟容器減少讀取時間跟記憶體消耗 -> 解析 TFRecords 檔使用 tf.data pipeline (載入資料, 預先處理, cache, map, shuffle, prefetch) 

建模&訓練:

建立模型 (ex: VGG16, ResNet50, Xception, EfficientnetB5-7-L2, EfficientnetV2-m-l-xl) -> 使用 Transfer Learning 加 pre-trained model weights (ex: ImageNet) or Self-Supervised learning weights (ex: Noisy-student, ImageNet21K, ImageNet21K-ft1K) -> Fine-tuning -> 使用 Kaggle TPU/GPU 訓練 -> Evaluate Accuracy -> Plot predict curves -> Confusion Matrix -> Visualize prediction images -> F1 score 

Test Top1 Accuracy: ≈ 85.x%                                                                                                                   My Github:  

2021/05 ~ 2020/12 

Face Detection and Recognition (Face Attendance Project)  


軟體實作:

Python, OpenCV, Pillow, Dlib, MediapipeFace_recognition


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功能:

1. 偵測與辨識人臉系統,寫入CSV檔管理出勤 2. 人名中英文轉換

實作工具:

Macbook Pro Camera, VSCode








My Github:  

2018/8 ~ 2018/12

Automatic-Cafe (Group Project) 

Web 開發:

JavaScript, Html5, CSS, Bootstrap,

Nginx

軟體開發:

Tensorflow, Jupyter notebook, 

OpenCV, Tesseract OCR, Linux(Ubuntu18.04), Linebot

硬體 & 開源工具:

RaspberryPi-3B, Nvidia GPU 2080, LabelImg, Donkey Car & Ducky Car Framework

功能:

1. Web 顧客選位  

2. LineBot 語音點餐、拉花遊戲、滿意度調查服務  

3. 以 Donkey Car 架構為基礎訓練的送餐車

4. 用 LineBot 呈現以 RNN 做的詩詞

5. CNN 老鼠辨識器,用以解決倉儲中環境衛生問題。

6. 我的功能以下面的 Text Recognition 專題介紹。

Group of 6.

Paragraph image 02 00@2x

Text Recognition (My Project)

軟體實作:

Python, OpenCV, Tesseract OCR,

EAST pre-trained model and Ubuntu18.04.

功能:

Text Recognition 用在辨識顧客的牌子文字

參考資料 & Open Source: 

1. EAST: An Efficient and Accurate Scene Text Detector (Github)

2. PyImageSearch

My Github:    

https://github.com/tonyhsu32/AI-Cafe-with-machine-learning

My Demo:  https://www.youtube.com/channel/UC8Rz5NB_A_FCEAXJjIC8xqw


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Web Crawler


Paragraph image 05 00@2x
Paragraph image 05 01@2x

2021/05 ~ 2020/12 

圖片爬蟲程式(Web Crawler)

1. Google Image Crawler

軟體實作:

Python, Selenium, urllib

2. Unsplash 圖庫 Crawler

軟體實作:

Python, Selenium, urllib, BeautifulSoup

功能: 自動化圖片抓取

My Github:  

Web Projects


Paragraph image 03 00@2x

2018/8 ~ 2018/12

Music Web (Group Project)

前端開發:

JavaScript, Html5, CSS, Bootstrap

後端開發:

Python, Django, MySQL

功能:

CRUD 服務, 註冊會員, 留言板, 聊天功能 (我), 自動匹配喜好 Youtube 音樂, FB Chatbot 服務。

UI介面: 參考 Spotify 網站

Group of 5.

My Github:  https://github.com/tonyhsu32/team4project                   

葆光系統 - POS 網站開發-Case (Project)

軟體開發:

JavaScript, Html5, CSS, Bootstrap, UI

資料: 

葆光系統 - POS 管理 Data

功能: 

POS 網站首頁動態介紹 (Self-Study期間完成)

My Github:  https://github.com/tonyhsu32/FitSoft-web


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Edx x Microsoft Certificate:


  1. Logic and Computational Thinking 

  2. Introduction to Python for Data Science

  3. Microsoft Professional Orientation Front-End Web Developer

  4. Essential Math for Machine Learning Python Edition

  5. Algorithms and Data Structures

  2018.8 ~ 2019.2

Coursera Certificate:


Deep Learning Specialization  

 Instructor:  Stanford's Andrew Ng

 5 courses: 

        - Neural Networks and Deep Learning 

        - Improving Deep Neural Networks Hyperparameter tuning, Regularization and Optimization 

        - Structuring Machine Learning Projects 

        - Convolutional Neural Networks 

        - Sequence Models

             

 2019.5 ~ 2019.11    Coursera link:   

      ( Self-study )

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