@inproceedings{Goetzelmann2017, author = {G{\"o}tzelmann, Timo}, title = {<> 3D Printable Hand Exoskeleton for the Haptic Exploration of Virtual 3D Scenes}, series = {Proc. 10th Int. Conf. on PErvasive Technologies Related to Assistive Environments}, volume = {2017}, booktitle = {Proc. 10th Int. Conf. on PErvasive Technologies Related to Assistive Environments}, publisher = {ACM}, address = {New York, NY, USA}, isbn = {978-1-4503-5227-7}, pages = {63 -- 66}, year = {2017}, abstract = {Virtual reality is currently experiencing a comeback. A considerable market has developed for VR computer games and educational applications. Some solutions integrate tracked devices which allow users to freely move within a certain space. Virtual 3D model can be visually explored, implemented collision detected allows users to get a feedback for instance by sound or vibration. For research projects there are several approaches which offer to get the actual feedback for the fingers of a hand, when the users virtually touches the surface of a 3D model. However, in the consumer market currently no product is sold which offers this direct feedback for the whole hand. In this paper we introduce a low-cost hand exoskeleton which is usable in conjunction with commodity hardware. It covers each of the five fingers of the user's hand, its design is open-source, low-cost, can be customized and 3D printed by individuals. It aims at improving the haptic perception of users, bases of a popular physical computing platform and is designed to be assembled even by electronically unexperienced users. We show the integration of our lean interface of the wireless exoskeleton into exemplary VR environment and describe a calibration process which is flexible for customizations.}, language = {en} } @inproceedings{GoetzelmannBranzHeidenreichetal.2017, author = {G{\"o}tzelmann, Timo and Branz, Lisa and Heidenreich, Claudia and Otto, Markus}, title = {A Personal Computer-based Approach for 3D-Printing Accessible to Blind People}, series = {Proc. 10th Int. Conf. on PErvasive Technologies Related to Assistive Environments}, booktitle = {Proc. 10th Int. Conf. on PErvasive Technologies Related to Assistive Environments}, publisher = {ACM}, address = {New York, NY, USA}, isbn = {978-1-4503-5227-7}, pages = {1 -- 4}, year = {2017}, abstract = {Tactile materials play a major role in making information available to blind people and support their understanding for spatial matters. Due to the complex manual manufacturing process there is still a lack of suitable models for the visually impaired. Millions of 3D models are currently available on the internet and can be searched by dedicated retrieval sites. Most of them can be printed by 3D printers; however, this often isn't a trivial task even for sighted users. Blind peoples' self-dependence could be drastically increased if they were able to autonomously print 3D models at home. This paper analyses the individual tasks to actually print 3D models and adapts them to steps accessible for blind people. We introduce a workflow for the combined use of 3D printing software and consumer hardware. We verified our approach by a formal user study with visually impaired people which showed its feasibility.}, language = {en} } @article{Goetzelmann2018, author = {G{\"o}tzelmann, Timo}, title = {Autonomous Selection and Printing of 3D Models for People Who Are Blind}, series = {ACM Transactions on Accessible Computing (TACCESS)}, volume = {2018}, journal = {ACM Transactions on Accessible Computing (TACCESS)}, number = {Volume 11 Issue 3, Article No. 14}, publisher = {ACM}, doi = {10.1145/3241066}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:92-opus4-5587}, pages = {1 -- 25}, year = {2018}, abstract = {3D models are an important means for understanding spatial contexts. Today these models can be materialized by 3D printing, which is increasingly used at schools for people with visual impairments. In contrast to sighted people, people with visual impairments have so far, however, neither been able to search nor to print 3D models without assistance. This article describes our work to develop an aid for people with visual impairments that would facilitate autonomous searching for and printing of 3D models. In our initial study, we determined the requirements to accomplish this task by means of a questionnaire and developed a first approach that allowed personal computer-based 3D printing. An extended approach allowed searching and printing using common smartphones. In our architecture, technical details of 3D printers are abstracted by a separate component that can be accessed via Wi-Fi independently of the actual 3D printer used. It comprises a search of the models in an annotated database and 3D model retrieval from the internet. The whole process can be controlled by voice interaction. The feasibility of autonomous 3D printing for people with visual impairments is shown with a first user study. Our second user study examines the usability of the user interface when searching for 3D models on the internet and preparing them for the materialization. The participants were able to define important printing settings, whereas other printing parameters could be determined algorithmically.}, language = {en} } @inproceedings{SchaeffPuglieseGoetzelmann, author = {Sch{\"a}ff, Christian and Pugliese, Gaston and G{\"o}tzelmann, Timo}, title = {Behavior Based Web User Identification}, series = {GI-Edition / Seminars}, volume = {Volume S-13}, booktitle = {GI-Edition / Seminars}, publisher = {K{\"o}llenDruck+Verlag}, address = {Bonn}, isbn = {978-3-88579-447-9}, issn = {1614-3213}, pages = {201-204}, abstract = {This paper examines different approaches for the identification of users by their personal behavior and discusses techniques which could be used in the context of websites. Such web tracking approaches have the potential to identify users even if they use multiple or shared devices. For web pages mouse and touch input are widely used. Therefore, we propose a survey to evaluate the feasibility to identify users by their interaction behavior.}, subject = {Authentifikation}, language = {en} } @inproceedings{UllmannKreimeierGoetzelmannetal.2020, author = {Ullmann, Daniela and Kreimeier, Julian and G{\"o}tzelmann, Timo and Kipke, Harald}, title = {BikeVR}, series = {Proceedings of Mensch und Computer 2020}, booktitle = {Proceedings of Mensch und Computer 2020}, publisher = {Association for Computing Machinery}, address = {New York, NY}, isbn = {978-1-4503-7540-5}, doi = {10.1145/3404983.3410417}, pages = {511-514}, year = {2020}, abstract = {While becoming more and more aware of the ongoing climate change, eco-friendly means of transport for all citizens are moving further into focus. In order to be able to implement specific measures, it is necessary to better understand and emphasize sustainable transportation like walking and cycling through focused research. When developing novel traffic concepts and urban spaces for non-motorized traffic participants like bicycles and pedestrians, traffic and urban planning must be focused on their needs. To provide rare qualitative factors (such as stress, the perception of time and attractiveness of the environment) in this context, we present an audiovisual VR bicycle simulator which allows the user to cycle through a virtual urban environment by physically pedaling and also steering. Virtual Reality (VR) is a suitable tool in this context, as study participants find identical and almost freely definable (virtual) urban spaces with adjustable traffic scenarios. Our preliminary prototype proved to be promising and will be further optimized and evaluated.}, language = {en} } @inproceedings{GoetzelmannEichler2015, author = {G{\"o}tzelmann, Timo and Eichler, Laura}, title = {BlindWeb Maps - An Interactive Web Service for the Selection and Generation of Personalized Audio-Tactile Maps}, series = {Proc. 15th International Conference on Computers Helping People with Special Needs}, volume = {2015}, booktitle = {Proc. 15th International Conference on Computers Helping People with Special Needs}, publisher = {Springer}, address = {Cham}, isbn = {978-3-319-41266-5}, pages = {139 -- 145}, year = {2015}, abstract = {Tactile maps may contribute to the orientation of blind people or alternatively be used for navigation. In the past, the generation of these maps was a manual task which considerably limited their availability. Nowadays, similar to visual maps, tactile maps can also be generated semi-automatically by tools and web services. The existing approaches enable users to generate maps by entering a specific address or point of interest. This can in principle be done by a blind user. However, these approaches actually show an image of the map on the users display which cannot be read by screen readers. Consequently, the blind user does not know what is on the map before it is printed. Ideally, the map selection process should give the user more information and freedom to select the desired excerpt. This paper introduces a novel web service for blind people to interactively select and automatically generate tactile maps. It adapts the interaction concept for map selection to the requirements of blind users whilst supporting multiple printing technologies. The integrated audio review of the map's contents allows earlier feedback to review if the currently selected map extract corresponds to the desired information need. Changes can be initiated before the map is printed which, especially for 3D printing, saves much time. The user is able to select map features to be included in the tactile map. Furthermore, the map rendering can be adapted to different zoom levels and supports multiple printing technologies. Finally, an evaluation with blind users was used to refine our approach.}, language = {en} } @inproceedings{GoetzelmannSchneider2016, author = {G{\"o}tzelmann, Timo and Schneider, Daniel}, title = {CapCodes: Capacitive 3D Printable Identification and On-screen Tracking for Tangible Interaction}, series = {Proceedings of the 9th Nordic Conference on Human-Computer Interaction (NordiCHI'16)}, volume = {2016}, booktitle = {Proceedings of the 9th Nordic Conference on Human-Computer Interaction (NordiCHI'16)}, publisher = {ACM}, address = {New York, NY, USA}, isbn = {978-1-4503-4763-1}, pages = {Article No. 32}, year = {2016}, abstract = {Electronic markers can be used to link physical representations and virtual content for tangible interaction, such as visual markers commonly used for tabletops. Another possibility is to leverage capacitive touch inputs of smartphones, tablets and notebooks. However, existing approaches either do not couple physical and virtual representations or require significant post-processing. This paper presents and evaluates a novel approach using a coding scheme for the automatic identification of tangibles by touch inputs when they are touched and shifted. The codes can be generated automatically and integrated into a great variety of existing 3D models from the internet. The resulting models can then be printed completely in one cycle by off-the-shelf 3D printers; post processing is not needed. Besides the identification, the object's position and orientation can be tracked by touch devices. Our evaluation examined multiple variables and showed that the CapCodes can be integrated into existing 3D models and the approach could also be applied to untouched use for larger tangibles.}, language = {en} } @inproceedings{Goetzelmann2015, author = {G{\"o}tzelmann, Timo}, title = {CapMaps: Capacitive Sensing 3D Printed Audio-Tactile Maps}, series = {Proc. 15th International Conference on Computers Helping People with Special Needs}, volume = {2015}, booktitle = {Proc. 15th International Conference on Computers Helping People with Special Needs}, publisher = {Springer}, address = {Cham}, isbn = {978-3-319-41266-5}, pages = {146 -- 152}, year = {2015}, abstract = {Tactile maps can be useful tools for blind people for navigation and orientation tasks. Apart from static maps, there are techniques to augment tactile maps with audio content. They can be used to interact with the map content, to offer extra information and to reduce the tactile complexity of a map. Studies show that audio-tactile maps can be more efficient and satisfying for the user than pure tactile maps without audio feedback. A major challenge of audio-tactile maps is the linkage of tactile elements with audio content and interactivity. This paper introduces a novel approach to link 3D printed tactile maps with mobile devices, such as smartphones and tablets, in a flexible way to enable interactivity and audio-support. By integrating conductive filaments into the printed maps it seamlessly integrates into the 3D printing process. This allows to automatically recognize the tactile map by a single press at its corner. Additionally, the arrangement of the tactile map on the mobile device is flexible and detected automatically which eases the use of these maps. The practicability of this approach is shown by a dedicated feasibility study.}, language = {en} } @inproceedings{Goetzelmann2013, author = {G{\"o}tzelmann, Timo}, title = {Concept of the Joint Use of Smartphone Camera and Projector for Keyboard Inputs}, publisher = {Gediz University Press}, address = {Gediz}, issn = {2147-9097}, pages = {52-57}, year = {2013}, abstract = {The efficiency of text input by today's smartphones is significantly limited by the small extents of the virtual keyboard displayed for allowing alphanumeric inputs. Future smartphones will integrate projectors which allow to project multimedia content as well as the smartphones' dialogs. This paper introduces a concept to project the whole smartphone's display onto a surface allowing the user to realize text inputs by interacting with the virtual keyboard projection. This projection is analyzed by standard image processing algorithms. Finally, an experimental implementation shows the feasibility of this concept.}, subject = {Mensch-Maschine-Kommunikation}, language = {en} } @article{KreimeierBielmeierGoetzelmann2018, author = {Kreimeier, Julian and Bielmeier, Tobias and G{\"o}tzelmann, Timo}, title = {Evaluation of Capacitive Markers Fabricated by 3D Printing, Laser Cutting and Prototyping}, series = {Journal of Inventions: Special Issue Innovations in 3-D Printing}, volume = {2018}, journal = {Journal of Inventions: Special Issue Innovations in 3-D Printing}, number = {Volume 3, Issue 1, Article 9}, publisher = {MDPI}, doi = {10.3390/inventions3010009}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:92-opus4-5603}, pages = {18}, year = {2018}, abstract = {With Tangible User Interfaces, the computer user is able to interact in a fundamentally different and more intuitive way than with usual 2D displays. By grasping real physical objects, information can also be conveyed haptically, i.e., the user not only sees information on a 2D display, but can also grasp physical representations. To recognize such objects ("tangibles") it is skillful to use capacitive sensing, as it happens in most touch screens. Thus, real objects can be located and identified by the touch screen display automatically. Recent work already addressed such capacitive markers, but focused on their coding scheme and automated fabrication by 3D printing. This paper goes beyond the fabrication by 3D printers and, for the first time, applies the concept of capacitive codes to laser cutting and another immediate prototyping approach using modeling clay. Beside the evaluation of additional properties, we adapt recent research results regarding the optimized detection of tangible objects on capacitive screens. As a result of our comprehensive study, the detection performance is affected by the type of capacitive signal processing (respectively the device) and the geometry of the marker. 3D printing revealed to be the most reliable technique, though laser cutting and immediate prototyping of markers showed promising results. Based on our findings, we discuss individual strengths of each capacitive marker type.}, language = {en} } @inproceedings{KreimeierHammerFriedmannetal.2019, author = {Kreimeier, Julian and Hammer, Sebastian and Friedmann, Daniel and Karg, Pascal and B{\"u}hner, Clemens and Bankel, Lukas and G{\"o}tzelmann, Timo}, title = {Evaluation of Different Types of Haptic Feedback Influencing the Task-based Presence and Performance in Virtual Reality}, series = {Proceedings of the 12th ACM International Conference on PErvasive Technologies Related to Assistive Environments (PETRA'19)}, booktitle = {Proceedings of the 12th ACM International Conference on PErvasive Technologies Related to Assistive Environments (PETRA'19)}, publisher = {ACM}, address = {New York, NY, USA}, isbn = {978-1-4503-6232-0}, pages = {289 -- 298}, year = {2019}, abstract = {Haptic feedback may support immersion and presence in virtual reality (VR) environments. The emerging market of consumer devices offers first devices which are expected to increase the degree of feeling being actually present in a virtual environment. In this paper we introduce a novel evaluation that examines the influence of different types of haptic feedback on presence and performance regarding manual tasks in VR. Therefore, we conducted a comprehensive user study involving 14 subjects, who performed throwing, stacking and object identification tasks in VR with visual (i.e., sensory substitution), vibrotactile or force feedback. We measured the degree of presence and task-related performance metrics. Our results indicate that regarding presence vibrotactile feedback outperforms haptic feedback which performs better than visual feedback only. In addition, force feedback significantly lowered the execution time for the throwing and the stacking task. In object identification tasks, the vibrotactile feedback increased the detection rates compared to the vibrotactile and force feedback, but also increased the required time of identification. Despite the inadequacies of the still young consumer technology, there were nevertheless strong indications of connections between presence, task fulfillment and the type of haptic feedback.}, language = {en} } @inproceedings{KreimeierGoetzelmann2018, author = {Kreimeier, Julian and G{\"o}tzelmann, Timo}, title = {FeelVR: Haptic Exploration of Virtual Objects}, series = {Proceedings of the 11th PErvasive Technologies Related to Assistive Environments Conference (PETRA '18)}, volume = {2018}, booktitle = {Proceedings of the 11th PErvasive Technologies Related to Assistive Environments Conference (PETRA '18)}, publisher = {ACM}, address = {New York}, doi = {10.1145/3197768.3201526}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:92-opus4-5611}, pages = {122 -- 125}, year = {2018}, abstract = {The interest in virtual and augmented reality increased rapidly in the last years. Recently, haptic interaction and its applications get into focus. In this paper, we suggest the exploration of virtual objects using off-the-shelf VR game controllers. These are held like a pen with both hands and were used to palpate and identify the virtual object. Our study largely coincides with comparable previous work and shows that a ready-to-use VR system can be basically used for haptic exploration. The results indicate that virtual objects are more effectively recognized with closed eyes than with open eyes. In both cases, objects with a bigger morphological difference were identified the most frequently. The limitations due to quality and quantity of tactile feedback should be tackled in future studies that utilize currently developed wearable haptic devices and haptic rendering involving all fingers or even both hands. Thus, objects could be identifiable more intuitively and haptic feedback devices for interacting with virtual objects will be further disseminated.}, language = {en} } @inproceedings{KreimeierGoetzelmann2019, author = {Kreimeier, Julian and G{\"o}tzelmann, Timo}, title = {First Steps Towards Walk-In-Place Locomotion and Haptic Feedback in Virtual Reality for Visually Impaired}, series = {CHI Conference on Human Factors in Computing Systems Extended Abstracts (CHI'19 Extended Abstracts)}, volume = {2019}, booktitle = {CHI Conference on Human Factors in Computing Systems Extended Abstracts (CHI'19 Extended Abstracts)}, publisher = {ACM}, address = {New York, NY, USA}, isbn = {978-1-4503-5971-9}, pages = {1 -- 6}, year = {2019}, abstract = {This paper presents the first results on a user study in which people with visual impairments (PVI) explored a virtual environment (VE) by walking in a virtual reality (VR) treadmill. As recently suggested, we have now acquired first results from our feasibility study investigating this walk-in-place interaction. This represents a new, more intuitive way of for example virtually exploring unknown spaces in advance. Our prototype consists of off-the-shelf VR components (i.e., treadmill, headphones, glasses, and controller) providing a simplified white cane simulation and was tested by six visually impaired subjects. Our results indicate that this interaction is yet difficult, but promising and an important step to make VR more and better usable for PVIs. As an impact on the CHI community, we would like to make this research field known to a wider audience by sharing our intermediate results and suggestions for improvements, on some of which we are already working on.}, language = {en} } @inproceedings{GoetzelmannVazquez2015, author = {G{\"o}tzelmann, Timo and V{\´a}zquez, Pere-Pau}, title = {InclineType: An Accelerometer-based Typing Approach for Smartwatches}, series = {Proc. 16th International Conference on Human Computer Interaction}, volume = {2015}, booktitle = {Proc. 16th International Conference on Human Computer Interaction}, publisher = {ACM}, address = {New York, NY, USA}, isbn = {978-1-4503-3463-1}, pages = {Article No. 59}, year = {2015}, abstract = {Small mobile devices such as smartwatches are a rapidly growing market. However, they share the issue of limited input and output space which could impede the success of these devices in future. Hence, suitable alternatives to the concepts and metaphors known from smartphones have to be found. In this paper we present InclineType a tilt-based keyboard input that uses a 3-axis accelerometer for smartwatches. The user may directly select letters by moving his/her wrist and enters them by tapping on the touchscreen. Thanks to the distribution of the letters on the edges of the screen, the keyboard dedicates a low amount of space in the smartwatch. In order to optimize the user input our concept proposes multiple techniques to stabilize the user interaction. Finally, a user study shows that users get familiar with this technique with almost no previous training, reaching speeds of about 6 wpm in average.}, language = {en} } @inproceedings{Goetzelmann2014, author = {G{\"o}tzelmann, Timo}, title = {Interactive Tactile Maps for Blind People using Smartphones Integrated Cameras}, series = {Proc. 9th ACM International Conference on Interactive Tabletops and Surfaces (ITS'14)}, volume = {2014}, booktitle = {Proc. 9th ACM International Conference on Interactive Tabletops and Surfaces (ITS'14)}, publisher = {ACM}, address = {New York, NY, USA}, isbn = {978-1-4503-2587-5}, pages = {381 -- 385}, year = {2014}, abstract = {Tactile maps may support blind persons in orientation and understanding geographical relations, but their availability is still very limited. However, recent technologies such as 3D printers allow to autonomously print individual tactile maps which can be linked with interactive applications. Besides geographical depictions, textual annotation of maps is crucial. However, this often adds much complexity to tactile maps. To limit tactile complexity, interactive approaches may help to complement maps by the auditive modality. The presented approach integrates barcodes into tactile maps to allow their detection by standard smartphones' cameras. Automatically, more detailed map data is obtained to auditively support the exploration of the tactile map. Our experimental implementation shows the principal feasibility and provides the basis of ongoing comprehensive user studies.}, language = {en} } @inproceedings{Goetzelmann2016, author = {G{\"o}tzelmann, Timo}, title = {LucentMaps: 3D Printed Audiovisual Tactile Maps for Blind and Visually Impaired People}, series = {Proc. 18th International ACM SIGACCESS Conference on Computers and Accessibility}, volume = {2016}, booktitle = {Proc. 18th International ACM SIGACCESS Conference on Computers and Accessibility}, publisher = {ACM}, address = {New York, NY, USA}, isbn = {978-1-4503-4124-0}, pages = {90}, year = {2016}, abstract = {Tactile maps support blind and visually impaired people in orientation and to familiarize with unfamiliar environments. Interactive approaches complement these maps with auditory feedback. However, commonly these approaches focus on blind people. We present an approach which incorporates visually impaired people by visually augmenting relevant parts of tactile maps. These audiovisual tactile maps can be used in conjunction with common tablet computers and smartphones. By integrating conductive elements into 3D printed tactile maps, they can be recognized by a single touch on the mobile device's display, which eases the handling for blind and visually impaired people. To allow multiple elevation levels in our transparent tactile maps, we conducted a study to reconcile technical and physiological requirements of off-the-shelf 3D printers, capacitive touch inputs and the human tactile sense. We propose an interaction concept for 3D printed audiovisual tactile maps, verify its feasibility and test it with a user study. Our discussion includes economic considerations crucial for a broad dissemination of tactile maps for both blind and visually impaired people.}, language = {en} } @inproceedings{DotencoGoetzelmannGallwitz2014, author = {Dotenco, Sergiu and G{\"o}tzelmann, Timo and Gallwitz, Florian}, title = {Smartphone Input Using an Integrated Projector and a Monocular Camera}, series = {Lecture Notes in Computer Science}, volume = {Volume 8512}, booktitle = {Lecture Notes in Computer Science}, publisher = {Springer}, isbn = {978-3-319-07226-5}, pages = {124-133}, year = {2014}, abstract = {Touch input on modern smartphones can be tedious, especially if the touchscreen is small. Smartphones with integrated projectors can be used to overcome this limitation by projecting the screen contents onto a surface, allowing the user to interact with the projection by means of simple hand gestures. In this work, we propose a novel approach for projector smartphones that allows the user to remotely interact with the smartphone screen via its projection. We detect user's interaction using the built-in camera, and forward detected hand gestures as touch input events to the operating system. In order to avoid costly computations, we additionally use built-in motion sensors. We verify the proposed method using an implementation for the consumer smartphone Samsung Galaxy Beam equipped with a deflection mirror.}, subject = {App }, language = {en} } @inproceedings{Goetzelmann2015, author = {G{\"o}tzelmann, Timo}, title = {SmartTactMaps: A Smartphone-Based Approach to Support Blind Persons in Exploring Tactile Maps}, series = {Proc. 8th ACM International Conference on PErvasive Technologies Related to Assistive Environments}, volume = {2015}, booktitle = {Proc. 8th ACM International Conference on PErvasive Technologies Related to Assistive Environments}, publisher = {ACM}, address = {New York, NY, USA}, isbn = {978-1-4503-3452-5}, pages = {2:1-2:8}, year = {2015}, abstract = {Despite increasing digitalization of our society many blind persons still have very limited access to predominantly pictorial information such as maps. In this paper we introduce a novel approach to improve the accessibility of maps for blind users by utilizing the abilities of standard smartphones. A major issue of tactile maps is the limited discriminability of the humans' tactile sense. Textual annotation of maps is crucial, but adds much complexity to tactile maps. Additionally, only few Braille labels can be accommodated to maintain legibility. In our approach we link smartphones with adapted tactile maps which transforms the physical maps into interactive surfaces using both the tactile and the auditory modality. We integrate machine readable metadata into these maps which can be recognized by the smartphones' camera to immediately obtain detailed map descriptions from a free global database. During tactile exploration of the map, blind users can request auditory explanations by interacting with the mobile application. An experimental application and a user study demonstrate the feasibility of our approach.}, language = {en} } @inproceedings{GoetzelmannAlthaus2016, author = {G{\"o}tzelmann, Timo and Althaus, Christoph}, title = {TouchSurfaceModels: Capacitive Sensing Objects through 3D Printers}, series = {Proc. 9th ACM International Conference on PErvasive Technologies Related to Assistive Environments}, volume = {2016}, booktitle = {Proc. 9th ACM International Conference on PErvasive Technologies Related to Assistive Environments}, publisher = {ACM}, address = {New York, NY, USA}, isbn = {978-1-4503-4337-4}, pages = {Article No. 22, pp. 1-8}, year = {2016}, abstract = {Nowadays, 3D models can be downloaded from the internet and increasingly be printed by low cost 3D printers. In the future, blind people could benefit from this tendency. Unfortunately, many of these models are rather complex and not appropriate for the purely tactile exploration. To obtain quantitative data about how 3D printable models for blind people should be constructed, the tactile exploration can be recorded by video. However, the analysis of these videos is quite time consuming and expensive. Additionally, inaccuracies and masking effects may impede the use of this technique. In this paper we introduce a novel approach to automatically equip existing 3D models with a mesh of conductive wires which enable a touch sensitive surface for the printed 3D objects. These touch sensing 3D models can be printed in one turn by off-the-shelf 3D printers and used as an alternative to video recording. It allows exact registration of when and where the 3D object has been touched. In our multi-touch solution, particular attention has been paid to limit the number of necessary wires between 3D object and sensing electronics. Finally, our approach is evaluated by a feasibility study.}, language = {en} } @inproceedings{GoetzelmannPavkovic2014, author = {G{\"o}tzelmann, Timo and Pavkovic, Aleksander}, title = {Towards Automatically Generated Tactile Detail Maps by 3D Printers for Blind Persons}, series = {Computers Helping People with Special Needs}, booktitle = {Computers Helping People with Special Needs}, publisher = {Springer}, isbn = {978-3-319-08599-9}, doi = {10.1007/978-3-319-08599-9_1}, pages = {1-7}, year = {2014}, abstract = {This paper introduces an approach for the (semi)automatic generation of worldwide available, detailed tactile maps including buildings and blind-specific features based on recognized illustrators' guidelines and standards. These guidelines for tactile maps are investigated in order to define a formal rule set and to automatically filter map data accordingly. Using the rule set, our approach automatically abstracts map data in order to generate a 2.1D tactile model providing multiple height levels (layers) which can be printed by usual consumer 3D printers. Based on the popular OpenStreetMap map data, our automated approach allows to generate arbitrary detail maps blind persons individually interested in, without the need for manual adaption of the tactile map. Thus, this approach contributes to the goal to increase the autonomy of blind persons.}, subject = {3D-Drucker}, language = {en} }