samedi 1 juin 2013

What is Graphics Card and Why we need it?

Graphics Card -- What is Graphic Card

Graphics Card is the device which enables our computers or mobiles to show the enhanced graphical details. To represent real time environment in computer or mobile we need high end details with high definitions, graphic card enables us to do this job perfectly.
Technically speaking, graphic card ( GPU - Graphical Processing Unit ) contains its own processor and memory to run high definition image details. There are many vendors who are providing these graphics cards like nVidia and ATI. These both companies are main rivals in graphics card manufacturing and designing.
Technologies on the basis these graphic cards are designed, Open GL and Direct X. Open GL is open source Graphics support, where as DirectX is Microsoft's created standard and rules.

NVIDIA Graphics Card

NVIDIA Graphics Card
NVIDIA Graphics Card
Parts of Graphics Card
Parts of Graphics Card

Main Graphics Card Manufacturers

There are 2 main rivals
  1. NVidia
  2. ATI
Both brands are working hard to compete each other in the race of graphics technology.
Nvidia has introduced:
  1. GeForce
  2. Quadro
  3. nForce
  4. Tegra
GeForce technology is introduced to make our personal user computer capable of playing graphical enhanced games like doom, FarCry etc.
Quadro technology is introduced to make workstations capable to run CAD (Computer Aided Designs) and also DCC (Digital Content Creation)
nForce technology is introduced to make motherboards capable of playing games. Chip-set of nForce is placed on motherboard to facilitate general user with economic pack.
Tegra technology is introduced for mobile graphics.
Similarly ATI has divisions of technology. Like
  1. Mach Series
  2. Rage Series
  3. Radeon Series
Mach Series were introduced when GUI 2D was first time presented in Windows.
Rage Series - 3D graphics enhancement were introduced after Mach Series.
Radeon Series - it was introduced in yeah 2000 for the better graphical performance.
Nowadays every computer is provided with Graphic Cards. Before buying any graphics card following things should be observed. Memory should be enough, GPU should be enough fast to run heavy games, should meet the latest technology. In my next post I'll explain which things we need to know before buying graphics card.

What is RAID?

Using Multiple Hard Drives for Performance and Reliability

Introduction
Back in the late 1980's and early 1990's, computer information servers were encountering a dramatic increase in the amount of data they needed to serve and store. Storage technologies were getting very expensive to place a large number of high capacity hard drives in the servers. A solution was needed and thus RAID was born.
So what exactly is RAID? First of all, the acronym stands for Redundant Array of Inexpensive Disks. It was a system developed whereby a large number of low cost hard drives could be linked together to form a single large capacity storage device that offered superior performance, storage capacity and reliability over older storage solutions. It has been widely used and deployed method for storage in the enterprise and server markets, but over the past 5 years has become much more common in end user systems.

 

Advantages of RAID
There are three primary reasons that RAID was implemented:
  • Redundancy
  • Increased Performance
  • Lower Costs
Redundancy is the most important factor in the development of RAID for server environments. This allowed for a form of backup of the data in the storage array in the event of a failure. If one of the drives in the array failed, it could either be swapped out for a new drive without turning the systems off (referred to as hot swappable) or the redundant drive could be used. The method of redundancy depends on which version of RAID is used.
The increased performance is only found when specific versions of the RAID are used. Performance will also be dependent upon the number of drives used in the array and the controller.
All managers of IT departments like low costs. When the RAID standards were being developed, cost was also a key issue. The point of a RAID array is to provide the same or greater storage capacity for a system compared to using individual high capacity hard drives. A good example of this can be seen in the price differences between the highest capacity hard drives and lower capacity drives. Three drives of a smaller size could cost less than an individual high-capacity drive but provide more capacity.
There are typically three forms of RAID used for desktop computer systems: RAID 0, RAID 1 and RAID 5. In most cases, only the first two of these versions is available and one of the two technically is not a form of RAID.
RAID 0
The lowest designated level of RAID, level 0, is actually not a valid type of RAID. It was given the designation of level 0 because it fails to provide any level of redundancy for the data stored in the array. Thus, if one of the drives fails, all the data is damaged.
RAID 0 uses a method called striping. Striping takes a single chunk of data like a graphic image, and spreads that data across multiple drives. The advantage that striping has is in improved performance. Twice the amount of data can be written in a given time frame to the two drives compared to that same data being written to a single drive.
Below is an example of how data is written in a RAID 0 implementation. Each row in the chart represents a physical block on the drive and each column is the individual drive. The numbers in the table represent the data blocks. Duplicate numbers indicate a duplicated data block.

Drive 1 Drive 2
Block 1 1 2
Block 2 3 4
Block 3 5 6
Thus, if the 6 blocks of data above constitute a single data file, it can be read and written to the drive much faster than if it were on a single drive. Each drive working in parallel could read only 3 physical blocks while it would take a single drive twice as long because it has to read 6 physical blocks. The drawback of course is that if one drive fails, the data is no longer functional. All 6 data blocks are needed for the file, but only three are accessible.
Advantages:
  • Increased storage performance
  • No loss in data capacity
Disadvantages:
  • No redundancy of data
RAID 1
RAID version 1 was the first real implementation of RAID. It provides a simple form of redundancy for data through a process called mirroring. This form typically requires two individual drives of similar capacity. One drive is the active drive and the secondary drive is the mirror. When data is written to the active drive, the same data is written to the mirror drive.
The following is an example of how the data is written in a RAID 1 implementation. Each row in the chart represents a physical block on the drive and each column is the individual drive. The numbers in the table represent the data blocks. Duplicate numbers indicate a duplicated data block.

Drive 1 Drive 2
Block 1 1 1
Block 2 2 2
Block 3 3 3
This provides a full level of redundancy for the data on the system. If one of the drives fails, the other drive still has all the data that existed in the system. The big drawback of course is that the capacity of the RAID will only be as big as the smallest of the two drives, effectively halving the amount of storage capacity if the two drives were used independently.
Advantages:
  • Provides full redundancy of data
Disadvantages
  • Storage capacity is only as large as the smallest drive
  • No performance increases
  • Some downtime to change active drive during a failure
RAID 0+1
This is a hybrid form of RAID that some manufacturers have implemented to try and give the advantages of each of the two versions combined. Typically this can only be done on a system with a minimum of 4 hard drives. It then combines the methods of mirroring and striping to provide the performance and redundancy. The first set of drives will be active and have the data striped across them while the second set of drives will be a mirror of the data on the first two.
Below is an example of how data is written in a RAID 0+1 implementation. Each row in the chart represents a physical block on the drive and each column is the individual drive. The numbers in the table represent the data blocks. Duplicate numbers indicate a duplicated data block.

Drive 1 Drive 2 Drive 3 Drive 4
Block 1 1 2 1 2
Block 2 3 4 3 4
Block 3 5 6 5 6
In this case, the data blocks will be striped across the drives within each of the two sets while it is mirrors between the sets. This gives the increased performance of RAID 0 because it takes the drive half the time to write the data compared to a single drive and it provides redundancy. The major drawback of course is the cost. This implementation requires a minimum of 4 hard drives.
Advantages:
  • Increased performance
  • Data is fully redundant
Disadvantages:
  • Large number of drives required
  • Effective data capacity is halved
RAID 10 or 1+0
RAID 10 is effectively a similar version to RAID 0+1. Rather than striping data between the disk sets and then mirroring them, the first two drives in the set are a mirrored together. The second two drives form another set of disks that is are mirror of one another but store striped data with the first pair. This is a form of nested RAID setup. Drives 1 and 2 are a RAID 1 mirror and drives 3 and 4 are also a mirror. These two sets are then setup as stripped array.
Below is an example of how data is written in a RAID 10 implementation. Each row in the chart represents a physical block on the drive and each column is the individual drive. The numbers in the table represent the data blocks. Duplicate numbers indicate a duplicated data block.

Drive 1 Drive 2 Drive 3 Drive 4
Block 1 1 1 2 2
Block 2 3 3 4 4
Block 3 5 5 6 6
Just like the RAID 0+1 setup, RAID 10 requires a minimum of four hard drives to function. Performance is pretty much the same but the data is a bit more protected than the RAID 0+1 setup.
Advantages:
  • Increased performance
  • Data is fully redundant
Disadvantages:
  • Large number of drives required
  • Effective data capacity is halved
RAID 5
This is the most powerful form of RAID that can be found in a desktop computer system. Typically it requires the form of a hardware controller card to manage the array, but some desktop operating systems can create these via software. This method uses a form of striping with parity to maintain data redundancy. A minimum of three drives is required to build a RAID 5 array and they should be identical drives for the best performance.
Parity is essentially a form of binary math that compares two blocks a data and forms a third data block based upon the first two. The easiest way to explain it is even and odd. If the sum of the two data blocks is even, then the parity bit is even. If the sum of the two data blocks is odd, the parity bit is odd. So 0+0 and 1+1 both equal 0 while 0+1 or 1+0 will equal 1. Based on this form of binary math, a failure in one drive in the array will allow the parity bit to reconstruct the data when the drive is replaced.
With that information in mind, here is an example of how a RAID 5 array would work. Each row in the chart represents a physical block on the drive and each column is the individual drive. The numbers in the table represent the data blocks. Duplicate numbers indicate a duplicated data block. A "P" indicates a parity bit for two blocks of data.

Drive 1 Drive 2 Drive 3
Block 1 1 2 P
Block 2 3 P 4
Block 3 P 5 6
The parity bit shifts between the drives to increase the performance and reliability of the data. The drive array will still have increased performance over a single drive because the multiple drives can write the data faster than a single drive. The data is also fully redundant because of the parity bits. In the case of drive 2 failing, the data can be rebuilt based on the data and parity bits on the two remaining drives. Data capacity is reduced due to the parity data blocks. In practice the capacity of the array is based on the following equation where n is the number of drives and z is the capacity:
(n-1)z = Array Capacity
In the case of three 500 gigabyte hard drives, the total capacity would be (3-1)x500GB or 1000 gigabytes.
Hardware RAID 5 implementations can also have a function called hot swap. This allows for drives to be replaced while the array is still functioning to either increase the drives capacity or to replace a damaged drive. The drive controller then takes time while the array is running to rebuild the data array across the drives. This is a valuable feature for systems that require 24x7 operation.
Advantages:
  • Increased storage array performance
  • Full data redundancy
  • Ability to run 24x7 with hot swap
Disadvantages
  • High costs to implement
  • Performance degrades during rebuilding
Software vs. Hardware RAID
In order for RAID to function, there needs to be software either through the operating system or via dedicated hardware to properly handle the flow of data from the computer system to the drive array. This is particularly important when it comes to RAID 5 due to the large amount of computing required to generate the parity calculations.
In the case of software implementations, CPU cycles are taken away from the general computing environment to perform the necessary tasks for the RAID interface. Software implementations are very low cost monetarily because all that is necessary to implement one is the hard drives. The problem with software RAID implementations is the performance drop of the system. In general, this performance hit can be anywhere from 5% or even greater depending upon the processor, memory, drives used and the level of RAID implemented. Most people do not use software RAID anymore due to the decreasing costs of hardware RAID controllers over the years.
Hardware RAID has the advantage of dedicated circuitry to handle all the RAID drive array calculations outside of the processor. This provides excellent performance for the storage array. The drawbacks to hardware RAID have been the costs. In the case of RAID 0/1 controllers, those costs have become so low that many chipset and motherboard manufacturers are including these capabilities on the motherboards. The real costs rest with RAID 5 hardware that require more circuitry for added computing ability.
Drive Selection
What a lot of people don't realize is that the performance and capacity of a RAID array is heavily dependent upon the hard drives used in the array. For the best results, all hard drives in the array should be the same brand and model. This means that all of the hard drives will have the same capacity and performance levels. It is not a requirement that the drives be matched, but mismatching the drives can actually hurt the RAID array.
The capacity of the RAID array will depend upon the method implemented. In the case of RAID 0, the striping can only be done across an equal amount of space on the two drives. As a result, if an 80GB and 100GB drive are used to make the array, the final capacity of the array would only be 160GB. Similarly, in RAID 1 the drives can only mirror data equal to the smallest size. Thus based on the two drives mentioned before, the final data size would only be 80GB. RAID 5 is a bit more complicated because of the formula mentioned before. Once again the smallest capacity would be used. So if a 80GB, 100 GB and 120GB drive were used to make a RAID 5 array, the final capacity would be 160GB of data.
Performance of the array is also dependent upon the drives. In order for the array to function properly, it must wait for the data to be written to each of the drives before it can continue. This means that in the example charts for the RAID arrays, the controller must wait until all physical data has been written to block 1 across all the drives in the array before it can continue to the next set of data for the drives. This means an array where one drive has half the performance of the other two will slow down the overall performance of the other drives.
Conclusions
Overall RAID provides systems with a variety of benefits depending upon the version implemented. Most consumer users will likely opt to use the RAID 0 for increased performance without the loss of storage space. This is primarily because redundancy is not an issue for the average user. In fact, most computer systems will only offer either RAID 0 or 1. The costs of implementing a RAID 0+1 or RAID 5 system generally are too expensive for the average consumer and are only found in high-end workstation or server level systems.

6 mistakes when buying a video card

6 mistakes when buying a video card
Since I’ve been a computer geek, I’ve heard many horror stories of people buying a slow video card, thinking that they were getting a fast model.
In general, people make the same several mistakes when they buy their video cards. Have they been with me, I’d have helped them avoid these 6 mistakes when buying a video card:

1- Buying a video card based solely on the amount of memory.

More is better, right? That’s their excuse when you have to justify your purchase to yourself or to your geek friend.
Well yes, but not if you base your purchase solely on the amount of RAM. A video card performance is based on many other factors, such as the GPU chip model, the frequency of the GPU/memory, the memory bus width, etc.
A good example of this would be someone buying a 8600GT 512MB over a 8800GT 256MB. Sure, it may have more memory, but every other factor will limit the card performance in comparison.
Also keep in mind that you won’t need the extra memory unless you play at very high resolutions, such as 1920×1080 and/or with AA/AF quality filtering. Why? Because your video card won’t need/use it.

2- Buying a lower-end new generation model over a higher-end old generation model.

It’s newer, so it must be faster!
Not so quickly. When in the majority of cases, this is true, it is not always true. So? Well, you might miss out on a really good deal, as stores tend to lower prices on older generations, to get rid of their old stock, to make space for the new stock.
Now, the mistake some of you make is to choose your card by using the generation number first. You’d think that a 4xxx card from ATI is automatically faster than a 3xxx model. If you take a Radeon 3870, it’d trash a Radeon 4350 or be faster than a Radeon 4650.
Let me quickly explain how model numbers work, using ATI’s 4850 model as an example.
4850: The first number refers to the generation of the card. A higher number there means that the video card is based on a more recent generation, which always brings in improvements over the previous generation.
4850: The second number refers to the range of that card. Same here, higher is better. In Ati’s case, for the 4xxx series, it goes mostly like this:
  • 3: Low end
  • 6: Mid range
  • 8: High performance
4850: The last two numbers refer to the place of that model, within the hierarchy of that range of video cards (See second point, for the “8″); within a generation (See first point, for the “4″). In the vast majority of cases, a higher number means higher performance, but both ATI and Nvidia tricked people in the past with crippled GS/SE models, so keep an eye open for the suffix if there’s one. No, SE does not mean special edition!!
Although ATI don’t really use suffix on their newer models, Nvidia still are. Here’s a quick reference, from slowest to fastest, when you compare two identical models otherwise:
GS<GT<GTS<GTX . Now, even this is not always true, if you take the 8800 model example. Some of the older GTS models are slower than the newer GT. Confusing, isn’t it?
Just keep in mind that many older generation, higher-end models are often faster than some of the newer models, so make sure to google benchmarks and to compare prices!

3- Not considering the space/power requirements.

So you’ve avoided the two first mistakes, ended up buying a Geforce GTX280, are eager to play the newest games…only to realize that it doesn’t fit in your case! Good job =P
This is especially true when you have a small format case, a HTPC or if you buy a high-end video card.
Lesson here: Measure the space available for the video card in your case (Usually from the back of the case to the hard drive cage) and double-check the length of the card, which is usually found under the specs, before buying it. Check reviews and/or contact the store if you’re unsure.
You’ve bought a great card, it fits in your case, but now you’ve one or several of the following problems? :
  • Your video card needs extra power connectors and you don’t have them.
  • Your computer won’t boot.
  • Your computer boots but crashes under games.
I’m afraid that your power supply may not up to the task of powering your new video card.  Now, that’s most probably it, but it might not be it, make sure to troubleshoot before buying a new power supply.

4- Teaming a powerful video card with a slow Cpu

Yay, you’ve got that new Radeon 4870X2 and you’re ready to dominate the virtual world. Only to see that you’re framerates are no where what you expected to be, according to all those reviews.
Well, if you’re using such a powerful gpu with a slow cpu, lik an Intel E4300, it just won’t work as you want it to. Your cpu will bottleneck your video card performance, which mean that it won’t be able to keep up with it and your video card performance will be reduced as it always waits on the CPU.
Simply try to keep your cpu performance in balance with your video card. If you get a midrange video card (9800 GTX, 4850) , try to team it with a midrange CPU (E7400 and such).
If you use SLI/Crossfire or even better (or worse in this case), make sure to team up your video cards with a blazing fast quad-core CPU. Most games may not benefit from quad-core yet, but the video drivers and the cards themselves will. The new Core i7 cpus are a perfect fit here.

5- Buying an overkill video card for the games that you play.

If you play is Counter-Strike 1.6, WoW or the majority of games that are 2 years or older, you probably don’t need the lastest and fastest video card.
If you play on a 17″ or 19″ screen, you probably don’t need the lastest and fastest video card.
This is just like someone who buys a Mustang simply because they want more horsepower. Could they travel to work and do their everyday activities with a Honda Civic? Most probably.
You will waste a lot of money, both on purchase, power consumption and on upgrading the rest of your system (Cpu and power supply) if you buy a video card that is overkill for your needs.
Learn to listen to your wallet, think with your head and figure out how much power you really need for the games that you play!
Now, some of you may not agree with this, as you’ll say that it’s good to have headroom for future games. I don’t think so. Why? By the time that the new game is out, your video card will still be able to handle it, perhaps at lower settings but newer video cards that offer higher performance for the same price will most probably be out by then.
I think that it is better to upgrade at a low cost every so often than to buy some of the most expensive video cards all the time. Not to mention that higher-end cards tend to devalue faster than mid-range video cards. Just like higher-end cars.
Now, if you absolutely need the fastest and most powerful video card with every new release, just to strike your ego and brag about it, go ahead, just be prepared to pay the price!

6- Listening to the recommendations of only one person.

The last, but certainly not the least of the common mistakes done when buying a video card: Listening to the opinion of a single person. What’s wrong with that?
  • The person may be a fanboy, who would recommend an inferior product from Nvidia or from ATI simply because they prefer that company.
  • The person may not have a clue of what they’re talking about. Not everyone have vast knowledge on video cards.
  • That person’s information may be outdated. After all, new video cards are released on a regular base (every couple of months, or even less)
Always make sure to get the opinion of many trusted people, ask around on forums, contact me, read plenty of reviews and comparisons. You’re going to spend a lot of your hard earned cash on that card, so make sure it is the right one for you.
Same goes for me. Don’t just listen to me, I’m human too hehehe.

Conclusion:

Buying a video card requires thoughtful thinking. With such a variety of cards available on the market, it may be confusing, so remember to avoid these mistakes, ask as many opinions as you can and shop around for good prices!
What has been your experience when buying video cards? Have you made any of the mistakes or were you going to? Do you have any tips to share with us or any mistake that I’ve not mentionned that you think we should know of? Let us know in the comments section just below!