virtual keyboard full report
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Inside the keyboard
Types of keyboards
Difficulties and alternatives

Virtual Keyboard is just another example of todayâ„¢s computer trend of Ëœsmaller and fasterâ„¢. It uses sensor technology and artificial intelligence to let users work on any surface as if it were a keyboard.

Virtual Keyboard is a small Java application that lets you easily create multilingual text content on almost any existing platform and output it directly to web pages. Virtual Keyboard, being a small, handy, well-designed and easy to use application, turns into a perfect solution for cross platform multilingual text input.
The main features are: platform-independent multilingual support for keyboard text input, built-in language layouts and settings, copy/paste etc. operations support just as in a regular text editor, already existing system language settings remain intact, easy and user-friendly interface and design, and small file size.
Virtual Keyboard is available as Java applet and Java-script. It uses a special API to interact with a web page. You can invoke its public methods from Java script to perform certain tasks such as Launch Virtual Keyboard, Move the Virtual Keyboard window to exact screen coordinates, etc. The application also uses a bound text control to transfer the text to/from the page.

Inside the keyboard
The processor in a keyboard has to understand several things that are important to the utility of the keyboard, such as:
¢ Position of the key in the key matrix.
¢ The amount of bounce and how to filter it.
¢ The speed at which to transmit the typematics.

The microprocessor and controller circuitry of a keyboard.
The key matrix is the grid of circuits underneath the keys. In all keyboards except for capacitive ones, each circuit is broken at the point below a specific key. Pressing the key,bridges the gap in the circuit, allowing a tiny amount of current to flow through. The processor monitors the key matrix for signs of continuity at any point on the grid. When it finds a circuit that is closed, it compares the location of that circuit on the key matrix to the character map in its ROM. The character map is basically a comparison chart for the processor that tells it what the key at x,y coordinates in the key matrix represents. If more than one key is pressed at the same time, the processor checks to see if that combination of keys has a designation in the character map. For example, pressing the Ëœaâ„¢ key by itself would result in a small letter "a" being sent to the computer. If you press and hold down the Shift key while pressing the Ëœaâ„¢ key, the processor compares that combination with the character map and produces a capital letter "A."
A different character map provided by the computer can supersede the character map in the keyboard. This is done quite often in languages whose characters do not have English equivalents. Also, there are utilities for changing the character map from the traditional QWERTY to DVORAK or another custom version.

A look at the key matrix.
Keyboards rely on switches that cause a change in the current flowing through the circuits in the keyboard. When the key presses the keyswitch against the circuit, there is usually a small amount of vibration between the surfaces, known as bounce. The processor in a keyboard recognizes that you pressing the key repeatedly do not cause this very rapid switching on and off. Therefore, it filters all of the tiny fluctuations out of the signal and treats it as a single keypress.
If you continue to hold down a key, the processor determines that you wish to send that character repeatedly to the computer. This is known as typematics. In this process, the delay between each instance of a character can normally be set in software, typically ranging from 30 characters per second (cps) to as few as two cps.
Keyboards have changed very little in layout since their introduction. In fact, the most common change has simply been the natural evolution of adding more keys that provide additional functionality.
The most common keyboards are:
¢ 101-key Enhanced keyboard
¢ 104-key Windows keyboard
¢ 82-key Apple standard keyboard
¢ 108-key Apple Extended keyboard
Portable computers such as laptops quite often have custom keyboards that have slightly different key arrangements than a standard keyboard. Also, many system manufacturers add specialty buttons to the standard layout. A typical keyboard has four basic types of keys:
¢ Typing keys
¢ Numeric keypad
¢ Function keys
¢ Control keys
The typing keys are the section of the keyboard that contains the letter keys, generally laid out in the same style that was common for typewriters. The numeric keypad is a part of the natural evolution mentioned previously. Since a large part of the data was numbers, a set of 17 keys was added to the keyboard. These keys are laid out in the same configuration used by most adding machines and calculators, to facilitate the transition to computer for clerks accustomed to these other machines. In 1986, IBM extended the basic keyboard with the addition of function and control keys. The function keys, arranged in a line across the top of the keyboard, could be assigned specific commands by the current application or the operating system. Control keys provided cursor and screen control. Four keys arranged in an inverted T formation between the typing keys and numeric keypad allows the user to move the cursor on the display in small increments.
Keyboard Technologies
Keyboards use a variety of switch technologies. It is interesting to note that we generally like to have some audible and tactile response to our typing on a keyboard. We want to hear the keys "click" as we type, and we want the keys to feel firm and spring back quickly as we press them. Let's take a look at these different technologies:
¢ Rubber dome mechanical
¢ Capacitive non-mechanical
¢ Metal contact mechanical
¢ Membrane mechanical
¢ Foam element mechanical
From the Keyboard to the Computer
As you type, the processor in the keyboard is analyzing the key matrix and determining what characters to send to the computer. It maintains these characters in a buffer of memory that is usually about 16 bytes large. It then sends the data in a stream to the computer via some type of connection.
The most common keyboard connectors are:
¢ 5-pin DIN (Dutch Industries Norm) connector
¢ 6-pin IBM PS/2 mini-DIN connector
¢ 4-pin USB (Universal Serial Bus) connector
¢ Internal connector (for laptops)
Normal DIN connectors are rarely used anymore. Most computers use the mini-DIN PS/2 connector; but an increasing number of new systems are dropping the PS/2 connectors in favor of USB. No matter which type of connector is used, two principal elements are sent through the connecting cable. The first is power for the keyboard. Keyboards require a small amount of power, typically about 5 volts, in order to function. The cable also carries the data from the keyboard to the computer. The other end of the cable connects to a port that is monitored by the computer's keyboard controller.
This is an integrated circuit (IC) whose job is to process all of the data that comes from the keyboard and forward it to the operating system.

Difficulties and alternatives
It is now recognized that it is important to be correctly seated while using a computer. A comfortable working position will help with concentration, quality of work, and reduce the risk of long-term problems. This is important for all who use computers, and especially so for those with disabilities.
The increased repetitive motions and awkward postures attributed to the use of computer keyboards have resulted in a rise in cumulative trauma disorders (CTDs) that are generally considered to be the most costly and severe disorders occurring in the office. Lawsuits for arm, wrist, and hand injuries have been filed against keyboard manufacturers allege that keyboarding equipment is defectively designed and manufacturers fail to provide adequate warnings about proper use to avoid injury.
As early as1926, Klockenberg described how the keyboard layout required the typist to assume body postures that were unnatural, uncomfortable and fatiguing. For example, standard keyboard design forces operators to place their hands in a flat, palm down position called forearm pronation. The compact, linear key arrangement also causes some typists to place their wrist in a position that is skewed towards the little fingers, called ulnar deviation. These awkward postures result in static muscle loading, increased muscular energy expenditure, reduced muscular waste removal, and eventual discomfort or injury.
Researchers also noted that typing on the QWERTY keyboard is poorly distributed between the hands and fingers, causing the weaker ring and little fingers to be overworked.
When a standard keyboard does not meet the needs of the user, several alternatives can be found. Keyboards come in a variety of sizes with different layouts. The four alternatives described below are considered "plug and play" keyboards, as they require no special interface. Just plug them into the existing keyboard port and use them.
Ergonomic Keyboards
These keyboards are designed to ensure safe and comfortable computer use by providing additional supports to prevent repetitive muscular injuries. Many offer flexible positioning options (Comfort Keyboard), while others use "wells" for support (ergonomic), or chords instead of keys (BAT Keyboard), or require minimal finger/hand movements (Data Hand).
Compact or Reduced Keyboards
These keyboards are designed with keys in closely arranged order. These compact or reduced keyboards offer options for students with a limited range of motion in their hands or arms and can be accessed with head or mouth pointers. Examples of these are TASH mini keyboards (WinMini, MacMini), or the Magic Wand Keyboard; both provide for keyboard and mouse control.
Enlarged Keyboards
These keyboards are a larger version of the standard keyboard, in whole or in part. Larger keys may provide an easier target, as fewer key choices with clear key labels can provide a successful input method for many. The IntelliKeys keyboard is one example; it comes with 6 keyboard overlays and varying key layout designs and can be further customized with the use of Overlay Maker software.
Portable Keyboards
The last type of keyboard is one which addresses the portability needs of individuals with disabilities. A portable keyboard is one which can be used as a not-taker when battery-powered and then connected to a computer to download the information. The AlphaSmartâ is an example of a portable keyboard. It connects to the Apple, Mac, and IBM computers and can be used as the computer keyboard when it is connected to the computer.
Just like every conventional loudspeaker can also be used as a microphone, for some input devices there is a complimentary form where they can also be displays. However, just as few loudspeakers are used as microphones (so few, in fact, that most people forget - if they even knew - that this was possible), very few input devices incorporate this duality into their design. Force feedback devices are one exception. With them, the "display" is felt rather than seen. Touch screens and other direct input devices appear to have this property, but in fact, this is appearance only, since their input/output duality is accomplished by designing two separate technologies into one integrated package. The acoustic analogy would be integrating a microphone and speaker into one package, a bit like a telephone handset, rather than using the same transducer for both the microphone and speaker functions. It is interesting to note that this is not the case with force feedback devices since with them, the same motors that generate the force output also serve as the encoders that capture the actions of the user.
Recently a new class of device has started to emerge which is conceptually rooted in exploiting this input/output duality. They can be called Projection/Vision systems, and/or Projection/Scanning or Projection/Camera technologies. In the "pure" case, these are devices that use a laser, for example, to project and implimentation an image of the input controller - such as a slider or keypad - onto a surface. In doing so, they are performing a function analogous to an LCD displaying the image of a virtual device under a touch screen. However, in this case, the laser is also used to scan the same surface that it project and implimentationing onto, thereby enabling the device to "see" how your fingers, for example, are interacting with the project and implimentationed virtual device.
In a slightly less pure "hybrid" form, the project and implimentationion and scanning functions can be performed by two separate, but integrated technologies. For example, instead of a laser project and implimentationor, a conventional video or data project and implimentationor could be used, and an integrated video camera (supported by vision software) used for input.
Both the "pure" and "hybrid" classes of device have been used and have strengths and weaknesses. Since laser project and implimentationion is far less advanced than conventional data project and implimentationion, the hybrid solution sometimes has advantages on the display side. However, 2D and 3D scanning using lasers is far more developed than 2D and 3D vision using video based vision techniques. This is partially due to the degree to which the laser technology can extract 3D information. Going forward, one can expect laser project and implimentationion technology to advance extremely quickly, especially in its ability to deliver extremely small, low power, bright, relatively high resolution project and implimentationion capability. This will likely have a strong impact on how we interact with small portable devices, such as PDAs, mobile phones and even wristwatches. Not only does this technology provide a means to couple large (virtual) I/O transducers with small devices, it provides the potential for sharing and interacting with others, despite using devices as small as a wrist watch.
On the other hand, these technologies have strong potential on the other side of the scale, in large-scale interaction, where what is scanned are bodies in a room, rather than fingers on a surface, and the project and implimentationion surface may be the floor or ceiling of a room, rather than a desktop.
Besides the obvious, there are a couple of interesting challenges with this type of system. First, it is generally not sufficient to simply know where the fingers are over the display. One has to be able to distinguish the difference between pointing or hovering, versus activating. This must be reliable, and responsive. And, to avoid "the chess player's conflict" ("You touched that piece!", "No I didn't!!") the system and the user must agree as to if and when activation takes place. Also, since the device is virtual, a means (acoustic of visual) is likely needed to provide some form of feedback at the device level. Since, especially in the mobile case, the project and implimentationion surface, and hence the input control surface, is arbitrary, so there would be no opportunity for any tactile feedback, vertical or lateral. Of course, if the project and implimentationor was fixed, then there are a range of techniques that could be used to provide tactile feedback.
Electronic whiteboards that use project and implimentationion technologies coupled with touch screens, such as those available from Smart Technologies, and 3Com, for example, are related to this class of device. However, they differ in that the input transducer is integrated with the project and implimentationion surface, rather than with the project and implimentationor. This is a significant technological difference (but one which may be transparent to a user). The same could be said of touch screens; especially in the future as touch screens become thinner and more inobtrusive, such as if/when they are made with OLEDs, for example. That is, they could appear the same to the user as "pure" project and implimentationion vision systems. However, I treat touch screens and this latter class of project and implimentationion boards separately.
What is unique, distinct, or new, from the usage/user perspective of the type of project and implimentationion/vision systems that I highlight in this section is that they are not fixed in position. The same unit may project and implimentation/sense in different locations, on different surfaces, and in many cases be mobile. That is, there is no specific surface, other than the (perhaps) arbitrary surface on which one is project and implimentationing, on which the system operates. This is especially true of the miniature laser project and implimentationor/scanner systems. But it is even true of installed systems, such as the IBM steerable project and implimentationion/vision system. In this later case, while the project and implimentationor and vision systems are fixed in architural space, they can be directed to work on different surfaces/areas in the room.
Projection/Vision systems constitute an area where products are beginning to emerge. Below is a listing of some of the companies who are playing in this field. As well, there is a body of work emerging from the research community around this type of interaction.

Virtual Keyboard is just another example of todayâ„¢s computer trend of "smaller and faster". Computing is now not limited to desktops and laptops, it has found its way into mobile devices like palm tops and even cell phones. But what has not changed for the last 50 or so odd years is the input device, the good old qwerty keyboard. Alternatives came in the form of handwriting recognition, speech recognition, abcd input (for SMS in cell phones) etc. But they all lack the accuracy and convenience of a full-blown keyboard. Speech input has an added issue of privacy. Even folded keyboards for PDAs are yet to catch on. Thus a new generation of virtual input devices is now being paraded, which could drastically change the way we type.
Virtual Keyboard uses sensor technology and artificial intelligence to let users work on any surface as if it were a keyboard. Virtual Devices have developed a flashlight-size gadget that project and implimentations an image of a keyboard on any surface and letâ„¢s people input data by typing on the image. This system comprises of three modules, the sensor module, IR-light source and the pattern project and implimentationor .The device detects movement when fingers are pressed down. Those movements are measured and the device accurately determines the intended keystrokes and translates them into text. This is a set of clips that fit into your hand and try to sense the motion of the fingers and the hands (wrist) and translate them into keystrokes. The translation process also uses artificial intelligence. Once the keystroke has been decoded, it is sent to the portable device either by cable or via wireless.

The Virtual Keyboard uses light to project and implimentation a full-sized computer keyboard onto almost any surface, and disappears when not in use. Used with Smart Phones and PDAs, the VKey™ provides a practical way to do email, word processing and spreadsheet tasks, allowing the user to leave the laptop computer at home.
VKey technology has many applications in various high-tech and industrial
Sectors. These include data entry and control panel applications in hazardous and harsh environments and medical markets.
Projection key boards or virtual key boards claim to provide the convenience of compactness with the advantages of a full-blown QWERTY keyboard. An interesting use of such keyboards would be in sterile environments where silence or low noise is essential like operation theaters. The advantage of such a system is that you do not need a surface for typing, you can even type in plain air. The company's Virtual Keyboard is designed for anyone who's become frustrated with trying to put information into a handheld but doesn't want to carry a notebook computer around. There is also the provision for a pause function to avoid translating extraneous hand movements function, so that users can stop to eat ,drink etc ¦
It is also a superior desktop computer keyboard featuring dramatically easier to learn touch-typing and leaving one hand free for mouse or phone. Combination key presses ("chords") of five main and two extra control keys allow users to type at 25-60 words per minute, with possibly greater speeds achieved through the use of abbreviation expansion software. Most users, however, will find memorizing the chords easy and fun, with the included typing tutorial. The scanner can keep up with the fastest typist, scanning the project and implimentationed area over 50 times a second. The keyboard doesn't demand a lot of force, easing strain on wrists and digits. virtual keyboards solve the problem of sore thumbs that can be caused by typing on the tiny keyboards of various gadgets like PDAs and cell phones. They are meant to meet the needs of mobile computer users struggling with cumbersome, tiny, or nonexistent keyboards. It might help to prevent RSI injuries.
An infrared adapter allows PC usage without any driver software being necessary. The standard coin-sized lithium battery lasts about eight months before needing to be replaced.
The Virtual Keyboard uses an extremely durable material which is extremely easy to clean. The Virtual Keyboard is not restricted to the QWERTY touch-typing paradigm , adjustments can be done to the software to fit other touch-typing paradigms as well, such as the DVORAK keyboard. It will work with all types of Bluetooth enabled devices such as PDAs and smart phones, as well as wearable computers. Applications include computer/PDA input, gaming control, TV remote control, and musical applications.
Thus virtual keyboards will make typing easier, faster, and almost a pleasure.

Developer vkb

Its full-size keyboard also can be project and implimentationed onto any surface and uses laser technology to translate finger movements into letters. Working with Siemens Procurement Logistics Services Rechargeable batteries similar to those in cell phones power the compact unit .The keyboard is full size and the letters are in a standard format. As a Class 1 laser, the output power is below the level at which eye injury can occur.
Make the Canesta Keyboard, which is a laser project and implimentationed keyboard with which the same laser is also used to scan the project and implimentationion field and extract 3D data. Hence, the user sees the project and implimentationed keyboard, and the device "sees" the position of the fingers over the project and implimentationed keys. They also have a chip set, Electronic Perception Technology, which they supply for 3rd parties to develop products using the project and implimentationion/scanning technology. Canesta appears to be the most advanced in this class of technology and the only one who is shipping product. They have a number of patents pending on their technology.

Sense board Technologies
The Senseboard SB 04 technology is an extreme case of a hybrid approach. The sensing transducer is neither a laser scanner nor a camera. Rather, it is a bracelet-like transducer that is worn on the hands which captures hand and finger motion. In fact, as demonstrated, the technology does not incorporate a project and implimentationion component at all; rather, it relies on the user's ability to touch type, and then infers the virtual row and key being typed by sensing relative hand and finger movement. The system obviously could be augmented to aid non-touch typists, for example, by the inclusion of a graphic representation of the virtual keyboard under the hands/fingers. In this case, the keyboard graphically represented would not be restricted to a conventional QWERTY keyboard, and the graphical representation could be project and implimentationed or even on a piece of paper. I include it here as it is a relevant related input transducer which could be used with a project and implimentationion system. The technology has patents pending, and is currently in preproduction proof of
Concept form.

Sensors made of a combination of rubber and plastic are attached to the user's palms in such a way that they do not interfere with finger motions. Through the use of Bluetooth technology, the "typed" information is transferred wirelessly to the computer, where a word processing program analyzes and interprets the signals into readable text. The device is currently usable via existing ports on personal digital assistants (PDAs) from Palm and other manufacturers. Senseboard officials say it eventually will be compatible with most brands of pocket PCs, mobile phones and laptop computers.

KITTY, a finger-mounted keyboard for data entry into PDA's, Pocket PC's and Wearable Computers which has been developed here at the University of California in Irvine.

KITTY, an acronym for Keyboard-Independent Touch-Typing, is a Fingernounted keyboard that uses touch typing as a method of data entry. The device targets the portable computing market and in particular its wearable computing systems which are in need of a silent invisible data entry system based on touch typing .the new device combines the idea of a finger mounted coding device with the advantages of a system that uses touch typing.

InFocus is one of the leading companies in providing video and data project and implimentationors. Their project and implimentationors are conventional, in that they do not use laser technology. This has that advantage of delivering high quality colour images with a mature technology. However, it has the disadvantage of larger size, lower contrast, and higher power requirements, compared to laser project and implimentationion systems. In 2000, InFocus merged with Proxima, which had been one of its competitors. I include InFocus/Proxima in this survey not only because they make project and implimentationors. In their early days, Proxima developed one of the first commercially available project and implimentationion/vision systems. It was called Cyclops, and they still hold a patent on the technology. Cyclops augmented the project and implimentationor by adding a video camera that was registered to view the project and implimentationion area. The video camera had a bandpass filter over the lens which passed only the wavelength of a laser pointer. The system, therefore, enabled the user to interact with the project and implimentationed image, using a provided laser pointer as the input device. The camera detected the presence of the laser pointer on the surface, and calculated its coordinates relative to the currently project and implimentationed image. Furthermore, the laser pointer had two intensity levels which enabled the user to not only point, but to have the equivalent of a mouse button, by the vision system interpreting the two levels as distinguishing button up and down events.

Virtual Keyboard uses sensor technology and artificial intelligence to let users work on any surface as if it were a keyboard. Projection key boards or virtual key boards claim to provide the convenience of compactness with the advantages of a full-blown QWERTY keyboard. The company's Virtual Keyboard is designed for anyone who's become frustrated with trying to put information into a handheld but doesn't want to carry a notebook computer around.
Canesta appears to be the most advanced in this class of technology and the only one who is shipping product. Other products are KITTY, a finger-mounted keyboard for data entry into PDA's, Pocket PC's and Wearable Computers and KITTY, a finger-mounted keyboard for data entry into PDA's, Pocket PC's and Wearable Computers.
Thus virtual keyboards will make typing easier, faster, and almost a pleasure.

7. IEEE International Workshop on Projector-Camera Systems

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In computer systems, the actual processors, are more likely to become outdated than to actually wear out. But there are parts of a computer system that are more susceptible to wear and tear. Understandably, these are the parts that receive the most use – the parts that you pound on each day. Yes, keypad is likely to wear out long before the rest of your computer system.
As the technology advances, more and more systems are introduced which will look after the user’s comfort. Few years before hard switches were used as keys. Now-a-days soft touch keypads are much popular in the market. These keypads give an elegant look, they give a better feel.
They are dust-proof and has got much more life than the other keypads. Thus we see that the new technology always has more benefits and is more user-friendly.
We are presenting here a next generation technology in this area, which is the Virtual Keypad. As the name suggests the virtual keypad has no physical appearance.
There is a frame which is empty or filled with air. The area inside the frame is divided into small equal areas, each representing a key. When the user wants to press a key, what he has to do is simply place his finger at the appropriate position in the frame, in other words on the virtual keypad and the desired key will be pressed.
Infra Red Theory
Infrared (IR) radiation is electromagnetic radiation whose wavelength is longer than that of visible light, but shorter than that of terahertz radiation and microwaves. The name means "below red" (from the Latin infra, "below"), red being the color of visible light with the longest wavelength. Infrared radiation has wavelengths between about 750 nm and 1 mm, spanning three orders of magnitude. Humans at normal body temperature can radiate at a wavelength of 10 micrometres.
Infrared imaging is used extensively for both military and civilian purposes. Military applications include target acquisition, surveillance, night vision, homing and tracking. Non-military uses include thermal efficiency analysis, remote temperature sensing, short-ranged wireless communication, spectroscopy, and weather forecasting. Infrared astronomy uses sensor-equipped telescopes to penetrate dusty regions of space, such as molecular clouds; detect cool objects such as planets, and to view highly red-shifted objects from the early days of the universe.
At the atomic level, infrared energy elicits vibrational modes in a molecule through a change in the dipole moment, making it a useful frequency range for study of these energy states. Infrared spectroscopy examines absorption and transmission of photons in the infrared energy range, based on their frequency and intensity.
Infrared are the waves having frequencies higher than the red light frequency. Thus the input to the IR transmitter should be a frequency. The infra red rays have the heating effect.
The frequency can be generated from any astable multivibrator which generates continuous pulses. These pulses cannot be fed directly to the IR transmitter as the current capacity is very low of such oscillators. Thus to increase the current capacity amplifiers are required. So a simple transistor as an amplifier can be used to strengthen the signal. The IR transmitter is to be placed in the collector path so that the amplified current is passed through the IR transmitter. The duty cycle should be greater than 50% to achieve the best results.
To avoid any interference from other IR emitting sources such as heaters, signal bits are modulated with a stable 30-40kHz carrier frequency and transmitted using an IR diode.
The IR signal is detected and demodulated by TSOP1738, which is a photo detector and preamplifier in one package that demodulates IR signals. Thus any remote signal with a carrier frequency close to 38 kHz can be detected and decoded. The output of the IR detector is high/low corresponding to the incoming IR signal.
Fundamental Differences Between Microprocessors & Microcontrollers
1. Microprocessors are intended to be general purpose digital computers where as Microcontrollers are intended to be special purpose digital controllers.
2. Microprocessors contain CPU, memory, Addressing circuits & interrupt handling circuits. Microcontrollers have these features as well as timers, parallel & serial I/O and internal RAM & ROM.
3. Microcontroller models vary in data size from 4 to 32 bits. 4-bit units are produced in huge volumes for very simple applications, and 8-bit units are more versatile. 16 & 32-bits units are used in high speed control & signal processing applications.
4. Many modes feature programmable pins that allow external memory to be added with loss of I/O capability.
Existing Keypad / Keyboard
No one has to stick with the standard keyboard that comes with the computer. There are many options to consider. Your choice of keyboard is a very personal matter.
1.Projection Keypad
Projection keypads or virtual keypads claim to provide the convenience of compactness with the advantages of a full-blown qwerty keyboard. These are not real keypads, but virtual ones that can be project and implimentationed on any surface. The ‘Keypad’ tracks the finger movements and processes that information to decipher the intended keystroke. Such systems can also function as mouse. One of the players in this area is Canseta with their Electronic perception system.
2. Canseta keypad
1. The Integrated Canesta Keypad is based on a controller and two optical components that project and implimentation the image of a keypad onto any flat surface and use a light source to track the movement of fingers on that image.
2. Electronic Perception Technology
3. Made up of three components.
2. Pattern Projector is used to project and implimentation light onto a flat surface, forming a keypad layout or a custom layout of your choosing.
3.2. An IR light source bathes the keypad in an infrared light.
Sensory module picks up finger movements over the keys. The information picked up is formed into a 3D image with motion and translated into standard keypad input data.
3. Roll-up Keyboard
Great for traveling!
Roll-up for easy storage
Dust and moisture proof
Windows® compatible
CE and FCC tested and approved
Standard 104 keyboard
Lifetime: 15,000,000 keystrokes
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A virtual keyboard is a software and/or hardware component that allows a user to enter characters.
A virtual keyboard can usually be operated with multiple input devices, which may include an actual keyboard, a computer mouse, a headmouse, and an eyemouse.
System Architecture

physical keyboards with distinct keys comprising electronically changeable displays integrated in the keypads.
virtual keyboards with touch screen keyboard layouts or sensing areas.
optically project and implimentationed keyboard layouts or similar arrangements of "keys" or sensing areas.
optically detected human hand and finger motions.
JavaScript virtual keyboards used to translate the input from one keyboard layout to another.
Design Concept
A laser or beamer project and implimentations visible virtual keyboard onto level surface.
A sensor or camera in the project and implimentationor picks up finger movements.
Detected co-ordinates determine actions or characters to be generated.
The keyboard picks up finger movements and triangulates them into a keystroke with a great degree of accuracy.
Uses low-cost semiconductor-based sensors.
The chipset simply outputs RS232 serial keystrokes, and does not require a specific CPU.
Personal Digital Assistants
Cellular Telephones
Laptops & Tablet PCs
Space saving Computers
Industrial Environments
Test Equipment
Larger battery backup
Very tiny size
Experimental Results
Fold-up Keyboards
Fabric Keyboards
Thumb Keyboards
Screen keyboards
Pen Input
Speed of text entry
Typing surface
Repetitive strain injuries
Keyboard layouts
Alternative layouts.
Dependency on optical source.
Dependency on wireless network.
High response time.
More complex installation.
Cell phones.
Desktop & Laptop etc.
Industrial machines.
Further advancements.
A virtual keyboard system based on a true-3D optical range camera is presented.
Keystroke events are accurately tracked independently on the user.
Future Scope
To make it more easy & more comfortable.
Make it more widespread and commonly used with all systems.
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virtual keyboard

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The devices that virtual are nothing but light. Which means there is no breakage, no cleaning, no wiring, no room to take up and no infection transfer. It is keyless, button-less, and switch-less. The keyboard's size and layout can be reconfigured in software allowing for numerous keypad configurations with the same hardware. Mouse or trackball capability can be built in without additional hardware.

As the demand for computing environments evolves, new human-computer interfaces have been implemented to provide multiform interactions between users and machines. Nonetheless, the basis for most human-to-computer interactions remains the binomial keyboard/mouse. Ordinary keyboards however, to be comfortable and effective, must be reasonably sized. Thus they are cumbersome to carry and often require wiring. To overcome these problems, a smaller and more mobile touch-typing device [1] has been proposed which does not have physical support. This device is known as virtual keyboard or zero-form-factor interface.

In this paper, a complete system is presented which mimics a QWERTY keyboard on an arbitrary surface. The system consists of a pattern project and implimentationor and a true-3D range camera for detecting the typing events. We exploit depth information acquired with the 3D range camera and detect the hand region using a pre-computed reference frame. The fingertips are found by analyzing the hands’ contour and fitting the depth curve with different feature models. To detect a keystroke, we analyze the feature of the depth curve and map it back to a global coordinate system to find which key was pressed. These steps are fully automated and do not require human intervention. The system can be used in any application requiring zero form factor and minimized or no contact with a medium, as in a large number of cases in human-to-computer interaction, virtual reality, game control, 3D designs, etc.

A virtual keyboard system based on true-3D optical range camera is presented. Keystroke events are accurately tracked independently on the user. No training is required by the system that automatically adapts itself to the background conditions when turn on.
No specific hardware must be worn and in principle no dedicated goggles are necessary to view the keyboard since it is project and implimentationed onto an arbitrary surface by optical means .The feedback text and graphics may be integrated with such project and implimentationor, thus enabling truly virtual working area. Experiments have shown the suitability of the approach which achieves high accuracy and speed. The development of man-machine interfaces to control devices with the eyes could be of great impact in handicapped individuals. In this paper a non-obstructive interface is proposed to detect and track iris position based on digital image processing techniques, templates and a reference point mounted near the eye. The position of the iris is detected in four steps: reference detection, iris center detection, iris position computation relative to the reference and determination of the eye position within the virtual keyboard. The position of the iris is project and implimentationed over a virtual keyboard and it is determined the maximum number of keys that the system is able to discriminate.
A virtual keyboard is actually a key-in device, roughly a size of a fountain pen, which uses highly advanced laser technology, to project and implimentation a full sized keyboard on to a flat surface. Since the invention of computers they had undergone rapid miniaturization. Disks and components grew smaller in size, but only component remained same for decades – its keyboard. Since miniaturization of a traditional keyboard is very difficult we go for virtual keyboard. Here, a camera tracks the finger movements of the typist to get the correct keystroke. A virtual keyboard is a keyboard that a user operates by typing on or within a wireless or optical – detectable surface or area rather than by depressing physical keys.


Computers have undergone rapid miniaturization from being a 'space saver' to 'as tiny as your palm'. Disks and components grew smaller in size, but one component still remained the same for decades - it's the keyboard. Miniaturization of keyboard had proved nightmare for users. Users of PDAs and smart phones are annoyed by the tiny size of the keys. The new innovation Virtual Keyboard uses advanced technologies to project and implimentation a full-sized computing key-board to any surface. This device has become the solution for mobile computer users who prefer to do touch-typing than cramping over tiny keys. Typing information into mobile devices usually feels about as natural as a linebacker riding a Big Wheel. Virtual Keyboard is a way to eliminate finger cramping. All that's needed to use the keyboard is a flat surface. Using laser technology, a bright red image of a keyboard is project and implimentationed from a device such as a handheld. Detection technology based on optical recognition allows users to tap the images of the keys so the virtual keyboard behaves like a real one. It's designed to support any typing speed.

The Virtual Laser Keyboard (VKB) leverages the power of laser and infrared technology and project and implimentations a full-size keyboard onto any flat surface. As you type on the laser project and implimentationion, detection technology based on optical recognition enables the user to tap the images of the keys, complete with realistic tapping sounds, which feed into the compatible Bluetooth enabled PDA, Smart phone, laptop or PC. Unlike many small snap-on keyboards for PDAs.


We are witnesses of new technology improvements that are surprising us every day when we hear about them or even look at them. The computers and computer’s technology revolutionize the world and the way of life. Since the beginning in the 50’s, every new achievement in this section was accepted by the vast masses of people which were expecting new improvements with huge hope for making business and life easier and more successful. In this century, the computers rule the world. Beginning from the first computer ENIAC, which proportions were huge, the technology came up with microchips, tiny devices which are hundred times smaller then the basic of the structure of ENIAC, the electronic tube. The technology of creating microchips, allows us to create smaller devices like CPU’s, Integrated Circuits, Microcontrollers, and so on…
From other side, the classic science in the same time was making very important researches and discoveries, especially physics. The physicist discovered laser rays and sensors of the same rays, which are getting more sophisticated and more powerful.
If we put these two parts of science in one, we will have more than hundred products which are making our life easier, more successful and more secured. Products like this are IR, Bluetooth transmitters and receivers, optical mouse, LCD Projectors, Large Video Beams and the latest gadget of the technology called Virtual Laser Keyboard. This non-physical keyboard is implementing optics from physics and microcontrollers form electronics and programming. The main difference is that the Virtual Laser Keyboard physically is not present. An optical virtual keyboard has been invented by IBM engineers in 1992.


A virtual keyboard is actually a key-in device, roughly a size of a fountain pen, which uses highly advanced laser technology, to project and implimentation a full sized keyboard on to a flat surface. Since the invention of computers they had undergone rapid miniaturization. Disks and components grew smaller in size, but only component remained same for decades -its keyboard. Since miniaturization of a traditional keyboard is very difficult we go for virtual keyboard. Here, a camera tracks the finger movements of the typist to get the correct keystroke. A virtual keyboard is a keyboard that a user operates by typing on or within a wireless or optical -dectable surface or area rather than by depressing physical keys.
Unlike many small snap-on keyboards for PDAs, the Virtual Laser Keyboard provides a full-size QWERTY keyboard. It is also smaller and more convenient to use than the folding-type keyboards made by some manufacturers and similar to them in functionality. There are no mechanical moving parts whatsoever in the Virtual Laser Keyboard. It provides a project and implimentationed image that is the perfect portable input device for PDAs. It's similar in responsiveness to regular keyboards.

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