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| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 陳炳宇(Bing-Yu Chen) | |
| dc.contributor.author | Han-Chih Kuo | en |
| dc.contributor.author | 郭瀚智 | zh_TW |
| dc.date.accessioned | 2021-06-08T02:00:39Z | - |
| dc.date.copyright | 2016-08-02 | |
| dc.date.issued | 2016 | |
| dc.date.submitted | 2016-06-15 | |
| dc.identifier.citation | [1] Hiroshi Ishii and Brygg Ullmer. Tangible Bits: Towards seamless interfaces between people, bits and atoms. In Proceedings of the ACM SIGCHI Conference on Human Factors in Computing Systems, CHI ’97, pages 234–241, New York, NY, USA, 1997. ACM.
[2] Neng-HaoYu,Li-WeiChan,SengYongLau,Sung-ShengTsai,I-ChunHsiao,Dian- Je Tsai, Fang-I Hsiao, Lung-Pan Cheng, Mike Chen, Polly Huang, and Yi-Ping Hung. TUIC: Enabling tangible interaction on capacitive multi-touch displays. In Proceed- ings of the SIGCHI Conference on Human Factors in Computing Systems, CHI ’11, pages 2995–3004, New York, NY, USA, 2011. ACM. [3] Daniel Avrahami, Jacob O. Wobbrock, and Shahram Izadi. Portico: Tangible inter- action on and around a tablet. In Proceedings of the 24th Annual ACM Symposium on User Interface Software and Technology, UIST ’11, pages 347–356, New York, NY, USA, 2011. ACM. [4] Rong-HaoLiang,Kai-YinCheng,Chao-HuaiSu,Chien-TingWeng,Bing-YuChen, and De-Nian Yang. GaussSense: Attachable stylus sensing using magnetic sensor grid. In Proceedings of the 25th Annual ACM Symposium on User Interface Software and Technology, UIST ’12, pages 319–326, New York, NY, USA, 2012. ACM. [5] Brygg Ullmer, Hiroshi Ishii, and Robert J. K. Jacob. Token+Constraint systems for tangible interaction with digital information. ACM Trans. Comput.-Hum. Interact., 12(1):81–118, March 2005. [6] Eva Hornecker and Thomas Psik. Using artoolkit markers to build tangible pro- totypes and simulate other technologies. In Proceedings of the 2005 IFIP TC13 International Conference on Human-Computer Interaction, INTERACT’05, pages 30–42, Berlin, Heidelberg, 2005. Springer-Verlag. [7] Martin Kaltenbrunner and Ross Bencina. reacTIVision: A computer-vision frame- work for table-based tangible interaction. In Proceedings of the 1st International Conference on Tangible and Embedded Interaction, TEI ’07, pages 69–74, New York, NY, USA, 2007. ACM. [8] Rong-Hao Liang, Han-Chih Kuo, Liwei Chan, De-Nian Yang, and Bing-Yu Chen. GaussStones: Shielded magnetic tangibles for multi-token interactions on portable displays. In Proceedings of the 27th Annual ACM Symposium on User Interface Software and Technology, UIST ’14, pages 365–372, New York, NY, USA, 2014. ACM. [9] Paul Dietz and Darren Leigh. DiamondTouch: A multi-user touch technology. In Proceedings of the 14th Annual ACM Symposium on User Interface Software and Technology, UIST ’01, pages 219–226, New York, NY, USA, 2001. ACM. [10] Jun Rekimoto. SmartSkin: An infrastructure for freehand manipulation on inter- active surfaces. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, CHI ’02, pages 113–120, New York, NY, USA, 2002. ACM. [11] Simon Voelker, Kosuke Nakajima, Christian Thoresen, Yuichi Itoh, Kjell Ivar Overgard, and Jan Borchers. PUCs: Detecting transparent, passive untouched ca- pacitive widgets on unmodified multi-touch displays. In Proceedings of the Adjunct Publication of the 26th Annual ACM Symposium on User Interface Software and Technology, UIST ’13 Adjunct, pages 1–2, New York, NY, USA, 2013. ACM. [12] Rong-HaoLiang,Kai-YinCheng,LiweiChan,Chuan-XhyuanPeng,MikeY.Chen, Rung-Huei Liang, De-Nian Yang, and Bing-Yu Chen. GaussBits: Magnetic tangi- ble bits for portable and occlusion-free near-surface interactions. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, CHI ’13, pages 1391–1400, New York, NY, USA, 2013. ACM. [13] Rong-Hao Liang, Liwei Chan, Hung-Yu Tseng, Han-Chih Kuo, Da-Yuan Huang, De-Nian Yang, and Bing-Yu Chen. GaussBricks: Magnetic building blocks for con- structive tangible interactions on portable displays. In Proceedings of the 32Nd An- nual ACM Conference on Human Factors in Computing Systems, CHI ’14, pages 3153–3162, New York, NY, USA, 2014. ACM. [14] Alec Jacobson, Daniele Panozzo, Oliver Glauser, Cedric Pradalier, Otmar Hilliges, and Olga Sorkine-Hornung. Tangible and modular input device for character artic- ulation. ACM Transactions on Graphics (proceedings of ACM SIGGRAPH), 33(4): 82:1–82:12, 2014. [15] Andrea Bianchi and Ian Oakley. Designing tangible magnetic appcessories. In Pro- ceedings of the 7th International Conference on Tangible, Embedded and Embodied Interaction, TEI ’13, pages 255–258, New York, NY, USA, 2013. ACM. [16] Sungjae Hwang, Myungwook Ahn, and Kwang-yun Wohn. MagGetz: Customiz- able passive tangible controllers on and around conventional mobile devices. In Proceedings of the 26th Annual ACM Symposium on User Interface Software and Technology, UIST ’13, pages 411–416, New York, NY, USA, 2013. ACM. [17] Yvonne Jansen, Pierre Dragicevic, and Jean-Daniel Fekete. Tangible remote con- trollers for wall-size displays. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, CHI ’12, pages 2865–2874, New York, NY, USA, 2012. ACM. [18] Dominik Schmidt, Raf Ramakers, Esben W. Pedersen, Johannes Jasper, Sven Koh- ler, Aileen Pohl, Hannes Rantzsch, Andreas Rau, Patrick Schmidt, Christoph Sterz, Yanina Yurchenko, and Patrick Baudisch. Kickables: Tangibles for feet. In Proceed- ings of the 32Nd Annual ACM Conference on Human Factors in Computing Systems, CHI ’14, pages 3143–3152, New York, NY, USA, 2014. ACM. [19] Sean Follmer, Daniel Leithinger, Alex Olwal, Akimitsu Hogge, and Hiroshi Ishii. inFORM: Dynamic physical affordances and constraints through shape and object actuation. In Proceedings of the 26th Annual ACM Symposium on User Interface Software and Technology, UIST ’13, pages 417–426, New York, NY, USA, 2013. ACM. [20] Jinha Lee, Rehmi Post, and Hiroshi Ishii. ZeroN: Mid-air tangible interaction en- abled by computer controlled magnetic levitation. In Proceedings of the 24th Annual ACM Symposium on User Interface Software and Technology, UIST ’11, pages 327– 336, New York, NY, USA, 2011. ACM. [21] Lars Erik Holmquist, Johan Redstrom, and Peter Ljungstrand. Token-based acces to digital information. In Proceedings of the 1st International Symposium on Hand- held and Ubiquitous Computing, HUC ’99, pages 234–245, London, UK, UK, 1999. Springer-Verlag. [22] Einar Sneve Martinussen and Timo Arnall. Designing with RFID. In Proceedings of the 3rd International Conference on Tangible and Embedded Interaction, TEI ’09, pages 343–350, New York, NY, USA, 2009. ACM. [23] Maribeth Back, Jonathan Cohen, Rich Gold, Steve Harrison, and Scott Minneman. Listen Reader: An electronically augmented paper-based book. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, CHI ’01, pages 23–29, New York, NY, USA, 2001. ACM. [24] A.P. Sample, D.J. Yeager, and J.R. Smith. A capacitive touch interface for passive RFID tags. In RFID, 2009 IEEE International Conference on, pages 103–109, April 2009. [25] KennethP. Fishkin, Bing Jiang, Matthai Philipose, and Sumit Roy. I sense a dis- turbance in the force: Unobtrusive detection of interactions with RFID-tagged ob- jects. In Nigel Davies, ElizabethD. Mynatt, and Itiro Siio, editors, UbiComp 2004:Ubiquitous Computing, volume 3205 of Lecture Notes in Computer Science, pages 268–282. Springer Berlin Heidelberg, 2004. [26] Timothy M. Simon, Bruce H. Thomas, Ross T. Smith, and Mark Smith. Adding input controls and sensors to RFID tags to support dynamic tangible user interfaces. In Proceedings of the 8th International Conference on Tangible, Embedded and Em- bodied Interaction, TEI ’14, pages 165–172, New York, NY, USA, 2013. ACM. [27] Nicolai Marquardt, Alex S. Taylor, Nicolas Villar, and Saul Greenberg. Rethinking RFID: Awareness and control for interaction with RFID systems. In Proceedings of the SIGCHI Conference on Human Factors in Computing Systems, CHI ’10, pages 2307–2316, New York, NY, USA, 2010. ACM. [28] Daniel Avrahami and Scott E. Hudson. Forming Interactivity: A tool for rapid pro- totyping of physical interactive products. In Proceedings of the 4th Conference on Designing Interactive Systems: Processes, Practices, Methods, and Techniques, DIS ’02, pages 141–146, New York, NY, USA, 2002. ACM. [29] Hanchuan Li, Can Ye, and Alanson P. Sample. IDSense: A human object interaction detection system based on passive UHF RFID. In Proceedings of the 33rd Annual ACM Conference on Human Factors in Computing Systems, CHI ’15, pages 2555– 2564, New York, NY, USA, 2015. ACM. [30] Kenneth P. Fishkin. A taxonomy for and analysis of tangible interfaces. Personal Ubiquitous Comput., 8(5):347–358, September 2004. | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/19470 | - |
| dc.description.abstract | 在這篇論文中,我們提出兩種實體使用者介面與可攜式物理界限互動。第一個系統是 GaussMarbles 球形實體介面,不同於過去研究中磁性物件的設計,我們所提出以具磁性的正多面體結構設計來支援球體的三維互動操作。當球在滾動時,這樣設計下磁場形狀提供穩定的特性讓類比式霍爾感測網格得以即時追蹤球形物體在近平面的三維空間位置。我們同時提出開發流程來讓使用者簡單地製造組裝磁性球體。我們以三種層次的實體化方式展示多種 GaussMarbles 與可攜式物理界線的互動應用。
為了達到物體多種身分的辨識與保留高自由度的操作,我們提出第二個系統是 GaussRFID,結合磁鐵與 RFID 標籤所設計的實體互動開發工具。這樣的系統由兩個元件組成:一是 GaussTag,一個具有磁性的 RFID 標籤,二是 GaussStage,一個實體使用者介面設計平台結合了類比式霍爾感測網格與 RFID 讀取器,GaussStage 可以偵測裝置周圍 GaussTag 的 ID、三維位置與部分三維旋轉角度資訊,並提供簡單的方式讓使用者可以結合不同類型的物理界限,與具延伸性的輸出功能。我們所提出的兩個系統探討了實體物體與物理界限的組合在可攜式平台下的互動設計,並為設計師、研究者提出完整的開發工具可以更容易去創造豐富的實體介面互動應用。 | zh_TW |
| dc.description.abstract | This thesis presents two tangible user interfaces for interacting with portable physical constraints. The first system, GaussMarbles, a system of spherical magnetic tangibles. Unlike previous design of magnetic tangibles, the proposed magnetic polyhedron design support 3D interactions. When the ball is rolling, the shape of magnetic fields provides robust features for the analog Hall-sensor grid to track the near-surface 3D position in real-time. We also propose a simple procedure to fabricate the proposed magnetic sphere with ease. Several applications are demonstrated to show possible interactions between the GaussMarbles and physical constraints in various levels of embodiment.
To achieve rich-ID an high-DOF, we present the second system, GaussRFID, a magnetic-RFID development kit for embedding interactivity by creating physical artifacts. The hybrid RFID and Magnetic-field tag sensing consists of two major components: GaussTag, a magnetic-RFID tag combined with a magnetic unit and a RFID tag, and GaussStage, the tag reader as well as a TUI design platform combined with an analog Hall-sensor grid and an RFID reader. A GaussStage reads the ID, 3D position, and partial 3D orientation information of a GaussTag nearby the sensing platform, and provides simple interfaces for users to incorporate different types of physical constraints, making display and actuator modules in a plug-and-play fashion. The two proposed approaches explore the token+constraint interfaces on the portable platform and complete a toolkit for designers and researchers to create various tangible interactions with physical constraints. | en |
| dc.description.provenance | Made available in DSpace on 2021-06-08T02:00:39Z (GMT). No. of bitstreams: 1 ntu-105-R02725023-1.pdf: 25509271 bytes, checksum: c9b92dce8744a4658ab104c33cba800f (MD5) Previous issue date: 2016 | en |
| dc.description.tableofcontents | 口試委員會審定書 i
致謝 ii 中文摘要 iii Abstract iv Contents vi List of Figures ix List of Tables xiii 1 Introduction 1 1.1 Motivation 1 1.2 GaussMarbles: Spherical Magnetic Tangibles for Interacting with Portable PhysicalConstraints 2 1.3 GaussRFID: Combining Magnetic Tangibles with RFID 3 1.4 Thesis Organisation 4 2 Related Work 5 2.1 Passive Tangible Interfaces on Portable Platforms 5 2.2 TUI with Spherical Tangibles 7 2.3 Adding Interactivity’s to RFID 7 3 GaussMarbles: Spherical Magnetic Tangibles for Interacting with Portable Physical Constraints 9 3.1 Introduction 9 3.2 DesigningGaussMarbles 10 3.2.1 Challenges of Sensing Spherical Magnetics 10 3.2.2 Shaping Magnetic Field Using A Regular Polyhedron 11 3.3 Explorative Study 12 3.3.1 Apparatus 12 3.3.2 Tasks and Data Processing 13 3.4 Results and Discussions 15 3.4.1 Findings from Explorative Study 15 3.4.2 Summary 17 3.5 Implementation 17 3.5.1 Fabricating GaussMarbles 17 3.5.2 Sensing Hardwares 18 3.5.3 Sensing Algorithms 19 3.5.4 GaussSenseSDK 20 3.6 Applications 21 3.6.1 Interacting with Constraints on a Display 21 3.6.2 Interacting with Constraints nearby a Display 23 3.6.3 Interacting with Constraints Distant from a Display 23 3.7 Summary 24 4 GaussRFID: Combining Magnetic Tangibles with RFID 25 4.1 Introduction 25 4.2 Design and Implementation 26 4.2.1 Designing GaussTags as Passive and Attachable Tokens 26 4.2.2 Designing GaussStages as TUI Design Platforms 27 4.3 Workshop 29 4.3.1 Participants and Apparatus 29 4.3.2 Procedures 29 4.4 Results and Discussions 30 4.4.1 Designing Spatial Interactions 30 4.4.2 DesigningTokensinRichExpressions 31 4.4.3 Designing GaussStages as Shape-Changing Interfaces 32 4.4.4 Competing Limited Instances and Disabling Interactions 33 4.4.5 Remote Multi-User or Bimanual Interactions 34 4.5 User Feedback and Discussions 35 4.6 Summary 36 5 Discussion 37 6 Conclusion and Future Work 40 Bibliography 42 | |
| dc.language.iso | en | |
| dc.title | 設計實體使用者介面與可攜式物理界限互動 | zh_TW |
| dc.title | Designing Tangible Interactions with Portable Physical Constraints | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 104-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.oralexamcommittee | 梁容豪(Rong-Hao Liang),梁容輝(Rung-Huei Liang),余能豪(Neng-Hao Yu) | |
| dc.subject.keyword | 實體使用者介面,物理界限,類比式霍爾感測網格,高斯磁場感測器,無線射頻識別, | zh_TW |
| dc.subject.keyword | Tangible User Interface,Physical Constraint,Analog Hall- Sensor Grid,GaussSense,RFID, | en |
| dc.relation.page | 46 | |
| dc.identifier.doi | 10.6342/NTU201600335 | |
| dc.rights.note | 未授權 | |
| dc.date.accepted | 2016-06-16 | |
| dc.contributor.author-college | 管理學院 | zh_TW |
| dc.contributor.author-dept | 資訊管理學研究所 | zh_TW |
| 顯示於系所單位: | 資訊管理學系 | |
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|---|---|---|---|
| ntu-105-1.pdf 未授權公開取用 | 24.91 MB | Adobe PDF |
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