Towards Tangible Vision for the Visually Impaired through 2D Multiarray Braille Display
Abstract
:1. Introduction
- Firstly, this study presents a haptic telepresence system that the visually impaired people can use to feel the shape of a remote object in real time. The server captures a 3D object, encodes a depth video using high efficiency video coding (HEVC)(H.265/MPEG-H) and sends it to the client. The 2D+depth video is originally reconstructed in 30 frames per second (fps) but the visually impaired people do not need such a high frame rate. Thus, the system downsamples the frame rate according to human feedback; the hpatic device has the button to let the system know the user finished exploring the frame. It can express a 3D object to visually impaired people. However, the authors realized the limitations of this methodology; consequently, the focus of this study was turned to the research on a next-generation braille display. The limitations of haptic telepresence will be discussed in Section 6.
- This study also presents the 2D multiarray braille display. For sharing multimedia content, it presents a braille electronic book (eBook) reader application that can share a large amount of text, figures, and audio content. In the research steps, there are a few types of tethered 2D multiarray braille display devices; they are developed to simulate the proposed software solution before developing a hardware (HW) 2D braille device. The solution in HW device is that does not need the tethered system.
2. Related Work
2.1. Smart Canes Using Various Sensors
2.2. Communication of 2D or 3D Objects Using Haptic Device or Depth Camera
2.3. Information Transfer Using Braille Device and Assistive Application
3. 3D Haptic Telepresence System
3.1. Architecture of 3D Haptic Telepresence System
3.2. 3D Spatial Information Capture with Depth Map Using IR Projector and Camera
3.3. Real-Time Video Compression and Transmission to Haptic Device
3.4. Real-Time Haptic Interaction Using 2D+ Depth Video
4. Electronic Book (eBook) Reader Application for 2D Braille Display
4.1. Design of 2D Multiarray Braille Eisplay and Its Architecture of eBook Reader Application
4.2. Modules and Application on Braille OS
4.3. Wireless Mirroring between Braille Pad and Smartphone
4.4. Extraction and Translation Method for 2D Multiarray Braille Display
Algorithm 1: Text to braille conversion and text/braille page division for text content of an eBook |
Input: Text content of an eBook Output: braille eBook and highlighted textbook |
4.5. Braille Image Translation Based on 2D Multiarray Braille Display
5. Implementation and Results
5.1. Haptic Telepresence System
5.2. Braille eBook Reader Application Based On 2D Multiarray Braille Display
6. Limitation and Discussion
6.1. Haptic Telepresence
6.2. Braille eBook Reader Application
7. Conclusions
Author Contributions
Funding
Conflicts of Interest
Abbreviations
DAISY | Digital accessible information system |
HEVC | High efficiency video coding |
SHVC | Scalable high efficiency video coding |
LED | Light emitting diode |
IR | Infrared |
EPUB | Electronic publication |
TTS | Text-to-speech |
NCC | Navigation control center |
NCX | Navigation control center for extensible markup language |
XML | Extensible markup language |
SMIL | Synchronized multimedia integration language |
HTML | Hyper text markup language |
SDK | Software development kit |
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Sex and Age (Years) | World Population (Millions) | Blind | Moderate and Severe Vision Impairment | Mild Vision Impairment | |||
---|---|---|---|---|---|---|---|
Men | Prevalence (%) | Number (Millions) | Prevalence (%) | Number (Millions) | Prevalence (%) | Number (Millions) | |
Over 70 | 169 | 4.55 | 7.72 | 20.33 | 34.53 | 14.05 | 23.85 |
50–69 | 613 | 0.93 | 5.69 | 6.78 | 41.57 | 6.46 | 39.65 |
0–49 | 2920 | 0.08 | 2.46 | 0.74 | 21.66 | 0.81 | 23.61 |
Women | |||||||
Over 70 | 222 | 4.97 | 11.06 | 21.87 | 48.71 | 14.57 | 32.45 |
50–69 | 634 | 1.03 | 6.52 | 7.48 | 47.46 | 6.99 | 44.35 |
0–49 | 2780 | 0.09 | 2.56 | 0.82 | 22.68 | 0.89 | 24.64 |
Product | Special Feature | Media Support | Braille Cells | Cost (USD) | OS | Release (Year) |
---|---|---|---|---|---|---|
Blitab [28] | Displaying braille image | Image and audio | Unknown | Android | Unknown | |
BrailleSense Polaris [29] | Office and school-friendly | Audio-only | 32 | 5795.00 | Android | 2017 |
BrailleSense U2 [29] | Office and school-friendly | Audio-only | 32 | 5595.00 | Windows CE 6.0 | 2012 |
BrailleNote Touch 32 braille Notetaker [30] | Smart touchscreen keyboard | Audio-only | 40 | 5495.00 | Android | 2016 |
Brailliant B 80 braille display (new gen.) [31] | Compatibility with other devices | Text-only | 80 | 7985.00 | Mac/iOS/Windows | 2011 |
Standard | DAISY v2.02 | DAISY v3.0 |
---|---|---|
Document | based-on HTML | based-on XML |
Configuration | Media files, SMIL, and NCC | Media files, SMIL, NCX, XML, and OPF |
Reference file | NCC file | OPF file |
Metadata Tag | <title>, <meta> | <metadata> |
Context Tag | <h> | <level1> |
Item | Recognition Characteristics |
---|---|
Image details | Expressing excessive detail can cause confusion in determining the direction and intersection of image outlines. Therefore, the outline in both low-and high-complexity images should be expressed as simply as possible to increase the information recognition capabilities. |
High-complexity image with a central object | For an image containing a primary object, the background and surrounding data should be removed and only the outline of the primary object should be provided to increase recognition capabilities. |
High-complexity image without a central object | For an image without a primary object, such as a landscape, translating the outline does not usually enable the visually impaired to recognize the essential information. |
Research | eBook Support (DAISY/EPUB) | Portability | Braille Translation | Braille Figure Conversion | Panning Problem | OS |
---|---|---|---|---|---|---|
Application | ||||||
Bae’s [23] | DAISY | Weak | ∘ | × | Strong | Windows |
Kim’s [24,25] | DAISY | Strong | × | × | - | Android |
Bornschein’s [21] | Unknown | Weak | ∘ | ∘ | Strong | Windows |
Bornschein’s [20] | Unknown | Weak | ∘ | ∘ | Strong | Windows |
Goncu’s [19] | EPUB | Strong | × | × | - | iOS |
Harty’s [26] | DAISY(v2.02) | Strong | × | × | - | Android |
Mahule’s [27] | DAISY(v3.0) | Strong | × | × | - | Android |
Braille device | ||||||
Byrd’s [22] | Unknown | Strong | ∘ | × | Strong | Windows (NVDA) |
Park’s [33] | Both | Weak | ∘ | ∘ | Strong | Windows |
BrailleSense Polaris [29] | Both | Strong | ∘ | × | Weak | Android |
BrailleSense U2 [29] | Both | Strong | ∘ | × | Weak | Windows CE 6.0 |
BrailleNote Touch 32 Braille Notetaker [30] | Both | Strong | ∘ | × | Weak | Android |
Brailliant B 80 (new gen.) [31] | Both | Strong | ∘ | × | Strong | - |
Ours | Both | Strong | ∘ | ∘ | Strong | Android |
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Share and Cite
Kim, S.; Ryu, Y.; Cho, J.; Ryu, E.-S. Towards Tangible Vision for the Visually Impaired through 2D Multiarray Braille Display. Sensors 2019, 19, 5319. https://doi.org/10.3390/s19235319
Kim S, Ryu Y, Cho J, Ryu E-S. Towards Tangible Vision for the Visually Impaired through 2D Multiarray Braille Display. Sensors. 2019; 19(23):5319. https://doi.org/10.3390/s19235319
Chicago/Turabian StyleKim, Seondae, Yeongil Ryu, Jinsoo Cho, and Eun-Seok Ryu. 2019. "Towards Tangible Vision for the Visually Impaired through 2D Multiarray Braille Display" Sensors 19, no. 23: 5319. https://doi.org/10.3390/s19235319
APA StyleKim, S., Ryu, Y., Cho, J., & Ryu, E. -S. (2019). Towards Tangible Vision for the Visually Impaired through 2D Multiarray Braille Display. Sensors, 19(23), 5319. https://doi.org/10.3390/s19235319