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Senior iOS developer @OpenNet 開網有限公司
2020 ~ 2024
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Swift
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國立臺北大學 National Taipei University
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Sales & Marketing Manager @聖和汽車股份有限公司 Sheng-Ho Automobiles
2018 ~ Present
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解設備得以進入。 支援核一、核三廠案件危機處理有成 因應近年各國際事件的逐步堆疊,個人相信能源產業有其未來趨勢,其在再生能源、前端發電與後端能源儲存上,相當看好。 商業開發經理(柬埔寨)Business Development Manager @ Cambodia KingCom Philippines • 2015 KingCom International,銷售3C產品 + 自有
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Loughborough University
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平面設計 @全國麗園大飯店
2022 ~ 2023
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楊蕙靜 平面設計 Changhua County, Taiwan 我叫楊蕙靜,擁有嶺東科技大學創意產品設計系的學士學位。我在設計領域具有豐富的經驗,其擅長於日式風格,同時積極挑戰歐美俐落、時尚的風格。曾在全國麗園大飯店和秀傳醫療體系擔任平面設計師,這些工作經
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嶺東科技大學 Ling Tung University
創意產品設計
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Mobile Software Engineer @第一網站股份有限公司
2015 ~ Present
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PHP
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國立高雄大學
資訊管理學系
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系統分析師 @全家股份有限公司
2023 ~ Present
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蕭名翊 10年以上零售經驗,於超商、百貨、電影院、餐飲、書店等連鎖體系任職系統分析師,專精於超商POS與其相關服務商流,具備導入以及更換完整系統,以及線上線下平台資料流規劃經驗。 新北市, 臺灣 E-mail:[email protected] 工作經歷 系統分析師 • 全家
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淡江大學
資訊管理學系
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品牌視覺設計 @緹威國際有限公司
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免後續問題造成時間或成本損失。 直接了當,不喜歡迂迴他人。 明白溝通是一門學問,不論任何關係中都是很重要的一部分,其面對一天當中需要相處將近10小時的夥伴更會慎重地看待溝通的方式。 並非設計系出身,單純熱愛創作時的自己,以
Illustrator
Photoshop
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4-6 years
天主教輔仁大學 FU JEN CATHOLIC UNIVERSITY
大眾傳播系
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Senior Test programmer @Robert Bosch GmbH
2022 ~ 2023
測試或資安專責人員
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Stephen Hsu 我在ISO27001、IEC62443、ETSI EN、NIST、CSF 2.0 和GDPR標準方面有深入的知識。我在資訊安全解決方案的架構設計、細部設計、開發、縱深防禦和實施方面有豐富的經驗,其擅長於組織內部查核、制度導入,以及產品專案生命周期中的規劃、實施和問題解決。此外,我
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Concordia University
Master of Business Administration (M.B.A.)
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Data Science Competition Participant @Self-Employed
2020 ~ Present
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傅群| [email protected] https://www.linkedin.com/in/chun-fu/ https://www.kaggle.com/patrick0302 我是一名擁有豐富機器學習和數據分析經驗的專業人士,包含了學術界的博士學歷及豐富的業界經驗,其在能源和建築領域有著全面的專案經驗。以下是我職業生
Microsoft Office
python
machine learning
Studying
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4-6 years
National University of Singapore
Department of building
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2D Artist @MixCode Studio
2019 ~ 2022
插畫家/設計師/文創相關/創意美術老師
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Photoshop
Google Drive
PowerPoint
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6-10 years
Yuan-Ze University
資訊傳播學系
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專案企劃 @夢想動畫 Moonshine VFX animation
2022 ~ 2023
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新媒體領域,提供專業一條龍的服務與諮詢,從策劃美術、程式製作、現場施工等軟硬體建議與執行,都能提供相對應的服務。其是程式工程師團隊,除了單一互動外,也擅長做資料庫達成多互動串接,多人即時遊玩的大型程式。VR、AR、手機APP、網頁互
premiere
SolidWorks
AutoCad 2D
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國立台灣藝術大學
廣播電視學系

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建築/能源/IoT 資料科學家
Self-Employed
2020 ~ Present
台灣台北市
Professional Background
Current status
Studying
Job Search Progress
Ready to interview
Professions
Big Data Engineer, Data Analyst, Data Scientist
Fields of Employment
Artificial Intelligence / Machine Learning, Internet of Things (IoT), Energy
Work experience
4-6 years
Management
I've had experience in managing 1-5 people
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Microsoft Office
python
machine learning
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Data science
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English
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資料科學家
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Yes, I freelance in my spare time
Educations
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National University of Singapore
Major
Department of building
Print

傅群

0913889502 | [email protected]
https://www.linkedin.com/in/chun-fu/
https://www.kaggle.com/patrick0302

我是一名擁有豐富機器學習和數據分析經驗的專業人士,包含了學術界的博士學歷及豐富的業界經驗,尤其在能源和建築領域有著全面的專案經驗。以下是我職業生涯的亮點和重要成就:
- 在能源和建築領域有全面的機器學習專案經驗,包括預測、異常檢測、填補缺失數據和生成模型等方面
- 在建築和能源領域擁有超過三年的業界工作經驗,包括建築運營和節能策略,參與過數個建築大數據的專案
- 在數據競賽方面擁有豐富經驗,包括在Kaggle程式碼的Master級別,並在太陽能板生產、智慧農業數位分身和西門子永續黑客松等競賽中獲勝
- 多次應邀發表講座和演講,分享能源建模和數據分析方面的知識,包括在台灣電力公司、學術會議以及Python社群
- 在數據競賽、業界工作和學術研究的不同職位中,展示出強大的團隊合作和領導能力

工作經歷


Data Science Competition Expert

一月 2020 - Present  |  Taipei, Taiwan

- 2024 Kaggle獎金競賽:Enefit -預測prosumers能源行為, 銀牌, 71th/2731 on public leaderboard (團隊成員)
- 2023西門子永續技術黑客松:”Swarm Behaviour on the Grid”, 第一名 (團隊成員,獲得5,000歐元)
- 2022 台灣AIGO:透過身體組成與健身數據AI智能健身訓練課程推薦系統, 優勝隊伍 (團隊隊長, 獲得10,000美元)
- 2022年Kaggle社區競賽:大規模能源異常檢測, 第一名(獨立參賽)
- 2021智慧農業數位分身創新應用競賽,第三名 (團隊成員, 獲得1,500美元)
- 2020 Aidea:中科智慧製造-光電製程品質預測, 第一名 (獨立參賽, 獲得1,500美元)
- Kaggle平台的程式碼(notebooks)Master (180th/55809)

資料科學家  •  探識空間科技有限公司

八月 2016 - 一月 2020  |  Taipei, Taiwan

與台積電合作研發: 應用人工智慧於建築設備群的運轉異常偵測及診斷服務
- 實踐能夠大量導入和訓練的建模流程, 應用於超過千台設備、萬點以上的IoT點位
- 應用機器學習技術及早發覺異常徵兆, 提前告知維護人員設備異常及診斷預測
- 獲得內政部建研所2019年、第12屆巢向未來銀獎獎項(總排名第二名)

分析市政府的BA大數據, 並協助BIM-FM系統的建置
- 建置可視化的能源預測及最佳化服務(結合氣象預報)
- 從營運大數據中, 提出數種策略: 冰機預測性控制, 預冷策略, 負荷移轉
- 帶領工讀生完成1000+個空調設備的電子及系統化

建置智慧建築管理系統 (內政部建研所的Living 3.0智慧化展示空間)
- 整合500+的I/O點位, 包含既有系統及新增感測器 (BACnet/Modbus)
- 向參觀民眾展示智慧節能及最佳化控制 (每年約10,000+遊客), 視覺化呈現建築營運

學歷


National University of Singapore

Department of building  •  2020 - 2024

- 專攻建築能源和營運的機器學習技術。研究全面涵蓋了應用ML/DL的預測、異常檢測、缺失數據填補和數據生成
- Technical team in Kaggle competition: <ASHRAE - Great Energy Predictor III>近20年最大的建築能源數據競賽, 數據集涵蓋全球1500棟建築、收集期間長達三年, 協助分析比賽隊伍的機器學習模型及預測表現, 並比較不同的預測模型建構策略
- 博士論文<Automated Pipelines for Enhanced Energy Data Quality: Anomaly Detection, Data Imputation, and Generative Modeling>, 提出了一套結合異常偵測、缺失預測和數據條件生成的自動化流程, 規模化的將能源大數據進行清理和前處理。
- 2023台灣電力公司邀請演講: 數據與電業之旅系列講座 – 以數據探索能源與評估風險,
- 2022 PyCon APAC (python社群年會)公開演講: 從開放數據閱讀台灣能源 - 數據探索、模型預測和風險評估
- 2022 BuildSys2022 Workshop: "1st ACM BuildSys 2022 Tutorial on Electricity Demand Forecasting"

National Taiwan University

Sustainable Environment and Green Architecture  •  2013 - 2015

綠建築標章制度下之節能成效調查與驗證研究

-執行國內首次對EEWH綠建築標章實質效益的全面檢核, 欲了解國內的綠建築制度對於建築耗能是否有顯著的成效
-進行數棟具綠建築標章辦公大樓的EnergyPlus能源性能模擬

National Taiwan University

Bioenvironmental System Engineering  •  2009 - 2013

- NTU Presidential Award (2013)
- Class Representative

學術發表


- Fu, C., Quintana, M., Nagy, Z., & Miller, C. (2024). Filling time-series gaps using image techniques: Multidimensional context autoencoder approach for building energy data imputation. Applied Thermal Engineering, 236, 121545.

- Canaydin, A., Fu, C., Balint, A., Khalil, M., Miller, C., & Kazmi, H. (2024). Interpretable domain-informed and domain-agnostic features for supervised and unsupervised learning on building energy demand data. Applied Energy, 360, 122741.

- Fu, C., Kazmi, H., Quintana, M., & Miller, C. (2023, November). Enhancing Classification of Energy Meters with Limited Labels using a Semi-Supervised Generative Model. In Proceedings of the 10th ACM International Conference on Systems for Energy-Efficient Buildings, Cities, and Transportation (pp. 450-453).

- H. Kazmi, Fu, C., C. Miller, “Ten questions concerning data-driven modelling and forecasting of operational energy demand at building and urban scale,” Building and Environment, vol. 239, pp. 110407, 2023.

- Fu, C., Arjunan, P., & Miller, C. (2022, November). Trimming outliers using trees: winning solution of the large-scale energy anomaly detection (LEAD) competition. In Proceedings of the 9th ACM International Conference on Systems for Energy-Efficient Buildings, Cities, and Transportation (pp. 456-461).

- Miller, C., Picchetti, B., Fu, C., & Pantelic, J. (2022). Limitations of machine learning for building energy prediction: ASHRAE Great Energy Predictor III Kaggle competition error analysis. Science and Technology for the Built Environment, 1-18.

- Fu, C., & Miller, C. (2022). Using Google Trends as a proxy for occupant behavior to predict building energy consumption. Applied Energy, 310, 118343.

- Miller, C., Hao, L., Fu, C. (2022). Gradient boosting machines and careful pre-processing work best: ASHRAE Great Energy Predictor III lessons learned. arXiv preprint arXiv:2202.02898.

- Miller, C., Arjunan, P., Kathirgamanathan, A., Fu, C., Roth, J., Park, J. Y., ... & Haberl, J. (2020). The ASHRAE great energy predictor III competition: Overview and results. Science and Technology for the Built Environment, 26(10), 1427-1447.

語言


  • English — 專業
  • Chinese — 母語或雙語
Resume
Profile

傅群

0913889502 | [email protected]
https://www.linkedin.com/in/chun-fu/
https://www.kaggle.com/patrick0302

我是一名擁有豐富機器學習和數據分析經驗的專業人士,包含了學術界的博士學歷及豐富的業界經驗,尤其在能源和建築領域有著全面的專案經驗。以下是我職業生涯的亮點和重要成就:
- 在能源和建築領域有全面的機器學習專案經驗,包括預測、異常檢測、填補缺失數據和生成模型等方面
- 在建築和能源領域擁有超過三年的業界工作經驗,包括建築運營和節能策略,參與過數個建築大數據的專案
- 在數據競賽方面擁有豐富經驗,包括在Kaggle程式碼的Master級別,並在太陽能板生產、智慧農業數位分身和西門子永續黑客松等競賽中獲勝
- 多次應邀發表講座和演講,分享能源建模和數據分析方面的知識,包括在台灣電力公司、學術會議以及Python社群
- 在數據競賽、業界工作和學術研究的不同職位中,展示出強大的團隊合作和領導能力

工作經歷


Data Science Competition Expert

一月 2020 - Present  |  Taipei, Taiwan

- 2024 Kaggle獎金競賽:Enefit -預測prosumers能源行為, 銀牌, 71th/2731 on public leaderboard (團隊成員)
- 2023西門子永續技術黑客松:”Swarm Behaviour on the Grid”, 第一名 (團隊成員,獲得5,000歐元)
- 2022 台灣AIGO:透過身體組成與健身數據AI智能健身訓練課程推薦系統, 優勝隊伍 (團隊隊長, 獲得10,000美元)
- 2022年Kaggle社區競賽:大規模能源異常檢測, 第一名(獨立參賽)
- 2021智慧農業數位分身創新應用競賽,第三名 (團隊成員, 獲得1,500美元)
- 2020 Aidea:中科智慧製造-光電製程品質預測, 第一名 (獨立參賽, 獲得1,500美元)
- Kaggle平台的程式碼(notebooks)Master (180th/55809)

資料科學家  •  探識空間科技有限公司

八月 2016 - 一月 2020  |  Taipei, Taiwan

與台積電合作研發: 應用人工智慧於建築設備群的運轉異常偵測及診斷服務
- 實踐能夠大量導入和訓練的建模流程, 應用於超過千台設備、萬點以上的IoT點位
- 應用機器學習技術及早發覺異常徵兆, 提前告知維護人員設備異常及診斷預測
- 獲得內政部建研所2019年、第12屆巢向未來銀獎獎項(總排名第二名)

分析市政府的BA大數據, 並協助BIM-FM系統的建置
- 建置可視化的能源預測及最佳化服務(結合氣象預報)
- 從營運大數據中, 提出數種策略: 冰機預測性控制, 預冷策略, 負荷移轉
- 帶領工讀生完成1000+個空調設備的電子及系統化

建置智慧建築管理系統 (內政部建研所的Living 3.0智慧化展示空間)
- 整合500+的I/O點位, 包含既有系統及新增感測器 (BACnet/Modbus)
- 向參觀民眾展示智慧節能及最佳化控制 (每年約10,000+遊客), 視覺化呈現建築營運

學歷


National University of Singapore

Department of building  •  2020 - 2024

- 專攻建築能源和營運的機器學習技術。研究全面涵蓋了應用ML/DL的預測、異常檢測、缺失數據填補和數據生成
- Technical team in Kaggle competition: <ASHRAE - Great Energy Predictor III>近20年最大的建築能源數據競賽, 數據集涵蓋全球1500棟建築、收集期間長達三年, 協助分析比賽隊伍的機器學習模型及預測表現, 並比較不同的預測模型建構策略
- 博士論文<Automated Pipelines for Enhanced Energy Data Quality: Anomaly Detection, Data Imputation, and Generative Modeling>, 提出了一套結合異常偵測、缺失預測和數據條件生成的自動化流程, 規模化的將能源大數據進行清理和前處理。
- 2023台灣電力公司邀請演講: 數據與電業之旅系列講座 – 以數據探索能源與評估風險,
- 2022 PyCon APAC (python社群年會)公開演講: 從開放數據閱讀台灣能源 - 數據探索、模型預測和風險評估
- 2022 BuildSys2022 Workshop: "1st ACM BuildSys 2022 Tutorial on Electricity Demand Forecasting"

National Taiwan University

Sustainable Environment and Green Architecture  •  2013 - 2015

綠建築標章制度下之節能成效調查與驗證研究

-執行國內首次對EEWH綠建築標章實質效益的全面檢核, 欲了解國內的綠建築制度對於建築耗能是否有顯著的成效
-進行數棟具綠建築標章辦公大樓的EnergyPlus能源性能模擬

National Taiwan University

Bioenvironmental System Engineering  •  2009 - 2013

- NTU Presidential Award (2013)
- Class Representative

學術發表


- Fu, C., Quintana, M., Nagy, Z., & Miller, C. (2024). Filling time-series gaps using image techniques: Multidimensional context autoencoder approach for building energy data imputation. Applied Thermal Engineering, 236, 121545.

- Canaydin, A., Fu, C., Balint, A., Khalil, M., Miller, C., & Kazmi, H. (2024). Interpretable domain-informed and domain-agnostic features for supervised and unsupervised learning on building energy demand data. Applied Energy, 360, 122741.

- Fu, C., Kazmi, H., Quintana, M., & Miller, C. (2023, November). Enhancing Classification of Energy Meters with Limited Labels using a Semi-Supervised Generative Model. In Proceedings of the 10th ACM International Conference on Systems for Energy-Efficient Buildings, Cities, and Transportation (pp. 450-453).

- H. Kazmi, Fu, C., C. Miller, “Ten questions concerning data-driven modelling and forecasting of operational energy demand at building and urban scale,” Building and Environment, vol. 239, pp. 110407, 2023.

- Fu, C., Arjunan, P., & Miller, C. (2022, November). Trimming outliers using trees: winning solution of the large-scale energy anomaly detection (LEAD) competition. In Proceedings of the 9th ACM International Conference on Systems for Energy-Efficient Buildings, Cities, and Transportation (pp. 456-461).

- Miller, C., Picchetti, B., Fu, C., & Pantelic, J. (2022). Limitations of machine learning for building energy prediction: ASHRAE Great Energy Predictor III Kaggle competition error analysis. Science and Technology for the Built Environment, 1-18.

- Fu, C., & Miller, C. (2022). Using Google Trends as a proxy for occupant behavior to predict building energy consumption. Applied Energy, 310, 118343.

- Miller, C., Hao, L., Fu, C. (2022). Gradient boosting machines and careful pre-processing work best: ASHRAE Great Energy Predictor III lessons learned. arXiv preprint arXiv:2202.02898.

- Miller, C., Arjunan, P., Kathirgamanathan, A., Fu, C., Roth, J., Park, J. Y., ... & Haberl, J. (2020). The ASHRAE great energy predictor III competition: Overview and results. Science and Technology for the Built Environment, 26(10), 1427-1447.

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