Thursday, February 10, 2011

LAPTOP

laptop computer, or simply laptop (also notebook computer or notebook), is a small mobile computer, which usually weighs 2.2-18 pounds (1-6 kilograms), depending on size, materials, and other factors.
Laptops usually run on a single main battery or from an external AC/DC adapter which can charge the battery while also supplying power to the computer itself. Many computers also have a 3volt cell to run the clock and other processes in the event of a power failure.
As personal computers, laptops are capable of the same tasks as a desktop computer, although they are typically less powerful for the same price. They contain components that are similar to their desktop counterparts and perform the same functions, but are miniaturized and optimized for mobile use and efficient power consumption. Laptops usually have liquid crystal displays and most of them use different memory modules for their random access memory (RAM), for instance, SO-DIMM in lieu of the larger DIMMs. In addition to a built-in keyboard, they may utilize a touchpad (also known as a trackpad) or a pointing stick for input, though an external keyboard or mouse can usually be attached.

Terms sometimes used for subtypes of laptop computers include:
UMPCs These Ultra-Mobile PCs are mobile computers with a size comparable to PDAs - they are extremely portable. Because of their small size, they incorporate a 20 cm (7 inch) or smaller touch-screen for the user to interact with it (as with a virtual keyboard), though some (such as the OQO Model 02) are designed with a miniature physical keyboard (a thumbboard) and mouse interface. They house lower performing, power-saving components (in comparison to larger laptops). Examples of UMPCs are the OQO Model 02 and the Sony Vaio UX Micro PC. Ultraportables Laptops with screens typically less than 11 inches diagonally and a weight of less than 1.7kg. Their keyboards are usually not full-size. Their primary audience is usually business travelers, who need small, light laptops. Ultraportables are often very expensive, have extended battery life, house power-saving CPUs and almost always have integrated graphics. A Sony VAIO FJ76 NotebookThin-and-lights Laptops usually weighing in between 1.8kg and 2.8kg with a screen size of between 12 and 14 inches diagonally. Examples of this variety: the Sony VAIO FJ, Apple Inc. MacBook and Dell XPS M1210. Desktop replacement computers Powerful laptops meant to be mainly used in a fixed location and infrequently carried out due to their weight and size; the latter provides more space for powerful components and a big screen, usually measuring 15-20 inches. Desktop replacements tend to have limited battery life, rarely exceeding three hours, because the hardware is not optimized for efficient power usage. Sometimes called a luggable laptop.
[edit] Related devicesLaptops can be understood as a particular point on the continuum of more or less portable computing devices: the point at which the device is large enough to use substantially the same software as a desktop machine, but small enough to support Mobile computing. Other points on the continuum include:
Transportables, also called portable computers Computers which can easily be moved from place to place, but cannot be used while in transit, usually because they require AC power. The most famous example is the Osborne 1. A transportable, like a laptop, can run desktop software; but it does not support mobile computing. Tablets Computers shaped like slates or (paper) notebooks, with touchscreen interfaces. As of 2007, the most common subcategory is the Tablet PC, which is essentially a laptop with a touchscreen. Some tablets have no keyboard; others, called "convertibles", have a keyboard which can be folded behind the screen. A tablet supports mobile computing, and, commonly, can run some desktop software (possibly with modification), but not all. Ultra Mobile PCs (UMPCs) Very small Tablet PCs. Internet tablets Internet appliances in tablet form. An internet tablet supports mobile computing, but usually does not run any desktop software. Personal digital assistants (PDAs) Small computers, usually pocket-sized, usually with limited functionality. A PDA supports mobile computing, but almost never runs any desktop software. Handheld computers A high-end PDA or small tablet. Smartphone A handheld or PDA with an integrated cellphone. As will be clear, these categories are blurry at times. For example, the OQO UPC is a PDA-sized Tablet PC; the Apple eMate had the clamshell form factor of a laptop, but ran PDA software. The HP Omnibook line of laptops included some devices small enough to be called handheld computers. The hardware of the Nokia 770 Internet tablet is essentially the same as that of a PDA such as the Zaurus 6000; the only reason it's not called a PDA is that it doesn't have PIM software. On the other hand, both the 770 and the Zaurus can run some desktop Linux software, usually with modifications.
[edit] HistoryBefore laptop/notebook computers were technically feasible, similar ideas had been proposed, most notably Alan Kay's Dynabook concept, developed at Xerox PARC in the early 1970s.
The first commercially available portable computer was the Osborne 1 in 1981, which used the CP/M operating system. Although it was large and heavy compared to today's laptops, with a tiny CRT monitor, it had a near-revolutionary impact on business, as professionals were able to take their computer and data with them for the first time. This and other "luggables" were inspired by what was probably the first portable computer, the Xerox NoteTaker, again developed at Xerox PARC, in 1976; however, only ten prototypes were built. The Osborne was about the size of a portable sewing machine, and importantly could be carried on a commercial aircraft. However, it was not possible to run the Osborne on batteries; it had to be plugged in.
A more enduring success was the Compaq Portable, the first product from Compaq, introduced in 1983, by which time the IBM Personal Computer had become the standard platform. Although scarcely more portable than the Osborne machines, and also requiring AC power to run, it ran MS-DOS and was the first true IBM clone (IBM's own later Portable Computer, which arrived in 1984, was notably less IBM PC-compatible than the Compaq[citation needed]).
Another significant machine announced in 1981, although first sold widely in 1983, was the Epson HX-20. A simple handheld computer, it featured a full-transit 68-key keyboard, rechargeable nickel-cadmium batteries, a small (120 x 32-pixel) dot-matrix LCD display with 4 lines of text, 20 characters per line text mode, a 24 column dot matrix printer, a Microsoft BASIC interpreter, and 16 KiB of RAM (expandable to 32 KiB).
However, arguably the first true laptop was the GRiD Compass 1101, designed by Bill Moggridge in 1979-1980, and released in 1982. Enclosed in a magnesium case, it introduced the now familiar clamshell design, in which the flat display folded shut against the keyboard. The computer could be run from batteries, and was equipped with a 320×200-pixel plasma display and 384 kibibyte bubble memory. It was not IBM-compatible, and its high price (US$ 8-10,000) limited it to specialized applications. However, it was used heavily by the U.S. military, and by NASA on the Space Shuttle during the 1980s. The GRiD's manufacturer subsequently earned significant returns on its patent rights as its innovations became commonplace. GRiD Systems Corp. was later bought by Tandy (RadioShack).
Two other noteworthy early laptops were the Sharp PC-5000 and the Gavilan SC, announced in 1983 but first sold in 1984. The Gavilan was notably the first computer to be marketed as a "laptop". It was also equipped with a pioneering touchpad-like pointing device, installed on a panel above the keyboard. Like the GRiD Compass, the Gavilan and the Sharp were housed in clamshell cases, but they were partly IBM-compatible, although primarily running their own system software. Both had LCD displays, and could connect to optional external printers.
The year 1983 also saw the launch of what was probably the biggest-selling early laptop, the Kyocera Kyotronic 85, which owed much to the design of the previous Epson HX-20. Although it was at first a slow seller in Japan, it was quickly licensed by Tandy Corporation, Olivetti, and NEC, which saw its potential and marketed it respectively as TRS-80 Model 100 line (or Tandy 100), Olivetti M-10, NEC PC-8201.[1] The machines ran on standard AA batteries. The Tandy's built-in programs, including a BASIC interpreter, a text editor, and a terminal program, were supplied by Microsoft, and are thought to have been written in part by Bill Gates himself. The computer was not a clamshell, but provided a tiltable 8×40-character LCD screen above a full-travel keyboard. With its internal modem, it was a highly portable communications terminal. Due to its portability, good battery life (and ease of replacement), reliability (it had no moving parts), and low price (as little as US$ 300), the model was highly regarded, becoming a favorite among journalists. It weighed less than 2 kg with dimensions of 30 × 21.5 × 4.5 cm (12 × 8.5 × 1.75 inches). Initial specifications included 8 kibibytes of RAM (expandable to 24 KiB) and a 3 MHz processor. The machine was in fact about the size of a paper notebook, but the term had yet to come into use and it was generally described as a "portable" computer.
Among the first commercial IBM-compatible laptops were the IBM PC Convertible, introduced in 1986, and two Toshiba models, the T1000 and T1200, introduced in 1987. Although limited floppy-based DOS machines, with the operating system stored in read-only memory, the Toshiba models were small and light enough to be carried in a backpack, and could be run off lead-acid batteries. These also introduced the now-standard "resume" feature to DOS-based machines: the computer could be paused between sessions, without having to be restarted each time.
Another early laptop was the Dulmont Magnum, made in Australia and launched internationally in 1984.[2]
The first laptops successful on a large scale came in large part due to a Request For Proposal (RFP) by the U.S. Air Force in 1987. This contract would eventually lead to the purchase of over 200,000 laptops. Competition to supply this contract was fiercely contested and the major PC companies of the time; IBM, Toshiba, Compaq, NEC, and Zenith Data Systems (ZDS), rushed to develop laptops in an attempt to win this deal. ZDS, which had earlier won a landmark deal with the IRS for its Z-171, was awarded this contract for its SupersPort series. The SupersPort series was originally launched with an Intel 8086 processor, dual floppy disk drives, a backlit, blue and white STN LCD screen, and a NiCD battery pack. Later models featured an Intel 80286 processor and a 20 MB hard disk drive. On the strength of this deal, ZDS became the world's largest laptop supplier in 1987 and 1988.
ZDS partnered with Tottori Sanyo in the design and manufacturing of these laptops. This relationship is notable because it was the first deal between a major brand and an Asian OEM (Original Equipment Manufacturer). At the time, Compaq, IBM, Toshiba, NEC, etc. all designed and manufactured their own machines. However, after the success of the ZDS offering other relationships, like Compaq and Citizen, soon followed. At this time the quality of Japanese engineering and manufacturing in conjunction with the strength of the dollar relative to the yen (typically about 130 Yen = $1) drove most brands to suppliers in Japan. Companies such as Sanyo, Tottori Sanyo, Citizen, and Casio were all heavily involved in this business as OEMs. However, by the mid-1990s a weakening dollar and the rising viability of Taiwanese OEMs such as Acer, Quanta, Compal, Twinhead, and Chicony lead the supply base to rapidly shift from Japan to Taiwan. Additionally, brands which were more nimble and relied less on internal engineering such as Gateway, Dell and Micron began to rise quickly to leadership positions. Combinations such as Dell/Compal and Gateway/Quanta eventually became powerhouse partnerships and greatly contributed to the prominence of Taiwanese OEMs as the center of PC manufacturing from about 1995 onward.
Another notable computer was the Cambridge Z88, designed by Clive Sinclair, introduced in 1988. About the size of an A4 sheet of paper as well, it ran on standard batteries, and contained basic spreadsheet, word processing, and communications programs. It anticipated the future miniaturization of the portable computer; and, as a ROM-based machine with a small display, can — like the TRS-80 Model 100 — also be seen as a forerunner of the personal digital assistant.
By the end of the 1980s, laptop computers were becoming popular among business people. The NEC UltraLite, released in mid-1989, was perhaps the first notebook computer, weighing just over 2 kg; in lieu of a floppy or hard drive, it contained a 2 mebibyte RAM drive, but this reduced its utility as well as its size. The first notebook computers to include hard drives were those of the Compaq LTE series, introduced toward the end of that year. Truly the size of a notebook, they also featured grayscale backlit displays with CGA resolution.
The Macintosh Portable, Apple's first attempt at a battery-powered computerThe first Apple Computer machine designed to be used on the go was the 1989 Macintosh Portable (although an LCD screen had been an option for the transportable Apple IIc in 1984). Actually a "luggable", the Mac Portable was praised for its clear active matrix display and long battery life, but was a poor seller due to its bulk. In the absence of a true Apple laptop, several compatible machines such as the Outbound Laptop were available for Mac users; however, for copyright reasons, the user had to supply a set of Mac ROMs, which usually meant having to buy a new or used Macintosh as well.
The Apple PowerBook series, introduced in October 1991, pioneered changes that are now de facto standards on laptops, such as the placement of the keyboard, room for palm rest, and the inclusion of a built-in pointing device (a trackball). The following year, IBM released its Thinkpad 700C, featuring a similar design (though with a distinctive red TrackPoint pointing device).
Later PowerBooks introduced the first 256-color displays (PowerBook 165c, 1993), and first true touchpad, first 16-bit sound recording, and first built-in Ethernet network adapter (PowerBook 500, 1994).
The summer of 1995 was a significant turning point in the history of notebook computing. In August of that year Microsoft introduced Windows 95. It was the first time that Microsoft had placed much of the power management control in the operating system. Prior to this point each brand used custom BIOS, drivers and in some cases, ASICs, to optimize the battery life of its machines. This move by Microsoft was controversial in the eyes of notebook designers because it greatly reduced their ability to innovate; however, it did serve its role in simplifying and stabilizing certain aspects of notebook design. Windows 95 also ushered in the importance of the CD-ROM drive in mobile computing and initiated the shift to the Intel Pentium processor as the base platform for notebooks. The Gateway Solo was the first notebook introduced with a Pentium processor and a CD-ROM. By also featuring a removable hard disk drive and floppy drive it was the first three-spindle (optical, floppy, and hard disk drive) notebook computer. The Gateway Solo was extremely successful within the consumer segment of the market. In roughly the same time period the Dell Latitude, Toshiba Satellite, and IBM Thinkpad were reaching great success with Pentium-based two-spindle (hard disk and floppy disk drive) systems directed toward the corporate market.
A 1997 Micron laptopAs technology improved during the 1990s, the usefulness and popularity of laptops increased. Correspondingly prices went down. Several developments specific to laptops were quickly implemented, improving usability and performance. Among them were:
Improved battery technology. The heavy lead-acid batteries were replaced with lighter and more efficient technologies, first nickel cadmium or NiCD, then nickel metal hydride (NiMH) and then lithium ion battery and lithium polymer. Power-saving processors. While laptops in 1991 were limited to the 80286 processor because of the energy demands of the more powerful 80386, the introduction of the Intel 386SL processor, designed for the specific power needs of laptops, marked the point at which laptop needs were included in CPU design. The 386SL integrated a 386SX core with a memory controller and this was paired with an I/O chip to create the SL chipset. It was more integrated than any previous solution although its cost was higher. It was heavily adopted by the major notebook brands of the time. Intel followed this with the 486SL chipset which used the same architecture. However, Intel had to abandon this design approach as it introduced its Pentium series. Early versions of the mobile Pentium required TAB mounting (also used in LCD manufacturing) and this initially limited the number of companies capable of supplying notebooks. However, Intel did eventually migrate to more standard chip packaging. One limitation of notebooks has always been the difficulty in upgrading the processor which is a common attribute of desktops. Intel did try to solve this problem with the introduction of the MMC for mobile computing. The MMC was a standard module upon which the CPU and external cache memory could sit. It gave the notebook buyer the potential to upgrade his CPU at a later date, eased the manufacturing process some, and was also used in some cases to skirt U.S. import duties as the CPU could be added to the chassis after it arrived in the U.S. Intel stuck with MMC for a few generations but ultimately could not maintain the appropriate speed and data integrity to the memory subsystem through the MMC connector. Improved liquid crystal displays, in particular active-matrix TFT (Thin-Film Transistor) LCD technology. Early laptop screens were black and white, blue and white, or grayscale, STN (Super Twist Nematic) passive-matrix LCDs prone to heavy shadows, ghosting and blurry movement (some portable computer screens were sharper monochrome plasma displays, but these drew too much current to be powered by batteries). Color STN screens were used for some time although their viewing quality was poor. By about 1991 , two new color LCD technologies hit the mainstream market in a big way; Dual STN and TFT. The Dual STN screens solved many of the viewing problems of STN at a very affordable price and the TFT screens offered excellent viewing quality although initially at a steep price. DSTN continued to offer a significant cost advantage over TFT until the mid-90s before the cost delta dropped to the point that DSTN was no longer used in notebooks. Improvements in production technology meant displays became larger, sharper, had higher native resolutions, faster response time and could display color with great accuracy, making them an acceptable substitute for a traditional CRT monitor. Improved hard disk technology. Early laptops and portables had only floppy disk drives. As thin, high-capacity hard disk drives with higher reliability and shock resistance and lower power consumption became available, users could store their work on laptop computers and take it with them. The 3.5" HDD was created initially as a response to the needs of notebook designers that needed smaller, lower power consumption products. With continuing pressure to shrink the notebook size even further, the 2.5" HDD was introduced. Improved connectivity. Internal modems and standard serial, parallel, and PS/2 ports on IBM PC-compatible laptops made it easier to work away from home; the addition of network adapters and, from 1997, USB, as well as, from 1999, Wi-Fi, made laptops as easy to use with peripherals as a desktop computer.

Most modern laptops feature 12 inch (304.8 mm) or larger active matrix displays with resolutions of 1024×768-pixels and above, and have a PC Card (formerly PCMCIA) or ExpressCard expansion bay for expansion cards. Internal hard disks are physically smaller –2.5 inch (63.5 mm)– compared to the standard desktop 3.5 inch (88.9 mm) drive, and usually have lower performance and power consumption. Video and sound chips are usually integrated. This tends to limit the use of laptops for gaming and entertainment, two fields which have constantly escalating hardware demands. However, higher end laptops can come with dedicated graphics processors, such as the Dell Inspiron E1505 and E1705, which can be bought with an ATI Mobility Radeon X1300 or similar. These mobile graphics processors tend to have less performance than their desktop counterparts, but this is because they have been optimized for lower power usage. There is a wide range of laptop specific processors available from Intel (Pentium M, Celeron, Intel Core and Intel Core 2) and from AMD (Athlon, Turion 64, and Sempron) and also from VIA (C3 and C7-M). Motorola and IBM developed and manufactured the chips for the former PowerPC-based Apple laptops (iBook and PowerBook). Generally, laptop processors are less powerful than their desktop counterparts, due to the need to save energy and reduce heat dissipation. However, the PowerPC G3 and G4 processor generations were able to offer almost the same performance as their desktop versions, limited mostly by other factors, such as the system bus bandwidth; recently, though, with the introduction of the G5s, they have been far outstripped. At one point, the Pismo G3, at up to 500 MHz, was faster than the fastest desktop G3 (then the B&W G3), which ran at 450 MHz. Some parts for a modern laptop have no corresponding part in a desktop computer:
Current models use lithium ion and more recently lithium polymer batteries, which have largely replaced the older nickel metal-hydride technology. Typical battery life for most laptops is two to five hours with light-duty use, but may drop to as little as one hour with intensive use. Batteries gradually deteriorate over time and eventually need to be replaced in one to five years, depending on the charging and discharging pattern. Docking stations became common laptop accessories in the early 1990s. They typically were quite large and offered 3.5" and 5.25" storage bays, one to three expansion slots (typically AT style), and a host of connectors. The mating between the laptop and docking station was typically through a large, high-speed, proprietary connector. The most common use was in a corporate computing environment where the company had standardized on a common network card and this same card was placed into the docking station. These stations were very large and quite expensive. As the need to additional storage and expansion slots became less critical because of the high integration inside the laptop itself, the emergence of the Port Replicator as a major accessory commenced. The Port Replicator was often a passive device that simply mated to the connectors on the back of the notebook and allowed the user to quickly connect their laptop so VGA, PS/2, RS-232, etc. devices were instantly attached. As higher speed ports like USB and Firewire became commonplace, the Port Replication was accomplished by a small cable connected to one of the USB 2.0 or FireWire ports on the notebooks. Wireless Port Replicators followed. Virtually all laptops can be powered from an external AC converter. This device typically adds half a kilogram (1 lb) to the overall "transport weight" of the equipment. A pointing stick or touchpad is used to control the position of the cursor on the screen. The pointing stick is usually a rubber dot that is located between the G, H and B keys on the laptop keyboard. To navigate the cursor, pressure is applied in the direction intended to move. The touchpad is touch-sensitive and the cursor can be navigated by moving the finger on the pad.
[edit] Disadvantages
[edit] Standardization issuesWhile there are accepted world standards of form factors for all the peripherals and add-in PC cards used in the desktop computers, there are still no firm worldwide standards relating to today's laptops' form factors internally, such as supply of electric voltage, motherboard layouts, internal adapters used in connecting the hard disk, optical drive, LCD cable, keyboard and floppy drive to the main board. Most affected by this are uneducated users, especially if they attempt to connect their laptops with incompatible hardware or power adapters.
Laptops are more complex than simple-to-use consumer electronics. A large number of different parts with similar functions may cause some difficulties to repair people, as they have to familiarize themselves with different sets of hardware, but this is part of the job in a specialized trade.
[edit] Compatibility issuesAny current compatibility problems in the laptop trade are reflective to the early era of personal computers, when there were many different manufacturers, each and every one of them having their own systems and incompatibility was more a norm.
Some mostly internal or proprietary parts made by laptop producers aren't interchangeable with other manufacturers' products, so that the same manufacturer's components are used with the laptop they produced. Some of the reasons for this are to ensure product stability, prolong product lifetime, to avoid dubious warranty issues and to protect computer beginners from harming their machines.
A significant point to note is that the vast majority of laptops on the market are manufactured by a small handful of ODMs.[1][2] The ODM matters more than the OEM. Major relationships include:
Compal sells to Toshiba, HP/Compaq, Acer, and Dell Quanta sells to HP/Compaq, Dell, Toshiba, Sony, Fujitsu, Acer, NEC, and IBM Winstron sells to HP/Compaq, Dell, IBM, NEC, and Acer Arima sells to HP/Compaq, NEC, and Dell Uniwill/ECS sells to IBM, Fujitsu, and Dell Asus sells to Apple (iBook), Sony, and Samsung Inventec sells to HP/Compaq, Toshiba, and BenQ To compensate, some manufacturers have and have had product lines where they have refrained from including some internal hardware in their products by adding in the number of standard hardware outlets and ports, thereby letting users choose their own hardware that they can connect.
In terms of hardware components standardization, PCMCIA/CardBus has proved to be a rather enduring standard. Older laptops lacking a USB port can have a PCMCIA USB/FireWire adapter plugged in. Modern adapters have two to four USB ports or they can be USB/Firewire combo adapters. Thus, such compatibility problems with getting hardware and peripherals connected has nowadays become a non-issue.
[edit] Free softwareIn some situations, users may have to pay for the additional cost that is wielded by some laptop manufacturers, by using their proprietary hardware extensions and including internal hardware that lacks documentation that would be instrumental in developing free software drivers.
Users of free and open-source software (FOSS) are more affected by this, as internal laptop hardware is not as easy or downright impossible to replace (when hardwired) than with stock desktop PC's. Aside from the Microsoft tax, if internal laptop hardware is lacking drivers, free or otherwise, for FOSS operating systems (such as Linux and *BSD), it is of little use to them and essentially deadweight.
Therefore, users should first carefully research the desired products to avoid this and choose manufacturers that are known for favoring free and open source software.
[edit] Naming conventionsNaming of features and parts used and/or their categories also differs from manufacturer to manufacturer, such as "system board" used by IBM and "motherboard" used by Compaq, "display cable", "LCD cable", "flexi-cable" are the terms used by the general public refer to the cable connecting the external display to the main board for transferring the digital signal (actual signalling is more or less standardized, though). Hardware problems with cables can be solved by correctly buying the right cables in the first place. Having some cable adapters is handy when dealing with hardware that was manufactured in different time periods by different standards.
The palm rest is called "palm rest" by Dell[3], the "keyboard bezel" by IBM[4] and the "upper CPU cover" by Compaq and HP.[5]
[edit] UpgradeabilityLaptops' upgradeability is severely limited, both for technical and economic reasons. As of 2006, there is no industry-wide standard form factor for laptops. Each major laptop vendor pursues its own proprietary design and construction, with the result that laptops are difficult to upgrade and exhibit high repair costs. With few exceptions, laptop components can rarely be swapped between laptops of competing manufacturers, or even between laptops from the different product-lines of the same manufacturer. Standard feature peripherals (such as audio, video, USB, 1394, WiFi, Bluetooth) are generally integrated on the main PCB (motherboard), and thus upgrades often require using external ports, card slots, or wireless peripherals. Other components, such as RAM modules, hard drives, and batteries are typically user-upgradeable.
Many laptops have removable CPUs, although support for other CPUs is restricted to the specific models supported by the laptop motherboard. The socketed CPUs are perhaps for the manufacturer's convenience, rather than the end-user, as few manufacturers try new CPUs in last year's laptop model with an eye toward selling upgrades rather than new laptops. In many other laptops, the CPU is soldered and non-replaceable. [6]
Many laptops also include an internal MiniPCI slot, often occupied by a WiFi or Bluetooth card, but as with the CPU, the internal slot is often restricted in the range of cards that can be installed. The widespread adoption of USB mitigates I/O connectivity to a great degree, although the user must carry the USB peripheral as a separate item.
NVidia and ATI have proposed a standardized interface for laptop GPU upgrades (such as an MXM), but again, choices are limited compared to the desktop PCIe/AGP after-market.
[edit] Performance A modern mid-range HP Laptop. It is best used as a desktop replacementFor a given price range (and manufacturing base), laptop computational power has traditionally trailed that of desktops. This is partly due to most laptops sharing RAM between the program memory and the graphics adapter. By virtue of their usage goals, laptops prioritize energy efficiency and compactness over absolute performance. Desktop computers and their modular components are built to fit much bigger standard enclosures, along with the expectation of AC line power. As such, energy efficiency and portability for desktops are secondary design goals compared to absolute performance.
For typical home (personal use) applications, where the computer spends the majority of its time sitting idle for the next user input, laptops of the thin-client type or larger are generally fast enough to achieve the required performance. 3D gaming, multimedia (video) encoding and playback, and analysis-packages (database, math, engineering, financial, etc.) are areas where desktops still offer the casual user a compelling advantage.
With the advent of dual-core processors and perpendicular recording, laptops are beginning to close the performance gap with PCs. Intel's Core 2 line of processors is efficient enough to be used in portable computers, and many manufacturers such as Apple Computer and Dell are building Core 2 based laptops. Also, many high end laptop computers feature mobility versions of graphics cards, eliminating the performance losses associated with integrated graphics.
Health issues Laptop coaster preventing heating of lap and improving laptop airflow.A study by State University of New York researchers says heat generated from laptops can significantly elevate the temperature of the scrotum, potentially putting sperm count at risk. The study, which included more than two dozen men ages 13 to 35, found that the sitting position required to balance a laptop can raise scrotum temperature by as much as 2.1°C. Heat from the laptop itself can raise the temperature by another 0.7°C, bringing the potential total increase to 2.8°C. Heating of the scrotum is known to cause temporary sterility in men. [7]Article-Health & Laptop ComputersSomething which could reduce this effect is using the laptop on a table or using a laptop coaster between the laptop and the lap, see image on the right. This a custom size cut or saw plastic cutting board wrapped in aluminum foil fixed with adhesive tape. Often the airflow for cooling the laptop is limited when the laptop is used on the lap or sometimes with a duvet in between the lap and laptop, hence the heat is easily conducted to the scrotum. This home made object reduces this problem by allowing for better cooling of the laptop and protecting the lap partly from excessive heat and electromagnetic radia

Free software

Messangers

                          MSN Live Messenge                                          17.2 MB


                          Yahoo! Messenger 9.0.0.2160                              14.1 MB


                          AMSN Messenger)                                            6.18 MB



Utilities

                WinZip 12.1 (Shareware)     13 MB
                WinRAR 3.80 (Shareware)     1.17 MB
                Free Download Manager (Freeware)     1.36 MB
                Download Accelerator 8.1 (Shareware)     5.76 MB
                Folder Guard (Freeware)     623 KB

                 Quick Zip 3.06.1 (Freeware/Win XP)                             3.11 MB
      Reader
                 Adobe Acrobat Reader 7.0 (freeware)                          19.8 MB

    Multimedia

                     jetAudio 7.5.2 Basic (Freeware)   25.9 MB
                    Winamp 5.24 (Freeware)     8.25 MB
                    Windows Media Player 11 (Freeware)   24.5 MB
                    Quick Time 7.1.3 (Freeware)   19.66 MB

                      DirectX 9 (Freeware)                                                 35 MB
    Internet Browsers

                                 Firefox 3.0.10 (Freeware)                               7.17 MB 

Monday, February 7, 2011

LED Monitor

LED Monitor: Led monitor is the new version of LCD monitor, which uses LEDs to illuminate the display.Computer monitors have become of great interest to users because they have been improved and because it is important for us to be aware of these improvements in order to be able to obtain good results within our work. Monitors are useful for us in this respect because they are the components on which the results of all the instructions which the computer system operates are being displayed and in this way if the monitor is a good quality one the results will be the same but if not, users will not be able to have the great imaging experience that we want to have.Nowadays, there are many models of computer monitor available for uses. The great majority of users are interested in liquid crystal display type of monitors because they present a much nicer design and some of them also include very good features which determine their good quality. There are also available for users to analyze models of cathode ray tube types of monitors, which have been widely used in the past. In the end, it is important that we all have the chance to analyze all sorts of models and types of computer monitors because in this way we can all decide on our own which one we consider to be the best one for us to buy and use. Among these models, LED computer monitors have also been appreciated by many users
 Some LED Monitor Pictures


What is an IRQ or Interrupt request?

An IRQ is is really an Interrupt Request line.  In the case of expansion boards, it is an actual contact (finger) on the board, and it is a corresponding pin in the sockets on the bus connected by a trace on the motherboard.  A device sends a interrupt to the motherboard's interrupt circuitry by changing the voltage level on the interrupt request line.  This voltage change acts via interrupt controller circuitry to interrupt the processor to service the device needing the CPU's attention.  Simply put, if, for example, a serial port is receiving data from a MODEM, it can't wait until it's buffer overflows for the CPU, etc. to come to its assistance
The CPU will then temporally store the program and data it is working on in an area of memory know as the stack and load a routine (program) to service the interrupting device, service the device (move that data out of its buffer, etc.), and then restore the program and data it was previously working on and resume what it was doing.  A CPU can be interrupted many times a second--a marvelously complicated affair when one considers that a CPU can be working on one interrupt request and be interrupted in this task by still another IRQ request of a higher priority, etc., and that it usually does all of this juggling without losing a beat or data.
The IRQ structure in today's PC's goes all the way back to the Intel 8086 processor and the Intel 8259 Programmable Interrupt Controller (I remember working with this combination in 1979).  The 8259 can control eight IRQ lines. When IBM came out with the XT computer with an 8080 processor and 8-bit expansion bus, it used one 8259, the top chip.  Later IBM came out with the 286 AT computer with an a 16-bit expansion bus and two 8259's as shown.  The INT signal (Interrupt--prioritized interrupt) of the second 8259 was connected to the old IRQ2 pin on the first 8259 and the IRQ 2 line was plugged into IRQ 9 on the new 8259.  The old 8-bit bus lives on in the 16-bit ISA expansion slot on your PC, which is really an expanded 8-bit socket with additional pins to bring it to 16-bits in front of it.  And the old 16 IRQ structure still governs those PCI slots.  Of course, the functions of 8259 have long since be incorporated into the large chipsets on today's motherboards.IRQs are prioritized and serviced in priority order by the CPU as determined by the controller.  As IRQs 8 through 15 trigger IRQ2 on the top 8259, thus, they have a higher priority than IRQs 3 through 7.  Any expansion board that is set to use IRQ 2 is really using IRQ 9.  Some boards lable/depict it as IRQ 2, others IRQ 9, and still others IRQ 2/9.  No matter what it is called, one must not set two ISA boards to the very same IRQ.

Here is a list of the IRQs and common settings:


IRQ 0
System timer interrupt from TIMER-0. No user-definable options.
IRQ 1
Keyboard controller
IRQ 2
Cascade for IRQs 8-15. IRQ 9 cascade to IRQ 2 through a software redirect.
IRQ 3
Available. The standard IRQ for COM 2/COM 4.
IRQ 4
Available. IRQ 4 is the standard for COM 1/COM 3 -- the serial mouse connection. Don't try to have the mouse share an IRQ.
IRQ 5
Available. This is the default IRQ for most sound cards. Network card and LPT 2 are often set to IRQ 5, IF a sound card is not used.
IRQ 6
Floppy Drive controller. No user-definable options.
IRQ 7
Primary parallel (printer) port - LPT 1. If a parallel port is not used, then IRQ 7 can be assigned to another device.
IRQ 8
Real Time Clock. No user-definable options.
IRQ 9
Cascades to IRQ 2.
IRQ 10
Available. If a sound card is using IRQ 5, then this IRQ can be used for a network card.
IRQ 11
Available. Often used for a SCSI controller.
IRQ 12
Available. Often used for the PS2 style mouse.
IRQ 13
Math Coprocessor. No user-definable optinos.
IRQ 14
Primary IDE (hard drive, CD ROM) controller. The 2 IDE devices on the same cable use the one IRQ.
IRQ 15
Secondary IDE channel. Available if the secondary channel is
 


Thursday, February 3, 2011

Forex

FOREX - the foreign exchange market or currency market or Forex is the market where one currency is traded for another. It is one of the largest markets in the world.
Some of the participants in this market are simply seeking to exchange a foreign currency for their own, like multinational corporations which must pay wages and other expenses in different nations than they sell products in. However, a large part of the market is made up of currency traders, who speculate on movements in exchange rates, much like others would speculate on movements of stock prices. Currency traders try to take advantage of even small fluctuations in exchange rates.
In the foreign exchange market there is little or no 'inside information'. Exchange rate fluctuations are usually caused by actual monetary flows as well as anticipations on global macroeconomic conditions. Significant news is released publicly so, at least in theory, everyone in the world receives the same news at the same time.

 
Currencies are traded against one another. Each pair of currencies thus constitutes an individual product and is traditionally noted XXX/YYY, where YYY is the ISO 4217 international three-letter code of the currency into which the price of one unit of XXX currency is expressed. For instance, EUR/USD is the price of the euro expressed in US dollars, as in 1 euro = 1.2045 dollar.
Unlike stocks and futures exchange, foreign exchange is indeed an interbank, over-the-counter (OTC) market which means there is no single universal exchange for specific currency pair. The foreign exchange market operates 24 hours per day throughout the week between individuals with forex brokers, brokers with banks, and banks with banks. If the European session is ended the Asian session or US session will start, so all world currencies can be continually in trade. Traders can react to news when it breaks, rather than waiting for the market to open, as is the case with most other markets.
Average daily international foreign exchange trading volume was $1.9 trillion in April 2004 according to the BIS study.
Like any market there is a bid/offer spread (difference between buying price and selling price). On major currency crosses, the difference between the price at which a market maker will sell ("ask", or "offer") to a wholesale customer and the price at which the same market-maker will buy ("bid") from the same wholesale customer is minimal, usually only 1 or 2 pips. In the EUR/USD price of 1.4238 a pip would be the '8' at the end. So the bid/ask quote of EUR/USD might be 1.4238/1.4239.
This, of course, does not apply to retail customers. Most individual currency speculators will trade using a broker which will typically have a spread marked up to say 3-20 pips (so in our example 1.4237/1.4239 or 1.423/1.425). The broker will give their clients often huge amounts of margin, thereby facilitating clients spending more money on the bid/ask spread. The brokers are not regulated by the U.S. Securities and Exchange Commission (since they do not sell securities), so they are not bound by the same margin limits as stock brokerages. They do not typically charge margin interest, however since currency trades must be settled in 2 days, they will "resettle" open positions (again collecting the bid/ask spread).
Individual currency speculators can work during the day and trade in the evenings, taking advantage of the market's 24 hours long trading day.   
Foreign Exchange (FOREX) is the arena where a nation's currency is exchanged for that of another. The foreign exchange market is the largest financial market in the world, with the equivalent of over $1.9 trillion changing hands daily; more than three times the aggregate amount of the US Equity and Treasury markets combined. Unlike other financial markets, the Forex market has no physical location and no central exchange (off-exchange). It operates through a global network of banks, corporations and individuals trading one currency for another. The lack of a physical exchange enables the Forex market to operate on a 24-hour basis, spanning from one zone to another in all the major financial centers.

Traditionally, retail investors' only means of gaining access to the foreign exchange market was through banks that transacted large amounts of currencies for commercial and investment purposes. Trading volume has increased rapidly over time, especially after exchange rates were allowed to float freely in 1971. Today, importers and exporters, international portfolio managers, multinational corporations, speculators, day traders, long-term holders and hedge funds all use the FOREX market to pay for goods and services, transact in financial assets or to reduce the risk of currency movements by hedging their exposure in other markets.

MG Financial Group, now operating in over 100 countries, serves all manner of clients, comprising speculators and strategic traders. Whether it’s day-traders looking for short-term gains, or fund managers wanting to hedge their non-US assets, MG's DealStation™ allows them to participate in FOREX trading by providing a combination of live quotes, Real-Time charts, and news and analysis that attracts traders with an orientation towards fundamental and/or technical analysis.

Hard Drive

A hard disk drive (HDD), commonly referred to as a hard drive or hard disk,is a non-volatile storage device which stores digitally encoded data on rapidly rotating platters with magnetic surfaces. Strictly speaking, "drive" refers to a device distinct from its medium, such as a tape drive and its tape, or a floppy disk drive and its floppy disk. Early HDDs had removable media; however, an HDD today is typically a sealed unit with fixed media.

HDDs were originally developed for use with computers. In the 21st century, applications for HDDs have expanded beyond computers to include digital video recorders, digital audio players, personal digital assistants, digital cameras, and video game consoles. In 2005 the first mobile phones to include HDDs were introduced by Samsung and Nokia. The need for large-scale, reliable storage, independent of a particular device, led to the introduction of configurations such as RAID arrays, network attached storage (NAS) systems and storage area network (SAN) systems that provide efficient and reliable access to large volumes of data. Technology-HDDs record data by magnetizing a magnetic material in a pattern that represents the data. They read the data back by detecting the magnetization of the material. A typical HDD design consists of a spindle which holds one or more flat circular disks called platters, onto which the data is recorded. The platters are made from a non-magnetic material, usually glass or aluminum, and are coated with a thin layer of magnetic material. Older disks used iron(III) oxide as the magnetic material, but current disks use a cobalt-based alloy.

The platters are spun at very high speeds. Information is written to a platter as it rotates past mechanisms called read-and-write heads that fly very close over the magnetic surface. The read-and-write head is used to detect and modify the magnetization of the material immediately under it. There is one head for each magnetic platter surface on the spindle, mounted on a common arm. An actuator arm (or access arm) moves the heads on an arc (roughly radially) across the platters as they spin, allowing each head to access almost the entire surface of the platter as it spins.

The magnetic surface of each platter is divided into many small sub-micrometre-sized magnetic regions, each of which is used to encode a single binary unit of information. In today's HDDs each of these magnetic regions is composed of a few hundred magnetic grains. Each magnetic region forms a magnetic dipole which generates a highly localised magnetic field nearby. The write head magnetizes a magnetic region by generating a strong local magnetic field nearby. Early HDDs used the same inductor that was used to read the data as an electromagnet to create this field. Later versions of inductive heads included, metal in Gap (MIG) heads and thin film heads. In today's heads the read and write elements are separate but are in close proximity on the head portion of an actuator arm. The read element is typically magneto-resistive while the write element is typically thin-film inductive

Monday, January 17, 2011

Computer

A computer is a programmable machine that receives input, stores and manipulates data, and provides output in a useful format.
While a computer can, in theory, be made out of almost anything (see misconceptions section), and mechanical examples of computers have existed through much of recorded human history, the first electronic computers were developed in the mid-20th century (1940–1945). Originally, they were the size of a large room, consuming as much power as several hundred modern personal computers (PCs)..Modern computers based on integrated circuits are millions to billions of times more capable than the early machines, and occupy a fraction of the space. Simple computers are small enough to fit into mobile devices, and can be powered by a small battery. Personal computers in their various forms are icons of the Information Age and are what most people think of as "computers". However, the embedded computers found in many devices from MP3 players to fighter aircraft and from toys to industrial robots are the most numerous.

History of computing

The first use of the word "computer" was recorded in 1613, referring to a person who carried out calculations, or computations, and the word continued to be used in that sense until the middle of the 20th century. From the end of the 19th century onwards though, the word began to take on its more familiar meaning, describing a machine that carries out computations.

Memory

A computer's memory can be viewed as a list of cells into which numbers can be placed or read. Each cell has a numbered "address" and can store a single number. The computer can be instructed to "put the number 123 into the cell numbered 1357" or to "add the number that is in cell 1357 to the number that is in cell 2468 and put the answer into cell 1595". The information stored in memory may represent practically anything. Letters, numbers, even computer instructions can be placed into memory with equal ease. Since the CPU does not differentiate between different types of information, it is the software's responsibility to give significance to what the memory sees as nothing but a series of numbers.

In almost all modern computers, each memory cell is set up to store binary numbers in groups of eight bits (called a byte). Each byte is able to represent 256 different numbers (2^8 = 256); either from 0 to 255 or −128 to +127. To store larger numbers, several consecutive bytes may be used (typically, two, four or eight). When negative numbers are required, they are usually stored in two's complement notation. Other arrangements are possible, but are usually not seen outside of specialized applications or historical contexts. A computer can store any kind of information in memory if it can be represented numerically. Modern computers have billions or even trillions of bytes of memory.

The CPU contains a special set of memory cells called registers that can be read and written to much more rapidly than the main memory area. There are typically between two and one hundred registers depending on the type of CPU. Registers are used for the most frequently needed data items to avoid having to access main memory every time data is needed. As data is constantly being worked on, reducing the need to access main memory (which is often slow compared to the ALU and control units) greatly increases the computer's speed.

Computer main memory comes in two principal varieties: random-access memory or RAM and read-only memory or ROM. RAM can be read and written to anytime the CPU commands it, but ROM is pre-loaded with data and software that never changes, so the CPU can only read from it. ROM is typically used to store the computer's initial start-up instructions. In general, the contents of RAM are erased when the power to the computer is turned off, but ROM retains its data indefinitely. In a PC, the ROM contains a specialized program called the BIOS that orchestrates loading the computer's operating system from the hard disk drive into RAM whenever the computer is turned on or reset. In embedded computers, which frequently do not have disk drives, all of the required software may be stored in ROM. Software stored in ROM is often called firmware, because it is notionally more like hardware than software. Flash memory blurs the distinction between ROM and RAM, as it retains its data when turned off but is also rewritable. It is typically much slower than conventional ROM and RAM however, so its use is restricted to applications where high speed is unnecessary.

In more sophisticated computers there may be one or more RAM cache memories which are slower than registers but faster than main memory. Generally computers with this sort of cache are designed to move frequently needed data into the cache automatically, often without the need for any intervention on the programmer's part.