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Size and weight1

Height:9.56 inches (242.8 mm)Width:7.47 inches (189.7 mm)Depth:0.5 inch (13.4 mm)Weight:1.5 pounds (.68 kg) Wi-Fi model;1.6 pounds (.73 kg) Wi-Fi + 3G model

Display

  • 9.7-inch (diagonal) LED-backlit glossy widescreen Multi-Touch display with IPS technology
  • 1024-by-768-pixel resolution at 132 pixels per inch (ppi)
  • Fingerprint-resistant oleophobic coating
  • Support for display of multiple languages and characters simultaneously

Wireless and Cellular

Wi-Fi model
  • Wi-Fi (802.11 a/b/g/n)
  • Bluetooth 2.1 + EDR technology
Wi-Fi + 3G model
  • UMTS/HSDPA (850, 1900, 2100 MHz)
  • GSM/EDGE (850, 900,1800, 1900 MHz)
  • Data only2
  • Wi-Fi (802.11 a/b/g/n)
  • Bluetooth 2.1 + EDR technology

Location

  • Wi-Fi
  • Digital compass
  • Assisted GPS (Wi-Fi + 3G model)
  • Cellular (Wi-Fi + 3G model)

In the Box

  • iPad
  • Dock connector to USB cable
  • 10W Power Adapter
  • Documentation

Environmental Status Report

iPad embodies Apple’s continuing environmental progress. It is designed with the following features to reduce environmental impact:

  • Arsenic-free display glass
  • BFR-free
  • Mercury-free LCD display
  • PVC-free
  • Recyclable aluminum and glass enclosure

Capacity3

  • 16GB, 32GB, or 64GB flash drive

Processor

  • 1GHz Apple A4 custom-designed, high-performance, low-power system-on-a-chip

Sensors

  • Accelerometer
  • Ambient light sensor

Audio Playback

  • Frequency response: 20Hz to 20,000Hz
  • Audio formats supported: AAC (16 to 320 Kbps), Protected AAC (from iTunes Store), MP3 (16 to 320 Kbps), MP3 VBR, Audible (formats 2, 3, and 4), Apple Lossless, AIFF, and WAV
  • User-configurable maximum volume limit

TV and Video

  • Support for 1024 x 768 with Dock Connector to VGA adapter; 576p and 480p with Apple Component A/V Cable, 576i and 480i with Apple Composite Cable
  • H.264 video up to 720p, 30 frames per second, Main Profile level 3.1 with AAC-LC audio up to 160 Kbps, 48kHz, stereo audio in .m4v, .mp4, and .mov file formats; MPEG-4 video, up to 2.5 Mbps, 640 by 480 pixels, 30 frames per second, Simple Profile with AAC-LC audio up to 160 Kbps, 48kHz, stereo audio in .m4v, .mp4, and .mov file formats

Mail attachment support

  • Viewable document types: .jpg, .tiff, .gif (images); .doc and .docx (Microsoft Word); .htm and .html (web pages); .key (Keynote); .numbers (Numbers); .pages (Pages); .pdf (Preview and Adobe Acrobat); .ppt and .pptx (Microsoft PowerPoint); .txt (text); .rtf (rich text format); .vcf (contact information); .xls and .xlsx (Microsoft Excel)

Languages

  • Language support for English, French, German, Japanese, Dutch, Italian, Spanish, Simplified Chinese, Russian
  • Keyboard support for English (US) English (UK), French (France, Canada), German, Japanese (QWERTY), Dutch, Flemish, Spanish, Italian, Simplified Chinese (Handwriting and Pinyin), Russian
  • Dictionary support for English (US), English (UK), French, French (Canadian), French (Swiss), German, Japanese, Dutch, Flemish, Spanish, Italian, Simplified Chinese (Handwriting, Pinyin), Russian

Accessibility

  • Support for playback of closed-captioned content
  • VoiceOver screen reader
  • Full-screen zoom magnification
  • White on black
  • Mono audio

Battery and Power4

  • Built-in 25Whr rechargeable lithium-polymer battery
  • Up to 10 hours of surfing the web on Wi-Fi, watching video, or listening to music
  • Charging via power adapter or USB to computer system

Input and Output

  • Dock connector
  • 3.5-mm stereo headphone jack
  • Built-in speakers
  • Microphone
  • SIM card tray (Wi-Fi + 3G model only)

External buttons and controls

  • On/Off, Sleep/wake
  • Mute
  • Volume up/down
  • Home

Mac system requirements

  • Mac computer with USB 2.0 port
  • Mac OS X v10.5.8 or later
  • iTunes 9.0 or later
  • iTunes Store account
  • Internet access

Windows system requirements

  • PC with USB 2.0 port
  • Windows 7, Windows Vista; Windows XP Home or Professional with Service Pack 3 or later
  • iTunes 9.0 or later
  • iTunes Store account
  • Internet access

Environmental requirements

  • Operating temperature: 32° to 95° F (0° to 35° C)
  • Nonoperating temperature: -4° to 113° F (-20° to 45° C)
  • Relative humidity: 5% to 95% noncondensing
  • Maximum operating altitude: 10,000 feet (3000 m)

iPad Accessories


iPad Keyboard Dock

The Keyboard Dock is a dock for charging your iPad, integrated with a full-size keyboard. The dock has a rear 30-pin connector, which lets you connect to an electrical outlet using a USB Power Adapter, sync to your computer, and use accessories like the Camera Connection Kit. And an audio jack lets you connect to a stereo or powered speakers.

THE BEST WAY TO EXPERIENCE THE WEB,EMAIL,PHOTOS AND VIDEOS.

All of the built-in apps on iPad were designed from the ground up to take advantage of the large, Multi-Touch screen. And they’ll work in any orientation. So you can do things with these apps you can’t do on any other device.


Mail

See and touch your email in ways you never could before. In landscape, you get a split-screen view, showing both an opened email and the messages in your Inbox. To see the opened email by itself, you just turn iPad to portrait, and the email automatically rotates and fills the screen. No matter which orientation you use, you can scroll through your mail, compose a new email using the large, on-screen keyboard, or delete messages, with nothing more than a tap and a flick. If someone emails you a photo, you can see it right in the message. You can also save the photos in an email directly to the built-in Photos app. And iPad will work with all the popular email providers, including MobileMe, Yahoo! Mail, Gmail, Hotmail, and AOL.



Photos

With its crisp, vibrant display, and its unique software features, iPad is an extraordinary way to enjoy and share your photos. For example, the new Photos app displays the photos in an album as though they were in a stack. Just tap or pinch to open the stack, and the whole album opens up. Then you can flip through your pictures, zoom in or out, or watch a slideshow. You can even use your iPad as a beautiful digital photo frame while your iPad is docked or charging. And there are lots of ways to import photos: you can sync them from your computer, download them from an email, or import them directly from your camera using the Apple Camera Connection Kit.


Video

The large, high-resolution screen makes iPad perfect for watching any kind of video: from HD movies and TV shows, to podcasts and music videos. You can also easily move between wide-screen and full-screen with a double-tap. And because it’s essentially one big screen, with no buttons or anything to distract you, the picture fills your line of sight. So you feel completely immersed in what you’re watching.



YouTube

The YouTube app organizes videos so they’re really easy to see and navigate. To watch one, you just tap it. When you’re watching in landscape, the video will automatically play in full screen. And with its high-resolution display, the latest YouTube HD videos will look amazing on iPad.



iPod

With the iPod app, all your music is literally at your fingertips. You can browse by album, song, artist, or genre, with a simple flick. To play a song, just tap it, and the now playing screen will show the album art at full size. Then you can listen to your music with either the powerful built-in speaker, or with wired or Bluetooth wireless headphones.

iTunes

Just tap on the iTunes Store icon, and you can browse and buy music, TV shows, podcasts — or buy and rent movies — wirelessly, right from your iPad. There are thousands of movies and TV shows (in both standard and high definition), along with thousands of podcasts, and millions of songs to choose from. You can even preview songs before you buy them. And you can sync iPad with the content you already have in your iTunes library on your Mac or PC.

App Store

iPad will run almost 140,000 apps from the App Store. Everything from games to business apps, and more. And new apps that have been designed just for iPad are highlighted, so you can easily find the ones that take full advantage of its features. Just tap the App Store icon on the screen and you’ll be able to browse, buy, and download apps wirelessly, right to the iPad.

iBooks

The iBooks app is a great, new way to read and buy books.1 Just download the app for free from the App Store, and you’ll be able to buy everything from classics to bestsellers from the built-in iBookstore. Once you’ve bought a book, it’s displayed on your Bookshelf. To read it, all you have to do is tap on it and it opens up. The high-resolution, LED-backlit screen displays everything in sharp, rich, color, so it’s very easy to read, even in low light.

Maps

See more of the world with high-resolution Satellite and Street View images. You can even see topography with the new Terrain view. You can also search for a nearby business type (for example, “Restaurant”) and then tap on that business to see the route and directions from your current location.

Notes

With its expansive display and large, on-screen keyboard, iPad makes jotting down notes easy. In landscape mode, you get not only a note-taking page but a list of all your notes. It even circles the current note in red. So you can see where you are at a glance.

Calendar

iPad makes it easy to keep on schedule by displaying Day, Week, Month or List views of your calendar. That way, you can see an overview of a whole month, or the details of a single day. iPad will even show multiple calendars at once, so you can manage work and family calendars at the same time.

Contacts

The Contacts app on iPad makes finding names, numbers and other important information quicker and easier than ever before. A new view lets you see both your complete contact list, and a single contact, simultaneously. Need directions? Just tap on an address inside a contact and it’ll open Maps.

Home Screen

The Home Screen gives you one-tap access to everything on iPad. You can also customize your Home Screen by adding your favorite apps and websites, or using your own photos for the background. And you can move apps around to arrange them in any order you want.

Spotlight Search

Spotlight Search allows you to search across iPad, and all of its built-in apps. Including Mail, Contacts, Calendar, iPod, and Notes. It’ll even search apps you’ve downloaded from the App Store. So no matter what you’re looking for, it’s never more than a few taps away.




When we first spotted this new cam from Seitz, our jaws hit the floor and rebounded a few times. No, it's not the highest megapixel count we've seen, but this megalith of a camera shoots at 160 megapixels to create a native 6 x 17-cm image, is packed with an ISO range from 500 to 10,000, a read-out speed of 300MB per second, and a shutter speed of 1/20,000th second. So the next question is, how are you going to store such huge image files (nearly 1 GB per uncompressed full panorama), certainly not on your off-the-shelf 16GB SDHC card, nor the upcoming 64GB CompactFlash cards -- but rather via gigabit Ethernet to Seitz's "state-of-the-art computer system", which translates to a decked out Mac mini. So what will this much imaging power cost you? 45,500 Swiss francs ($36,266) for the "mobile version" and 42,300 Swiss francs ($33,715) for the "studio version", and we're assuming that the Mac mini is included for that price. However, given that this camera isn't quite what you'd front for a down payment on a Swiss châlet, the 6x17 Digital surely must be affordable to average working-class Zürich banker set, no? You can catch a glimpse of this bad boy at the upcoming Photokina expo in Germany, or can throw down some serious Swiss coinage now to pre-order this gargantuan cam, which won't become available until early 2007. Also, be sure to click through for two more glamour shots.




What is a wave?


A wave is equal parts conversation and document. People can communicate and work together with richly formatted text, photos, videos, maps, and more.

A wave is shared. Any participant can reply anywhere in the message, edit the content and add participants at any point in the process. Then playback lets anyone rewind the wave to see who said what and when.

A wave is live. With live transmission as you type, participants on a wave can have faster conversations, see edits and interact with extensions in real-time.

What is Google Wave?

Google Wave is a product that helps users communicate and collaborate on the web. A "wave" is equal parts conversation and document, where users can almost instantly communicate and work together with richly formatted text, photos, videos, maps, and more. Google Wave is also a platform with a rich set of open APIs that allow developers to embed waves in other web services and to build extensions that work inside waves.


screenshot2


Some key technologies in Google Wave



What is the Google Wave API?

The Google Wave API allows developers to use and enhance Google Wave through two primary types of development:

  • Extensions: Build robot extensions to automate common tasks or build gadget extensions to provide a new way for users to interact
  • Embed: Make your site more collaborative by dropping in a Wave

Google Wave is currently available in a developer preview as the APIs and product continue to evolve. Accounts on the developer sandbox will be given out to people intending to build with the Google Wave APIs prior to the public release.


http://www.made-in-china.com/image/2f0j00selEBJRzfPcyM/Mobile-Phone-N99-.jpg
Product Description Specifications:
Model: N99
Band: Dual-band, GSM 900 / 1800 MHz
Screen: Resolution: 240 * 320
2.6" Touchscreen LCD / 260K colors TFT
Features: Dual Sim Card & two call standby
Weight: 120g
Dimensions: 106.5 * 51 * 16
Battery: 1150 mAH Li-Battery for EXTRA-LONG battery life
Talk Time: 8 Hours
Standby Time: 400 Hours
Video Camera
Camera: 2 MP camera on back side
Ring tones: 64 bit
Supports Bluetooth
Dual Speakers with 3D sound

Features:
MP3 (mp3, AAc, WAV, AMR, MIDI, & IMDY formats)
MP4
WAP 2.0 (web browsing)
SMS (text messaging)
MMS (multimedia message servicing - send picture, voice, & text messages)
Memory: 256 mb

Supports maximum 2 GB T-flash card
Phone book (stores up to 400 numbers)
Incoming call options (set specific rings, photos, or even videos for individual callers)
Assign MP3 files as ring tones
Languages: English & Chinese (English standard) and other languages.
Call waiting
Voicemail
Pre-loaded games
Calculator
World clock
Unit conversion
Exchange rate conversion
Calendar
Health management function
Memo / To do list
Alarm
Voice Recording
Image Viewer
File management
Key stroke recognition & keyboard input

Package includes:
GSM Dual-Band Cell/Mobile Phone
Lithium Batteries (2 pieces 1800mAh)
Power Adaptor
USB DataCable
256mb TF card (Installed in the phone)
Handwriting Stylus
Earphone
Manual

nokia-n98-02.jpg

Here are the made up specs for this made up phone:

  • 7.2 mega pixel camera with Carl Zeiss lens
  • 5x optical zoom (20x with digital)
  • 3.5″ inch touch screen
  • integrated GPS receiver
  • integrated TNT receiver (Télévision Numérique Terrestre - this is what French call digitally broadcast TV channels)
  • Symbian S70 3rd edition
  • 3D graphics accelerator
  • bluetooth
  • Wi-Fi (b,g,n)
  • HSDPA
  • video recording at 720×576 and 30fps
  • Multimedia support

5x optical zoom made us laugh the hardest. It is not mentioned in this list but I’m sure the N98 will be able to handle microSD cards and have a battery that lasts 12 hours on a single charge.




FED means field emission display

A field emission display is a type of flat panel display using field emitting cathodes to bombard phosphor coatings as the light emissive medium.

Field emission displays are very similar to cathode ray tubes, however they are only a few millimeters thick. Instead of a single electron gun, a field emission display (FED) uses a large array of fine metal tips or carbon nanotubes (which are the most efficient electron emitters known), with many positioned behind each phosphor dot, to emit electrons through a process known as field emission. Because of emitter redundancy, FEDs do not display dead pixels like LCDs even if 20% of the emitters fail. Sony is researching FED because it is the flat-panel technology that comes closest to matching the picture of a CRT.

Like LCDs, FEDs are energy efficient and could provide a flat panel technology that features less power consumption than existing LCD and plasma display technologies. They can also be cheaper to make, as they have fewer total components. As of yet, however, there are no consumer production models available in the United States, although small demo panels have been produced.

A field emission display (FED) is a low power, flat cathode ray tube type display that uses a matrix-addressed cold cathode to produce light from a screen coated with phosphor materials. The principle of the field emission display is similar to that of the traditional cathode ray tube display. Field emission displays, like cathode ray tubes, display a color image by emitting light of a predetermined color through the bombardment of electrons onto a field emitter array (FEA) coated with phosphor. They both emit electrons to hit the fluorescent medium on a substrate in vacuum. Electron emission includes field electron emission, secondary electron emission, and photoelectric emission, as well as thermionic emission. A cold cathode is the cathode that performs electron emission by field electron emission, which occurs due to a tunnel effect when a strong electric field is applied to the vicinity of the surface of a substance to lower the potential barrier on the surface. The cathode ray tube display emits electron beams by a single electron gun and controls the direction of the electron beams by using a polarization plate. Instead, the field emission display is composed of hundreds of thousands of active cold emitters, each of which corresponds to a pixel independently, so no polarization plate is needed. Field emission displays (FEDs) apply a strong electric field from a gate to a field emitter disposed on a cathode layer at regular intervals, thereby emitting electrons from the field emitter, colliding the electrons with a phosphor material of an anode layer, and emitting .light The cold cathode electron source is broadly divided into a field emission electron source and a hot electron type electron source. The former includes a spindt type electron source, a surface conduction type electron source and a carbon nanotube type electron source. The latter includes an MIM (metal-insulator-metal) type electron source stacked with metal-insulator-metal and an MIS (metal-insulator-semiconductor) type electron source stacked with metal-insulator-semiconductor. When displaying an image in the field emission display, a driving method called a line sequential scanning scheme is used standardly. Display in each of the frames is performed for each scan line (horizontally). All the cold cathode electron sources corresponding to the number of data lines on the same scan line are operated at the same time.

Field emission display (FED) technology has been proposed as a display technology that enjoys the advantages of allowing for wide viewing angles as well as being thin and light weight. The field emission display has the advantage of high image quality found with the conventional cathode ray tube display. Also, the field emission display has advantages of high yield, fast reacting time, good performance in displaying coordination, having high brightness, light and thin structure, wide range of color temperature, high mobile efficiency, excellent distinguishability of tilted direction, etc. in comparison with the conventional liquid crystal display that has the disadvantages of blurred view angle, limited range of usable temperature, and slow reacting time. Moreover, the field emission display emits light spontaneously. Field emission display has not only soft picture, rapid reaction, and clear brightness like CRT, but also possesses characteristics of lightness of flat display and low performance consumption. FED has advantages of light weight and thin profile, like liquid crystal display (LCD), and advantages of high brightness and self luminescence, like cathode ray tube (CRT). The image quality of the field-emission display is similar to that of the conventional cathode ray tube (CRT) display, while the dimension of the field-emission display is much thinner and lighter compared to the cathode ray tube display. Being self-illuminant, field emission display does not require a back light source like the liquid crystal display. In addition to the better brightness, the viewing angle is broader, power consumption is lower, response speed is faster, and the operation temperature range is larger. Through the construction of a high efficiency fluorescent film, the field emission display provides outstanding brightness performance even outdoors so it is thought as a quite competitive display panel and is even likely to replace the liquid crystal display. Field emission devices are used in a number of different applications, including displays, e-beam lithography, chemical analysis and space propulsion.

http://images.techtree.com/ttimages/story/90721_phonz_600x600.jpg

Nokia has unveiled its Supernova series with four new models namely 7210, 7310, 7510 and 7610 targeting the fashion conscious people.

There are a total of 4 phones announced at the moment, the 7210, 7310, 7510, and 7610. The 7210 and 7310 are candybars, the 7510 a flip phone and the 7610 is a slider.

The 7210 is a tri-band GSM phone with EDGE, along with a 2 megapixel camera and FM radio, set to launch in Q3 for around $189.

The 7310 is much like the 7210, but supports Nokia's Xpress-On faceplates, TV-out as well as support for GSM 850. These additional features add another $55 to the cost of the phone, which surprisingly, is available now.

The 7510 sports the ever-popular flip design, and will have similar specs to the 7310, and is scheduled for Q4 at around $283 and in colors such as “Fatal Red”.

And last, but certainly not least, the 7610 features a slider design, along with a juicy 3.2 megapixel camera, and is scheduled for next quarter at $354.

Intel's new Atom processor
Intel have announced the Intel Atom processor - a new family of low-power processors designed specifically for mobile Internet devices (MIDs) and a new class of simple and affordable Internet-centric computers arriving later this year. The company also announced the Intel Centrino Atom processor technology for MID platforms, consisting of multiple chips that enable the best Internet experience in a pocketable device.

The Intel Atom processor is based on an entirely new micro-architecture designed specifically for small devices and low power, while maintaining the Intel Core 2 Duo instruction set compatibility consumers are accustomed to when using a standard PC and the Internet. The design also includes support for multiple threads for better performance and increased system responsiveness. All of this on a chip that measures less than 25 mm², making it Intel’s smallest and lowest power processor yet. These new chips, previously codenamed Silverthorne and Diamondville, will be manufactured in Intel’s 45nm process with hi-k metal gate technology. The chips have a thermal design power (TDP) specification in 0.6-2.5 watt range and scale to 1.8GHz speeds depending on customer need. By comparison, today’s mainstream mobile Core 2 Duo processors have a TDP in the 35-watt range. The Intel Centrino Atom processor technology, formerly codenamed “Menlow,” includes the Intel Atom processor, a low-power companion chip with integrated graphics, a wireless radio, and thinner and lighter designs.

In addition to the MID opportunity, Intel believes the demand for a new category of low-cost, Internet-centric mobile computing devices dubbed “netbooks” and basic Internet-centric desktop PCs dubbed “nettops,” will grow substantially over the next several years and the Intel Atom processor is designed to meet the needs of these new market segments. Intel said the Intel Atom processor also has potential for future revenue opportunities in consumer electronic devices, embedded applications and thin clients.

for more info plz visit INTEL

cleaning%20your%20lcd%20monitor.png
Flat Panel Liquid Crystal Display (LCD) Screens are now commonplace in the industry with the major computer companies shipping them to customers who purchase new computer systems. And as a result of the falling prices of these LCD Screens, Notebooks sales have been steadily increasing.below is a technical brief depicting how to properly clean and maintain your LCD Screen.

First of all Turn off the computer or display.

The major computer outlet stores are now starting to carry LCD cleaners for Flat Panel Monitors and Notebooks that do not contain the chemicals found in some commercial glass cleaners. These cleaners will definitely do the job nicely, but you do have to purchase them. If you do not wish to purchase these factory made cleaners, then you can clean your LCD Screen in the following manner.

You can use Water,Water with a tiny amount of soft liquid soap,Isopropyl Alcohol,Hexane,Petroleum Benzine,Commercial glass cleaners that do not contain ammonia.
Avoid using Acetone,Ammonia,Ethyl acid,Ethyl Alcohol,Methyl chloride,Toluene,Commercial glass cleaners containing ammonia.

You should clean your LCD Screen display by applying the cleaner to a soft, clean cloth. Then you should wipe the cloth across the display from left to right, moving from the top of the display down to the bottom of the display. If your display contains grease or some other contaminant, then you should dampen your cloth with water instead of a commercial cleaner as the cleaner may smear the contaminants across the screen.

General Maintenance: You should avoid subjecting your LCD Screen display to extreme temperatures and humidity and avoid exposures to direct sunlight. You should also avoid physical shocks to your display. If you have a notebook, then you should avoid stacking books or other objects upon the notebook with the screen closed etc.

Runs on Windows 95 / 98 / Me / 2000 / NT / XP / Vista

Free Art Plus Digital Photo Recovery tool can help you recover lost images from corrupted or accidentally formatted digital camera memory cards.

  • Works with ALL types of memory cards!
  • It's able to recover images from formatted cards!
  • Reads corrupted cards (even if they're not recognized by Windows)!
  • Recovers JPG, TIF and most of RAW files!
Program should be able to read all memory cards currently available on the market and recover lost JPG, TIF and most of popular RAW file formats. While it's not optimized for that task, this program can actually also read damaged floppys, CDs and DVDs.
See What's New in version 3
As of release 3.0 Art Plus Digital Photo Recovery can recover several new RAW file formats so the list of supported file types now includes JPG, TIF, DNG, Canon CR2, Konica-Minolta MRW, Nikon NEF, Olympus ORF, Pentax PEF, Sony ARW, SRF and SR2 and still some other RAW formats that may not be fully supported but can also be restored but possibly with incorrect extension (saved as TIF).
Digital Photo Recovery
Also, support for more complex recovery options has been added that may help in some cases of really physically damaged cards or at least speed up the process in case of really large cards (4 or more GB) or in case you're running the program on slower computer. In version 3.0 you can create the card image file (mirror) without parsing it right away to save time. You can parse the file to actually extract restored images later. If the program finds damaged areas on the card, you will be offered to abort or skip the damaged part. Earlier versions of the program would at that point simply stop and images beyond the damaged part were not accessible.
Digital Photo Recovery

click here to download

Watch out MP3, AAC, WMA, FLAC, and Ogg Vorbis--there's a new digital audio format about to be introduced and it's creators are setting their sites on it becoming the new "de facto standard" for digital audio. The new format is called Music 2.0 and it will use MT9 as its file extension:


The new MT9 format first conceived by Electronics and Telecommunications Research Institute, Korea and being shaped into commercial use by venture company Audizen, has separate controls on the sound volume for each musical instrument, such as guitar, drum, base and voice — an ideal tool for music lovers of different tastes as well as karaoke fans. The new MT9 format, which has a file extension format of MT9 and a commercial title of Music 2.0, is poised to replace the popular MP3 file format as the de facto standard of the digital music source. The distinctive feature of MT9 format is that it has a six-channel audio equalizer, with each channel committed to voice, chorus, piano, guitar, base and drum. For example, whether a user turns off the voice channel, it becomes a karaoke player. Or one can turn off all the instrumentsand concentrate on the voice of the main singer as whether he or she is singing a cappella. Korean Giants Samsung and LG are both interested in equipping their mobile phones with an MT9 player and their first commercial products are likely to debut early next year.

If selected as an universal format, the MT9 technology can earn big for both Audizen and ETRI, a Korean governmental research institute. ETRI said that it holds three worldly and six domestic patents for the technology and is planning to file two more that year. The MT9 files are served in an album package. Audizen is currently selling a limited choice of albums at 2,000 won to 3,000 won on its Web site.

Use a soft cloth

Use a soft cloth and a special cleaning solution for your DVDs. You should avoid using any kind of organic solvents. Also refrain from using harsh solvents like acetone and benzene as these will dissolve the polycarbonate material on the DVD. As a result, your DVD will be damaged beyond repair. Instead, you should use mild solvents like alcohol and methanol. Mild solvents have the tendency to evaporate quickly, so the polycarbonate material on the DVD will not be dissolved.

Water-based cleaners

You can use special water-based lens cleaners as well. These cleaners are available at all local electronics and computer stores at very reasonable prices. Water-based detergents can also be used. The DVD's surface is made up of polycarbonate substrate, which is transparent and delicate. Therefore, when the surface is cleaned with a solution, there is a risk of contamination or scratching of the DVD. To prevent damage while cleaning your DVDs, you should follow the tips that are mentioned below.

Steps for cleaning DVDs

First of all, use an air puffer to blow off any dust that has settled on the DVD. Then use a dry and soft cotton cloth to wipe the disc carefully. Wipe with the dry cloth before you apply any solution on the DVD. Do not wipe the DVD in a circular direction. You should start wiping from the center of the disc and then moving to the edge in a series of direct swipes. Never use paper products such as lens paper in order to clean the DVD. Do not use any abrasive on the surface of the disc. Remove heavy accumulation of dirt from the DVD by rinsing it with water. Use only special water-based detergent formulas for cleaning the optical surface.

DVDs should be cleaned no more than once a month with a non-abrasive damp cloth. Do not use hard water; you should use bottled water instead. Use lukewarm water. When you are using air to blow off the dust, do not use canned air, as it can be very cold and can cause the DVD to crack.


Matterhorn Subwoofer

In addition to being the world's largest subwoofer, the "MATTERHORN" just might be the most powerful as well -- built by Danley Sound Labs. Continue reading for an overview and video.

Don't let the 20' x 8' x 8' shipping container fool you -- the "MATTERHORN" consists of 40 subwoofers, 40 1,000-Watt amplifiers, 1100' of 12-gauge speaker cable, and 23-pounds of 0.030 welding wire. This subwoofer was built to military specifications.

A touch screen is a computer display screen that is sensitive to human touch, allowing a user to interact with the computer by touching pictures or words on the screen. Touch screens are used with information kiosks, computer-based training devices, and systems designed to help individuals who have difficulty manipulating a mouse or keyboard. Touch screen technology can be used as an alternative user interface with applications that normally require a mouse, such as a Web browser. Some applications are designed specifically for touch screen technology, often having larger icons and links than the typical PC application. Monitors are available with built-in touch screen technology or individuals can purchase a touch screen kit.

http://www.areamobile.de/images/handies/LG/KE850/200612180918LG_KE850_Hand_1.jpghttp://www.ubergizmo.com/photos/2007/8/lgp-multi-touchscreen.jpghttp://interactive.usc.edu/archives/immersion%20touch%20screen.jpghttp://news.thomasnet.com/images/large/517/517350.jpg
Touchscreens have become commonplace since the invention of the electronic touch interface in 1971 by Dr. Samuel C. Hurst. They have become familiar in retail settings, on point of sale systems, on ATMs and on PDAs where a stylus is sometimes used to manipulate the GUI and to enter data. The popularity of smart phones, PDAs, portable game consoles and many types of information appliances is driving the demand for, and the acceptance of, touchscreens.

The HP-150 from 1983 was probably the world's earliest commercial touch screen computer. It actually does not have a touch screen in the strict sense, but a 9" Sony CRT surrounded by infrared transmitters and receivers which detect the position of any non-transparent object on the screen.

Touchscreens are popular in heavy industry and in other situations, such as museum displays or room automation, where keyboards and mouse do not allow a satisfactory, intuitive, rapid, or accurate interaction by the user with the display's content.

Historically, the touchscreen sensor and its accompanying controller-based firmware have been made available by a wide array of after-market system integrators and not by display, chip or motherboard manufacturers. With time, however, display manufacturers and System On Chip (SOC) manufacturers worldwide have acknowledged the trend toward acceptance of touchscreens as a highly desirable user interface component and have begun to integrate touchscreen functionality into the fundamental design of their products.


A touch screen kit includes a touch screen panel, a controller, and a software driver. The touch screen panel is a clear panel attached externally to the monitor that plugs into a serial or Universal Serial Bus (USB) port or a bus card installed inside the computer. The touch screen panel registers touch events and passes these signals to the controller. The controller then processes the signals and sends the data to the processor. The software driver translates touch events into mouse events. Drivers can be provided for both Windows and Macintosh operating systems. Internal touch screen kits are available but require professional installation because they must be installed inside the monitor.

There are three types of touch screen technology:

  • Resistive: A resistive touch screen panel is coated with a thin metallic electrically conductive and resistive layer that causes a change in the electrical current which is registered as a touch event and sent to the controller for processing. Resistive touch screen panels are generally more affordable but offer only 75% clarity and the layer can be damaged by sharp objects. Resistive touch screen panels are not affected by outside elements such as dust or water.
  • Surface wave: Surface wave technology uses ultrasonic waves that pass over the touch screen panel. When the panel is touched, a portion of the wave is absorbed. This change in the ultrasonic waves registers the position of the touch event and sends this information to the controller for processing. Surface wave touch screen panels are the most advanced of the three types, but they can be damaged by outside elements.
  • Capacitive: A capacitive touch screen panel is coated with a material that stores electrical charges. When the panel is touched, a small amount of charge is drawn to the point of contact. Circuits located at each corner of the panel measure the charge and send the information to the controller for processing. Capacitive touch screen panels must be touched with a finger unlike resistive and surface wave panels that can use fingers and stylus. Capacitive touch screens are not affected by outside elements and have high clarity.
  • Infrared
  • An infrared touch screen panel employs one of two very different methods. One method used thermal induced changes of the surface resistance. This method was sometimes slow and required warm hands. Another method is an array of vertical and horizontal IR sensors that detected the interruption of a modulated light beam near the surface of the screen. IR touch screens have the most durable surfaces and are used in many military applications that require a touch panel display.
  • Strain gauge
  • In a strain gauge configuration the screen is spring mounted on the four corners and strain gauges are used to determine deflection when the screen is touched. This technology can also measure the Z-axis. Typically used in exposed public systems such as ticket machines due to their resistance to vandalism.
  • Optical imaging
  • A relatively-modern development in touch screen technology, two or more image sensors are placed around the edges (mostly the corners) of the screen. Infrared backlights are placed in the camera's field of view on the other sides of the screen. A touch shows up as a shadow and each pair of cameras can then be triangulated to locate the touch. This technology is growing in popularity, due to its scalability, versatility, and affordability, especially for larger units.
  • Dispersive signal technology
  • Introduced in 2002, this system uses sensors to detect the mechanical energy in the glass that occur due to a touch. Complex algorithms then interpret this information and provide the actual location of the touch. The technology claims to be unaffected by dust and other outside elements, including scratches. Since there is no need for additional elements on screen, it also claims to provide excellent optical clarity. Also, since mechanical vibrations are used to detect a touch event, any object can be used to generate these events, including fingers and styli. A downside is that after the initial touch the system cannot detect a motionless finger.
  • Acoustic pulse recognition
  • This system uses more than two piezoelectric transducers located at some positions of the screen to turn the mechanical energy of a touch (vibration) into an electronic signal. This signal is then converted into an audio file, and then compared to preexisting audio profile for every position on the screen. This system works without a grid of wires running through the screen, the touch screen itself is actually pure glass, giving it the optics and durability of the glass out of which it is made. It works with scratches and dust on the screen, and accuracy is very good. It does not need a conductive object to activate it. It is a major advantage for larger displays. As with the Dispersive Signal Technology system, after the initial touch this system cannot detect a motionless finger.
  • Frustrated total internal reflection
  • This optical system works by using the principle of total internal reflection to fill a refractive medium with light. When a finger or other soft object is pressed against the surface, the internal reflection light path is interrupted, making the light reflect outside of the medium and thus visible to a camera behind the medium.
  • Development
  • Virtually all of the significant touchscreen technology patents were filed during the 1970s and 1980s and have expired. Touchscreen component manufacturing and product design are no longer encumbered by royalties or legalities with regard to patents and the manufacturing of touchscreen-enabled displays on all kinds of devices is widespread. The development of multipoint touchscreens facilitated the tracking of more than one finger on the screen, thus operations that require more than one finger are possible. These devices also allow multiple users to interact with the touchscreen simultaneously.With the growing acceptance of many kinds of products with an integral touchscreen interface the marginal cost of touchscreen technology is routinely absorbed into the products that incorporate it and is effectively eliminated. As typically occurs with any technology, touchscreen hardware and software has sufficiently matured and been perfected over more than three decades to the point where its reliability is unassailable. As such, touchscreen displays are found today in airplanes, automobiles, gaming consoles, machine control systems, appliances and handheld display devices of every kind. The ability to accurately point on the screen itself is taking yet another step with the emerging graphics tablet/screen hybrids.
  • Ergonomics and usage
  • An ergonomic problem of touchscreens is their stress on human fingers when used for more than a few minutes at a time, since significant pressure can be required and the screen is non-flexible. This can be alleviated with the use of a pen or other device to add leverage, but the introduction of such items can sometimes be problematic depending on the desired use case (for example, public kiosks such as ATMs). Also, fine motor control is better achieved with a stylus, a finger being a rather broad and ambiguous point of contact with the screen.
  • Yet all of these ergonomic issues can be bypassed simply by using a different technique, provided that the user's fingernails are either short or sufficiently long. Rather than pressing with the soft skin of an outstretched fingertip, the finger is curled over, so that the top of the forward edge of a fingernail can be used instead. (The thumb is optionally used to provide support for the finger or for a long fingernail, from underneath.) The fingernail's hard, curved surface contacts the touchscreen at a single very small point. Therefore, much less finger pressure is needed, much greater precision is possible (approaching that of a stylus, with a little experience), much less skin oil is smeared onto the screen, and the fingernail can be silently moved across the screen with very little resistance, allowing for selecting text, moving windows, or drawing lines. (The human fingernail consists of keratin which has a hardness and smoothness similar to the tip of a stylus, and so will not typically scratch a touchscreen.) Alternately, very short stylus tips are available, which slip right onto the end of a finger; this increases visibility of the contact point with the screen. Oddly, with capacitive touch screens, the reverse problem applies in that individuals with long nails have reported problems getting adequate skin contact with the screen to register keystrokes (note that styluses do not work on capacitive touch screens nor do gloved fingers).



HSUPA (High-Speed Uplink Packet Access) aims to offer mobile broadband for cellular phones. Conventional 3G offers upload and download speeds of around 384Kbps, whereas HSUPA (High-Speed Uplink Packet Access) allows upload speeds to 2Mbps.

Samsung has joined the league of phone-makers offering HSUPA by launching its very first handset that supports this technology. Called the SCH-M470, the phone is a slider-type handset and features a 2 megapixel camera.
Along with HSUPA, the phone promises to offer efficient Wi-Fi connectivity, Bluetooth 2.0 support, video-calling, push-button email, and Google search functions. The phone is compatible with Windows Mobile.

Gartner, a market research firm, has predicted that global HSUPA mobile phone market would grow from 77 million units in this year to 280 million units in 2009, and 600 million units in 2010.

Here comes the part which will not please most Indians. As of now, the SCH-M470 is only available for the Korean market; which shouldn't actually bother them because 3G in India is still on its way. Nevertheless, the price of phone ranges from 600,000KRW and 700,000KRW, which is equivalent to around 24,500INR to 28,500INR respectively.


why GPS?


Why GPS?
Trying to figure out where you are and where you're going is probably one of man's oldest pastimes.

Navigation and positioning are crucial to so many activities and yet the process has always been quite cumbersome.

Over the years all kinds of technologies have tried to simplify the task but every one has had some disadvantage.

Finally, the U.S. Department of Defense decided that the military had to have a super precise form of worldwide positioning. And fortunately they had the kind of money ($12 billion!) it took to build something really good.


Why Did the Department of Defense Develop GPS?

In the latter days of the arms race the targeting of ICBMs became such a fine art that they could be expected to land right on an enemy's missile silos. Such a direct hit would destroy the silo and any missile in it. The ability to take out your opponent's missiles had a profound effect on the balance of power.

But you could only expect to hit a silo if you knew exactly where you were launching from. That's not hard if your missiles are on land, as most of them were in the Soviet Union. But most of the U.S. nuclear arsenal was at sea on subs. To maintain the balance of power the U.S. had to come up with a way to allow those subs to surface and fix their exact position in a matter of minutes anywhere in the world Hello GPS!

The result is the Global Positioning System, a system that's changed navigation forever.



what is GPS?
What is GPS?

The Global Positioning System (GPS) is a worldwide radio-navigation system formed from a constellation of 24 satellites and their ground stations.

GPS uses these "man-made stars" as reference points to calculate positions accurate to a matter of meters. In fact, with advanced forms of GPSyou can make measurements to better than a centimeter!

In a sense it's like giving every square meter on the planet a unique address.

GPS receivers have been miniaturized to just a few integrated circuits and so are becoming very economical. And that makes the technology accessible to virtually everyone.

These days GPS is finding its way into cars, boats, planes, construction equipment, movie making gear, farm machinery, even laptop computers.

Soon GPS will become almost as basic as the telephone. Indeed, at Trimble, we think it just may become a universal utility.



how GPS?
How GPS works?

Here's how GPS works in five logical steps:

  1. The basis of GPS is "triangulation" from satellites.
    We're using the word "triangulation" very loosely here because it's a word most people can understand, but purists would not call what GPS does "triangulation" because no angles are involved. It's really "trilateration."
    Trilateration is a method of determining the relative positions of objects using the geometry of triangles.
  2. To "triangulate," a GPS receiver measures distance using the travel time of radio signals.
  3. To measure travel time, GPS needs very accurate timing which it achieves with some tricks.
  4. Along with distance, you need to know exactly where the satellites are in space. High orbits and careful monitoring are the secret.
  5. Finally you must correct for any delays the signal experiences as it travels through the atmosphere.


how GPS?
Triangulating from Satellites

Improbable as it may seem, the whole idea behind GPS is to use satellites in space as reference points for locations here on earth.

That's right, by very, very accurately measuring our distance from three satellites we can "triangulate" our position anywhere on earth.

Forget for a moment how our receiver measures this distance. We'll get to that later. First consider how distance measurements from three satellites can pinpoint you in space.

The Big Idea Geometrically:

Step One:

Suppose we measure our distance from a satellite and find it to be 11,000 miles.

Knowing that we're 11,000 miles from a particular satellite narrows down all the possible locations we could be in the whole universe to the surface of a sphere that is centered on this satellite and has a radius of 11,000 miles.

how GPS?
Step Two:

Next, say we measure our distance to a second satellite and find out that it's 12,000 miles away.

That tells us that we're not only on the first sphere but we're also on a sphere that's 12,000 miles from the second satellite. Or in other words, we're somewhere on the circle where these two spheres intersect.

how GPS?

Step Three:

If we then make a measurement from a third satellite and find that we're 13,000 miles from that one, that narrows our position down even further, to the two points where the 13,000 mile sphere cuts through the circle that's the intersection of the first two spheres.

So by ranging from three satellites we can narrow our position to just two points in space.

To decide which one is our true location we could make a fourth measurement. But usually one of the two points is a ridiculous answer (either too far from Earth or moving at an impossible velocity) and can be rejected without a measurement.

A fourth measurement does come in very handy for another reason however, but we'll tell you about that later.

Next we'll see how the system measures distances to satellites.


how GPS?
Measuring distance from a satellite

We saw in the last section that a position is calculated from distance measurements to at least three satellites.

how GPS?
The Big Idea Mathematically:

In a sense, the whole thing boils down to those "velocity times travel time" math problems we did in high school. Remember the old: "If a car goes 60 miles per hour for two hours, how far does it travel?"

Velocity (60 mph) x Time (2 hours) = Distance (120 miles)

In the case of GPS we're measuring a radio signal so the velocity is going to be the speed of light or roughly 186,000 miles per second.

The problem is measuring the travel time.

how GPS?
Timing is tricky

  • We need precise clocks to measure travel time
  • The travel time for a satellite right overhead is about 0.06 seconds
  • The difference in sync of the receiver time minus the satellite time is equal to the travel time

The timing problem is tricky. First, the times are going to be awfully short. If a satellite were right overhead the travel time would be something like 0.06 seconds. So we're going to need some really precise clocks. We'll talk about those soon.

But assuming we have precise clocks, how do we measure travel time? To explain it let's use a goofy analogy:

Suppose there was a way to get both the satellite and the receiver to start playing "The Star Spangled Banner" at precisely 12 noon. If sound could reach us from space (which, of course, is ridiculous) then standing at the receiver we'd hear two versions of the Star Spangled Banner, one from our receiver and one from the satellite.

These two versions would be out of sync. The version coming from the satellite would be a little delayed because it had to travel more than 11,000 miles.

If we wanted to see just how delayed the satellite's version was, we could start delaying the receiver's version until they fell into perfect sync.

The amount we have to shift back the receiver's version is equal to the travel time of the satellite's version. So we just multiply that time times the speed of light and BINGO! we've got our distance to the satellite.

That's basically how GPS works.

Only instead of the Star Spangled Banner the satellites and receivers use something called a "Pseudo Random Code" - which is probably easier to sing than the Star Spangled Banner.


Timing
Getting perfect timing

If measuring the travel time of a radio signal is the key to GPS, then our stop watches had better be darn good, because if their timing is off by just a thousandth of a second, at the speed of light, that translates into almost 200 miles of error!

On the satellite side, timing is almost perfect because they have incredibly precise Atomic Clocks

Atomic clocks don't run on atomic energy. They get the name because they use the oscillations of a particular atom as their "metronome." This form of timing is the most stable and accurate reference man has ever developed.

But what about our receivers here on the ground?

Remember that both the satellite and the receiver need to be able to precisely synchronize their pseudo-random codes to make the system work. (to review this point click here)

If our receivers needed atomic clocks (which cost upwards of $50K to $100K) GPS would be a lame duck technology. Nobody could afford it.

Luckily the designers of GPS came up with a brilliant little trick that lets us get by with much less accurate clocks in our receivers. This trick is one of the key elements of GPS and as an added side benefit it means that every GPS receiver is essentially an atomic-accuracy clock.

Timing

Using GPS for Timing

We generally think of GPS as a navigation or positioning resource but the fact that every GPS receiver is synchronized to universal time makes it the most widely available source of precise time.

This opens up a wide range of applications beyond positioning. GPS is being used to synchronize computer networks, calibrate other navigation systems, synchronize motion picture equipment and much more.

The secret to perfect timing is to make an extra satellite measurement.

That's right, if three perfect measurements can locate a point in 3-dimensional space, then four imperfect measurements can do the same thing.

This idea is so fundamental to the working of GPS .there is a separate illustrated section that shows how it works.

Extra Measurement Cures Timing Offset

If our receiver's clocks were perfect, then all our satellite ranges would intersect at a single point (which is our position). But with imperfect clocks, a fourth measurement, done as a cross-check, will NOT intersect with the first three.

So the receiver's computer says "Uh-oh! there is a discrepancy in my measurements. I must not be perfectly synced with universal time."

Since any offset from universal time will affect all of our measurements, the receiver looks for a single correction factor that it can subtract from all its timing measurements that would cause them all to intersect at a single point.

That correction brings the receiver's clock back into sync with universal time, and bingo! - you've got atomic accuracy time right in the palm of your hand.

Once it has that correction it applies to all the rest of its measurements and now we've got precise positioning.

One consequence of this principle is that any decent GPS receiver will need to have at least four channels so that it can make the four measurements simultaneously.

With the pseudo-random code as a rock solid timing sync pulse, and this extra measurement trick to get us perfectly synced to universal time, we have got everything we need to measure our distance to a satellite in space.

But for the triangulation to work we not only need to know distance, we also need to know exactly where the satellites are.

Positions
Satellite Positions

Knowing where a satellite is in space

In this tutorial we've been assuming that we know where the GPS satellites are so we can use them as reference points.

But how do we know exactly where they are? After all they're floating around 11,000 miles up in space.

A high satellite gathers no moss

That 11,000 mile altitude is actually a benefit in this case, because something that high is well clear of the atmosphere. And that means it will orbit according to very simple mathematics.

The Air Force has injected each GPS satellite into a very precise orbit, according to the GPS master plan.

Positions

GPS Master Plan

The launch of the 24th block II satellite in March of 1994 completed the GPS constellation.

Four additional satellites are in reserve to be launched "on need."

The spacings of the satellites are arranged so that a minimum of five satellites are in view from every point on the globe.

On the ground all GPS receivers have an almanac programmed into their computers that tells them where in the sky each satellite is, moment by moment.

The basic orbits are quite exact but just to make things perfect the GPS satellites are constantly monitored by the Department of Defense.

They use very precise radar to check each satellite's exact altitude, position and speed.

The errors they're checking for are called "ephemeris errors" because they affect the satellite's orbit or "ephemeris." These errors are caused by gravitational pulls from the moon and sun and by the pressure of solar radiation on the satellites.

Once the DoD has measured a satellite's exact position, they relay that information back up to the satellite itself. The satellite then includes this new corrected position information in the timing signals it's broadcasting.

So a GPS signal is more than just pseudo-random code for timing purposes. It also contains a navigation message with ephemeris information as well.

With perfect timing and the satellite's exact position you'd think we'd be ready to make perfect position calculations.


Why we need Differential GPS?

Basic GPS is the most accurate radio-based navigation system ever developed. And for many applications it's plenty accurate. But it's human nature to want MORE!

So some crafty engineers came up with "Differential GPS," a way to correct the various inaccuracies in the GPS system, pushing its accuracy even farther.

Differential GPS or "DGPS" can yield measurements good to a couple of meters in moving applications and even better in stationary situations.

That improved accuracy has a profound effect on the importance of GPS as a resource. With it, GPS becomes more than just a system for navigating boats and planes around the world. It becomes a universal measurement system capable of positioning things on a very precise scale.



DGPS?

Putting GPS to work

GPS technology has matured into a resource that goes far beyond its original design goals. These days scientists, sportsmen, farmers, soldiers, pilots, surveyors, hikers, delivery drivers, sailors, dispatchers, lumberjacks, fire-fighters, and people from many other walks of life are using GPS in ways that make their work more productive, safer, and sometimes even easier.

In this section you will see a few examples of real-world applications of GPS. These applications fall into five broad categories.

Location - determining a basic position
Navigation - getting from one location to another
Tracking - monitoring the movement of people and things
Mapping - creating maps of the world
Timing - bringing precise timing to the world

DGPS?
Location

"Where am I?"

The first and most obvious application of GPS is the simple determination of a "position" or location. GPS is the first positioning system to offer highly precise location data for any point on the planet, in any weather. That alone would be enough to qualify it as a major utility, but the accuracy of GPS and the creativity of its users is pushing it into some surprising realms.

Knowing the precise location of something, or someone, is especially critical when the consequences of inaccurate data are measured in human terms. For example, when a stranded motorist was lost in a South Dakota blizzard for 2 days, GPS helped rescuers find her.

GPS is also being applied in Italy to create exact location points for their nationwide geodetic network which will be used for surveying projects. Once in place it will support the first implementation of a nationally created location survey linked to the WGS-84 global grid.

The Italian Grid

Using Trimble SSE GPS receivers, the Italian Military Geographic Institute is creating what is reputed to be the first nationwide geodetic network . This grid is based on the WGS-84 global grid, a mathematically created grid that surrounds the earth. While this global grid is accurate enough for geodetic research and measurements, it lacks the precision for local and regional projects.

With the addition of GPS location data collected using Trimble systems, surveyors will no longer have to perform preliminary surveys to calculate differences between WGS and local survey data. This is the first case of a national survey organization creating data that's linked to WGS-84. This project is paving the way for similar networks in Europe and possibly around the world.

Sometimes an exact reference locator is needed for extremely precise scientific work. Just getting to the world's tallest mountain was tricky, but GPS made measuring the growth of Mt. Everest easy. The data collected strengthened past work, but also revealed that as the Khumbu glacier moves toward Everest's Base Camp, the mountain itself is getting taller.


DGPS?
Navigation

"Where am I going?"

GPS helps you determine exactly where you are, but sometimes important to know how to get somewhere else. GPS was originally designed to provide navigation information for ships and planes. So it's no surprise that while this technology is appropriate for navigating on water, it's also very useful in the air and on the land.

On the Water

It's interesting that the sea, one of our oldest channels of transportation, has been revolutionized by GPS, the newest navigation technology. Trimble introduced the world's first GPS receiver for marine navigation in 1985. And as you would expect, navigating the world's oceans and waterways is more precise than ever.

Today you will find Trimble receivers on vessels the world over, from hardworking fishing boats and long-haul container ships, to elegant luxury cruise ships and recreational boaters.A New Zealand commercial fishing company uses GPS so they can return to their best fishing holes without wandering into the wrong waters in the process.

DGPS?
Navigation

Flying a single-engine Piper Cub or a commercial jumbo jet requires the same precise navigation information, and GPS puts it all at the pilot's fingertips as safely as possible.

By providing more precise navigation tools and accurate landing systems, GPS not only makes flying safer, but also more efficient. With precise point-to-point navigation, GPS saves fuel and extends an aircraft's range by ensuring pilots don't stray from the most direct routes to their destinations.

GPS accuracy will also allow closer aircraft separations on more direct routes, which in turn means more planes can occupy our limited airspace. This is especially helpful when you're landing a plane in the middle of mountains. And small medical evac helicopters benefit from the extra minutes saved by the accuracy of GPS navigation.



DGPS?
Tracking

If navigation is the process of getting something from one location to another, then tracking is the process of monitoring it as it moves along.

Commerce relies on fleets of vehicles to deliver goods and services either across a crowded city or through nationwide corridors. So, effective fleet management has direct bottom-line implications, such as telling a customer when a package will arrive, spacing buses for the best scheduled service, directing the nearest ambulance to an accident, or helping tankers avoid hazards.

GPS used in conjunction with communication links and computers can provide the backbone for systems tailored to applications in agriculture, mass transit, urban delivery, public safety, and vessel and vehicle tracking. So it's no surprise that police, ambulance, and fire departments are adopting systems like Trimble's GPS-based AVL (Automatic Vehicle Location) Manager to pinpoint both the location of the emergency and the location of the nearest response vehicle on a computer map. With this kind of clear visual picture of the situation, dispatchers can react immediately and confidently.

Chicago developed a GPS tracking system to monitor emergency vehicles through their streets, saving precious time responding to 911 calls. And on the commercial front, two taxi companies in Australia track their cabs for better profit and improved safety.


DGPS?
Mapping

"Where is everything else?"

It's a big world out there, and using GPS to survey and map it precisely saves time and money in this most stringent of all applications. Today, Trimble GPS makes it possible for a single surveyor to accomplish in a day what used to take weeks with an entire team. And they can do their work with a higher level of accuracy than ever before.

Trimble pioneered the technology which is now the method of choice for performing control surveys, and the effect on surveying in general has been considerable. You've seen how GPS pinpoints a position, a route, and a fleet of vehicles. Mapping is the art and science of using GPS to locate items, then create maps and models of everything in the world. And we do mean everything. Mountains, rivers, forests and other landforms. Roads, routes, and city streets. Endangered animals, precious minerals and all sorts of resources. Damage and disasters, trash and archeological treasures. GPS is mapping the world.

For example, Trimble GPS helped fire fighters respond with speed and efficiency during the 1991 Oakland/Berkeley fire to plot the extent of the blaze and to evaluate damage. In a less urgent yet equally important situation, the city of Modesto, California improved their efficiency and job performance by using GPS and mountain bikes to create a precise map of its network of water resources and utilities.



DGPS?
Timing

"When will it all happen?"

Although GPS is well-known for navigation, tracking, and mapping, it's also used to disseminate precise time, time intervals, and frequency. Time is a powerful commodity, and exact time is more powerful still. Knowing that a group of timed events is perfectly synchronized is often very important. GPS makes the job of "synchronizing our watches" easy and reliable.

There are three fundamental ways we use time. As a universal marker, time tells us when things happened or when they will. As a way to synchronize people, events, even other types of signals, time helps keep the world on schedule. And as a way to tell how long things last, time provides and accurate, unambiguous sense of duration.

GPS satellites carry highly accurate atomic clocks. And in order for the system to work, our GPS receivers here on the ground synchronize themselves to these clocks. That means that every GPS receiver is, in essence, an atomic accuracy clock.

Astronomers, power companies, computer networks, communications systems, banks, and radio and television stations can benefit from this precise timing.One investment banking firm uses GPS to guarantee their transactions are recorded simultaneously at all offices around the world. And a major Pacific Northwest utility company makes sure their power is distributed at just the right time along their 14,797 miles of transmission lines.


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