What is etiketine sahip kayıtlar gösteriliyor. Tüm kayıtları göster
What is etiketine sahip kayıtlar gösteriliyor. Tüm kayıtları göster

19 Eylül 2014 Cuma

What are Mining Pools?


bitcoinminingpools
Mining pools are simply a means for miners to combine their resources and share the rewards of mining, so that they can be guaranteed to earn at least some bitcoins rather than take their chances mining alone. There are many different pools available, and they each offer different advantages and terms for joining.
Bitcoin block rewards
The bitcoin network represents a huge amount of hashing power. With bitcoin difficulty passing 1,000,000,000 at the end of 2013 and 5,000,000,000 by the end of March 2014, miners need ever-faster rigs to compete for a limited share of coins. At the present rate, 25 bitcoins are released every 10 minutes, on average.
However, bitcoins are not evenly shared amongst the network. Every time a block is awarded, it is given to just one miner: the one who finds the hash that is used to verify that block. This all-or-nothing approach means that powerful miners have a better chance of gaining some rewards, whereas miners with lower-powered rigs stand practically no chance of ever receiving any bitcoins. This essentially means that a miner going it alone will be extremely lucky to see any return on their investment.
Pooling resources
miningpool-process
The answer to this problem has been the development of mining pools. These allow miners to join together and form associations that can bring enormous collective hashing power to the network. Instead of being awarded to a single miner, any bitcoins received go to the pool. They are then shared amongst its members on a proportional basis, depending on how much hashing power each miner contributes. Lower-powered miners will receive less coins that those who contribute more hashing power. However, the benefit is clear: everyone will receivesomething.
Fees
There are many pools available, and each will have different terms. You should research these carefully as some may be more or less suitable for you. You can find a comprehensive list of pools here. As a broad rule, the amounts these pools pay out is roughly equal; however, there are slight differences and certain models appear to offer advantages at different stages of mining over the months. Others are better suited to newcomers.
Hashrates
The hashrate of a pool is the total amount of hashing power it brings to the network. This is not particularly important in itself, since the rewards you receive will be proportionate to the hashing power you bring, rather than the full pool. When it does become an issue is if a single pool collects enough miners that it represents more than 50 percent of the total mining power in the network. At this point there is a theoretical security issue, since that pool ‘decides’ what the official blockchain looks like. When this has come close to happening in the past, miners have left for other pools to prevent the potential for this to vulnerability to cause an issue.
Merged mining
Some pools allow mining on more than one blockchain using the same hashing. This only works on bitcoin derivatives which use SHA-256 (not on Litecoin and other Scrypt-based cryptocurrencies). It is a way of increasing your potential earnings.
Finally, you should check the reputation and track record of any mining pool you consider joining. Some pools have been subject to hacks and security issues.

Comparison of mining pools

What is Bitcoin Mining? (With 2 Other Sources)

Mining is the process of adding transaction records to Bitcoin's public ledger of past transactions. This ledger of past transactions is called the block chain as it is a chain of blocks. The block chain serves to confirm transactions to the rest of the network as having taken place. Bitcoin nodes use the block chain to distinguish legitimate Bitcoin transactions from attempts to re-spend coins that have already been spent elsewhere.
Mining is intentionally designed to be resource-intensive and difficult so that the number of blocks found each day by miners remains steady. Individual blocks must contain a proof of work to be considered valid. This proof of work is verified by other Bitcoin nodes each time they receive a block. Bitcoin uses the hashcash proof-of-work function.
The primary purpose of mining is to allow Bitcoin nodes to reach a secure, tamper-resistant consensus. Mining is also the mechanism used to introduce Bitcoins into the system: Miners are paid any transaction fees as well as a "subsidy" of newly created coins. This both serves the purpose of disseminating new coins in a decentralized manner as well as motivating people to provide security for the system.
Bitcoin mining is so called because it resembles the mining of other commodities: it requires exertion and it slowly makes new currency available at a rate that resembles the rate at which commodities like gold are mined from the ground.

Difficulty

The Computationally-Difficult Problem

Mining a block is difficult because the SHA-256 hash of a block's header must be lower than or equal to the target in order for the block to be accepted by the network. This problem can be simplified for explanation purposes: The hash of a block must start with a certain number of zeros. The probability of calculating a hash that starts with many zeros is very low, therefore many attempts must be made. In order to generate a new hash each round, a nonce is incremented. See Proof of work for more information.

The Difficulty Metric

The difficulty is the measure of how difficult it is to find a new block compared to the easiest it can ever be. It is recalculated every 2016 blocks to a value such that the previous 2016 blocks would have been generated in exactly two weeks had everyone been mining at this difficulty. This will yield, on average, one block every ten minutes. As more miners join, the rate of block creation will go up. As the rate of block generation goes up, the difficulty rises to compensate which will push the rate of block creation back down. Any blocks released by malicious miners that do not meet the required difficulty target will simply be rejected by everyone on the network and thus will be worthless.

Reward

When a block is discovered, the discoverer may award themselves a certain number of bitcoins, which is agreed-upon by everyone in the network. Currently this bounty is 25 bitcoins; this value will halve every 210,000 blocks. See Controlled Currency Supply.
Additionally, the miner is awarded the fees paid by users sending transactions. The fee is an incentive for the miner to include the transaction in their block. In the future, as the number of new bitcoins miners are allowed to create in each block dwindles, the fees will make up a much more important percentage of mining income.

The mining ecosystem

Hardware


FPGA Module
Users have used various types of hardware over time to mine blocks. Hardware specifications and performance statistics are detailed on the Mining Hardware Comparison page.

CPU Mining

Early Bitcoin client versions allowed users to use their CPUs to mine. The advent of GPU mining made CPU mining financially unwise as the hashrate of the network grew to such a degree that the amount of bitcoins produced by CPU mining became lower than the cost of power to operate a CPU. The option was therefore removed from the core Bitcoin client's user interface.

GPU Mining

GPU Mining is drastically faster and more efficient than CPU mining. See the main article: Why a GPU mines faster than a CPU. A variety of popular mining rigs have been documented.

FPGA Mining

FPGA mining is a very efficient and fast way to mine, comparable to GPU mining and drastically outperforming CPU mining. FPGAs typically consume very small amounts of power with relatively high hash ratings, making them more viable and efficient than GPU mining. See Mining Hardware Comparison for FPGA hardware specifications and statistics.

ASIC Mining

An application-specific integrated circuit, or ASIC, is a microchip designed and manufactured for a very specific purpose. ASICs designed for Bitcoin mining were first released in 2013. For the amount of power they consume, they are vastly faster than all previous technologies and already has made GPU mining financially unwise in some countries and setups.

Mining services (Cloud mining)

Mining contractors provide mining services with performance specified by contract. They may, for example, rent out a specific level of mining capacity for a set price for a specific duration. Hosted mining services and Cloud Mining create systemic risk for Bitcoin because they undermine the security assumption that the control of mining power is well-distributed. If too much hashrate is consolidated in large hosting centres, an attacker is more-easily able to compromise a significant portion of it and could potentially disrupt Bitcoin or steal back their own spent money.

Pools

As more and more miners competed for the limited supply of blocks, individuals found that they were working for months without finding a block and receiving reward for their mining efforts. This made mining something of a gamble. To address the variance in their income miners started organizing themselves into pools so that they could share rewards more evenly. See Pooled mining and Comparison of mining pools.

History

Bitcoin's public ledger (the 'block chain') was started on January 3rd, 2009 at 18:15 UTC presumably by Satoshi Nakamoto. The first block is known as the genesis block. The first transaction recorded in the first block was a single transaction paying the reward of 50 new bitcoins to its creator.

http://bitcoinminer.net/bitcoin-mining/
Source 1 (Bitcoinminer.net)

Source 2 (whatis.techtarget.com)

15 Eylül 2014 Pazartesi

What is Bitcoin?

Bitcoin is an open source, peer-to-peer digital payment system that only exists in cyberspace and does not use physical bank notes or coins. The concept of Bitcoins arose in 2008, after an anonymous user published a paper on a cryptographic digital currency and released the Bitcoin software the following year.
The Bitcoin system is not controlled by any central bank, institution, or country, but operates as a digital currency where users are able to connect directly to each other and transfer Bitcoins anonymously using digital “wallets”.
How are Bitcoins created?
Bitcoins are created in a process known as “mining” which uses the processing power of users’ computers to verify the transfer of Bitcoins between users and create new Bitcoins. Miners verify transactions by using their computers to solve complex mathematical problems. The computer that solves the problem is rewarded with Bitcoins, thereby creating an incentive for others to assist in verifying transactions and support the system.
The Bitcoin system is setup so that as more people mine Bitcoins, the odds of successfully mining one goes down, making it more difficult to mine coins and increasing their value.
Once Bitcoins are created, then what?
Bitcoins can be used to buy goods and services both online and in person with hundreds of Canadian businesses already accepting Bitcoin as a form of payment. Bitcoin Exchange services have also been created to give users the ability to convert their Bitcoins both to and from traditional currencies. In Canada, some cities now have Bitcoin ATMs to make it even easier to buy/sell Bitcoins.
The value of a Bitcoin has recently experienced some volatility, subject largely to demand, world events and businesses activities. As of June 2014, one Bitcoin is equal to $574 US dollars. Over 12 million Bitcoins have been created.

Are Bitcoins considered a real currency?
In Canada, the Currency Act, Royal Canadian Mint Act and the Bank of Canada Act contain provisions governing legal tender and currency. Only Canadian bank notes and coins are recognized as currency and eligible to be used as legal tender in Canada. Barter transaction rules apply where Bitcoins are used to purchase goods or services. Other Governments and their respective financial institutions are still in the process of determining how they view Bitcoin.
Are there risks with using Bitcoin?
Yes, there are risks. Criminal organizations have gravitated to Bitcoin because of the anonymity it offers and the fact that governments are not involved in monitoring transactions. As a result, there have been several underground community websites setup to trade in illegal goods and services exclusively using Bitcoins.

You should also know that hackers have been infecting computer networks to install Bitcoin mining software as well as compromising several high profile Bitcoin exchanges causing numerous companies to go bankrupt, leaving their users with major losses.
You may never need to use Bitcoin, but now you know what it is and some of the risks associated with using this relatively new digital currency.


What is the Hidden Wiki ?




For many who do not know, the deep web is a tremendous section of the world wide web that isn’t accessible via regular queries through yahoo, google or various other search engines.
deep web
Doing a search online these days can be compared to pulling a net across the surface of the sea. Even though a large amount may possibly be captured in this net, there’s still a great deal of info which is deep, and for that reason,it will be missed.
This is because: The majority of the Internet’s info is actually hidden far down on dynamically generated websites, and regular search engines like google will never locate it.
Below are a few facts about the Deep Web:


  • General public info on the deep Web is actually 4 hundred to 5 hundred times larger compared to generally characterized as World-wide-web
  • The deep Web consists of 6,500 terabytes of information in comparison to 20 terabytes of information that is accessible in the surface Web
  • The deep Web is made up of closely 550 billion unique records and documents in contrast to the 1 billion from the surface Web
  • A lot more than 200,000 deep Internet sites currently are present
  • 60 of the largest deep-Websites mutually consist of 750 terabytes of data — enough by themselves in order to surpass the size of the public Web by 40 times
  • The deep Web is actually the largest expanding division of fresh information on the Internet
  • Deep Websites are usually narrower, along with much deeper content material, as compared to regular surface sites
  • Overall quality content material from the deep Web is 1,000 to 2,000 times better than that of the surface Web
  • Deep Web material is remarkably relevant to every single information you need
  • A lot more than 50 percent of the deep Web content is located in topic-specific directories
A full 95% from the deep Web is publicly available information — absolutely not subject to charges or subscriptions.
What is placed under the surface area is actually a who’s who of online hackers, researchers, drug dealers, hitmen, anarchists, revolutionaries, Authorities officers, terrorists, perverts, kidnappers etc. Essentially, this party goes over the whole ethical spectrum.
I find this particular topic to be absolutely interesting that should be researched further. Even though there are lots of bad seeds that live in deep web, there is certainly good seeds who would like to distribute their info rapidly and most usually anonymously, in order to avoid legal or perhaps moral implications.

So What is the Hidden Wiki?

The Hidden Wiki is a really tiny but helpful reference point in order to begin your journey in the deep web


SOURCE

What Is the Deep Web?




The arrest last week of 26-year-old Ross Ulbricht brought to light a little-known world of secret websites dealing in drugs, guns and counterfeit documents that until now have been largely hidden from authorities.
The Silk Road, an online contraband marketplace operated by Ulbricht, was shut down last week. Another, called Atlantis, voluntarily shut down in late September. Both websites used a software called TOR, or The Onion Router, in order to conceal their IP addresses, the numbers that work like street addresses to allow computers, mobile phones and laptops to find them, explained Nicolas Christin, assistant professor of electrical and computer engineering at Carnegie Mellon University.

7 Ways Drugs Ain't What They Used to Be

Both The Silk Road and Atlantis are just two of many websites that belong to what is known as the “deep web” or “dark web” of sites that conceal IP address from search engines and cannot be linked to by other Internet pages or blogs.
Christin said TOR’s encryption software allowed people to buy and sell drugs online (mostly marijuana according to his research), as well as trade pornography and even buy and sell illegal weapons. But TOR has also helped civil society groups in places like Egypt, Syria and Libya to avoid government eavesdropping, journalists to pass information and law enforcement agencies to receive secure anonymous tips electronically. Family members can also use TOR to share photos or other information privately. Christin compared the software to using old-fashioned couriers to carry messengers in between people who want to remain anonymous.
“It allows their couriers to find each other in the middle of the network," Christin said.
Christin said that the website itself does not sell the goods, but operates to match buyers and sellers. "The best comparison is Amazon marketplace,” he said.
It provides buyers with a user-friendly experience, complete with shopping carts and seller ratings, according to Christopher Budd, communications manager at TrendMicro, a IT security firm that recently produced a white paper on the workings of the dark web.
TOR is an open-access software available for anyone to download and install on their computers. In fact its early development was funded in the 1990s by the U.S. Naval Research Laboratory to protect military communications. Development of the current version of TOR was funded by the Electronic Frontier Foundation and released to the public in 2002.
Despite the indictment and arrest last week of Ulbricht, who allegedly operated Silk Road, it’s not clear that federal officials have figured out how to break TOR’s encryption methods.
“What the FBI did was break the human because they know they can’t get around TOR at all,” said Andrew Lewman, executive director of the TOR Project, a non-profit collective of computer specialists that assist TOR users. “They caught him using his real name on various forums.”
Lewman says that there are dozens of other similar sites like The Silk Road that specialize in contraband narcotics or weapons. “Now with Silk Road gone, any one of those can start moving,” Lewman said. That could make it difficult to find the next one.
“Law enforcement is engaged in an ongoing game of whack-a-mole against these sites,” Budd said. “It will be interesting to watch if the takedown of Silk Road will result in increase in prices. Like any thing else in the free market they will respond and probably are going to price in the cost of that additional risk.”
Budd said there’s another way for criminals, spies or just privacy fans to keep communications and commerce secret besides using TOR. A person could reconfigure a computer to access the dark web sites via alternative top-level domains and reach a kind of “shadow internet” that isn’t typically visible.
Budd likened it to an old-time speakeasy where customers in search of a drink need to know where they are and the secret password to get inside.
“It would be great if these sites would go away, but given the nature of the internet it’s not going to happen anytime soon,” Budd said. “They are related to the openness of the Internet and the only way to get rid of things is to create a version of the internet was so controlled and locked down that most people in this country would find that unacceptable.”

14 Eylül 2014 Pazar

What is Brain-computer Interface? (BCI)

Brain-computer interface (BCI) is a collaboration between a brain and a device that enables signals from the brain to direct some external activity, such as control of a cursor or a prosthetic limb. The interface enables a direct communications pathway between the brain and the object to be controlled. In the case of cursor control, for example, the signal is transmitted directly from the brain to the mechanism directing the cursor, rather than taking the normal route through the body's neuromuscular system from the brain to the finger on a mouse.
By reading signals from an array of neurons and using computer chips and programs to translate the signals into action, BCI can enable a person suffering from paralysis to write a book or control a motorized wheelchair or prosthetic limb through thought alone. Current brain-interface devices require deliberate conscious thought; some future applications, such as prosthetic control, are likely to work effortlessly. One of the biggest challenges in developing BCI technology has been the development of electrode devices and/or surgical methods that are minimally invasive. In the traditional BCI model, the brain accepts an implanted mechanical device and controls the device as a natural part of its representation of the body. Much current research is focused on the potential on non-invasive BCI.
Brain Computer Interface

At the European Research and Innovation Exhibition in Paris in June 2006, American scientist Peter Brunner composed a message simply by concentrating on a display. Brunner wore a close-fitting (but completely external) cap fitted with a number of electrodes. Electroencephalographic (EEG) activity from Brunner's brain was picked up by the cap's electrodes and the information used, along with software, to identify specific letters or characters for the message.
The BCI Brunner demonstrated is based on a method called the Wadsworth system. Like other EEG-based BCI technologies, the Wadsworth system uses adaptive algorithm s and pattern-matching techniques to facilitate communication. Both user and software are expected to adapt and learn, making the process more efficient with practice.
During the presentation, a message was displayed from an American neurobiologist who uses the system to continue working, despite suffering from amyotrophic lateral sclerosis (Lou Gehrig's disease). Although the scientist can no longer move even his eyes, he was able to send the following e-mail message: "I am a neuroscientist wHo (sic) couldn't work without BCI. I am writing this with my EEG courtesy of the Wadsworth Center Brain-Computer Interface Research Program."
DARPA , the independent research branch of the U.S. Department of Defense that helped fund the Internet, is among the organizations funding research into BCI.

Basic Info about Quantum Computing

University of Waterloo

What is quantum computing?

Quantum computing is essentially harnessing and exploiting the amazing laws of quantum mechanics to process information. A traditional computer uses long strings of “bits,” which encode either a zero or a one. A quantum computer, on the other hand, uses quantum bits, or qubits. What's the difference? Well a qubit is a quantum system that encodes the zero and the one into two distinguishable quantum states. But, because qubits behave quantumly, we can capitalize on the phenomena of "superposition" and "entanglement."

Superposition and entanglement? Pardon?

It’s OK to be a bit baffled by these concepts, since we don’t experience them in our day-to-day lives. It’s only when you look at the tiniest quantum particles – atoms, electrons, photons and the like – that you see intriguing things like superposition and entanglement.
Superposition is essentially the ability of a quantum system to be in multiple states at the same time — that is, something can be “here” and “there,” or “up” and “down” at the same time.
Entanglement is an extremely strong correlation that exists between quantum particles — so strong, in fact, that two or more quantum particles can be inextricably linked in perfect unison, even if separated by great distances. The particles remain perfectly correlated even if separated by great distances. The particles are so intrinsically connected, they can be said to “dance” in instantaneous, perfect unison, even when placed at opposite ends of the universe. This seemingly impossible connection inspired Einstein to describe entanglement as “spooky action at a distance.”

Why do these quantum effects matter?

First of all, they’re fascinating. Even better, they’ll be extremely useful to the future of computing and communications technology.
Thanks to superposition and entanglement, a quantum computer can process a vast number of calculations simultaneously. Think of it this way: whereas a classical computer works with ones and zeros, a quantum computer will have the advantage of using ones, zeros and “superpositions” of ones and zeros. Certain difficult tasks that have long been thought impossible (or “intractable”) for classical computers will be achieved quickly and efficiently by a quantum computer.

What can a quantum computer do that a classical computer can’t?

Factoring large numbers, for starters. Multiplying two large numbers is easy for any computer. But calculating the factors of a very large (say, 500-digit) number, on the other hand, is considered impossible for any classical computer. In 1994, a mathematician from the Massachusetts Institute of Technology (MIT) Peter Shor, who was working at AT&T at the time, unveiled that if a fully working quantum computer was available, it could factor large numbers easily.

But I don’t want to factor very large numbers…

Nobody wants to factor very large numbers! That’s because it’s so difficult – even for the best computers in the world today. In fact, the difficulty of factoring big numbers is the basis for much of our present day cryptography. It’s based on math problems that are too tough to solve. RSA encryption, the method used to encrypt your credit card number when you’re shopping online, relies completely on the factoring problem. The website you want to purchase from gives you a large "public" key (which anyone can access) to encode your credit card information.
This key actually is the product of two very large prime numbers, known only to the seller. The only way anyone could  intercept your information is to know those two prime numbers that multiply to create the key. Since factoring is very hard, no eavesdropper will be able to access your credit card number and your bank account is safe. Unless, that is, somebody has built a quantum computer and is running Peter Shor's algorithm!

Wait… so a quantum computer will be able to hack into my private data? That’s not good.

Don’t worry — classical cryptography is not completely jeopardized. Although certain aspects of classical cryptography would be jeopardized by quantum computing,  quantum mechanics also allows for a new type of highly secure cryptography.
Let’s look at a common cryptographic protocol called the one-time pad: Say party A and party B (let's call them Alice and Bob) share a long string of random zeros and ones — the secret key. As long as they only use this key once and they are the only ones who know this key, they can transmit a secret message such that no eavesdropper (we’ll call her Eve) will be able to decipher the message. The main difficulty with the one-time pad is the actual distribution of the secret key. In the past, governments sent people to exchange books full of random data to be used as keys. That, of course, is impractical and imperfect. This is where quantum mechanics comes in very handy once again: Quantum Key Distribution (QKD) allows for the distribution of completely random keys at a distance.

How can quantum mechanics create these ultra-secret keys?

Quantum key distribution relies on another interesting property of quantum mechanics: any attempt to observe or measure a quantum system will disturb it.
The Institute for Quantum Computing (IQC) is home of one of the few QKD prototypes in the world. “Alice,” a device located at IQC headquarters, receives half of the entangled (highly correlated) one of the photons generated by a laser on the roof of a building at the University of Waterloo. “Bob” is housed at the nearby Perimeter Institute, and receives the other half of the entangled photons.
Photons have a unique measurable property called polarization (which should sound familiar to any connoisseur of sunglasses).
Since the polarization of each individual photon is random, there’s no way of knowing the unique properties of each photon in advance. But here is where entanglement becomes interesting: if Alice and Bob measure the polarization of the entangled photons they receive, their results will be the same (remember, “entangled” means the particles are highly correlated with each other, even at great distances). Depending on the polarization of each photon, Alice and Bob ascribe either a “one” or a “zero” to each photon they receive. Therefore, if Alice gets a string like 010110, Bob also gets a 010110. Unless, that is, an eavesdropper has been attempting to spy on the signal. This will disturb the system, and Alice and Bob will instantly notice that their keys don’t match.
Alice and Bob keep receiving photons until their identical keys are long and identical enough and, presto, they’ve got ultra-secure keys for encrypting communications.

So harnessing the quantum world can break and make codes. Anything else?

Plenty. For example, quantum computers will be able to efficiently simulate quantum systems, which is what famous physicist Richard Feynman proposed in 1982, effectively kick-starting the field. Simulation of quantum systems has been said to be a "holy grail" of quantum computing: it will allow us to study, in remarkable detail, the interactions between atoms and molecules. This could help us design new drugs and new materials, such as superconductors that work at room temperature. Another of the many tasks for which the quantum computer is inherently faster than a classical computer is at searching through a space of potential solutions for the best solution. Researchers are constantly working on new quantum algorithms and  applications. But the true potential of quantum computers likely hasn’t even been imagined yet. The inventors of the laser surely didn’t envision supermarket checkout scanners, CD players and eye surgery. Similarly, the future uses of quantum computers are bound only by imagination.

Sounds great! Where can I get a quantum computer?

Not so fast. While quantum computers have been theoretically demonstrated to have incredible potential, and scientists are working at IQC and around the world to realize that potential, there is much work to be done before quantum computers hit the market.

What is required to build a quantum computer?

Simply put: we need qubits that behave the way we want them to. These qubits could be made of photons, atoms, electrons, molecules or perhaps something else. Scientists at IQC are researching a large array of them as potential bases for quantum computers. But qubits are notoriously tricky to manipulate, since any disturbance causes them to fall out of their quantum state (or “decohere”). Decoherence is the Achilles heel of quantum computing, but it is not insurmountable. The field of quantum error correction examines how to stave off decoherence and combat other errors. Every day, researchers at IQC and around the world are discovering new ways to make qubits cooperate.

So when will there be a real quantum computer?

It depends on your definition. There are quantum computers already, but not of sufficient power to replace classical computers. A team of researchers from IQC and MIT hold the current world record for the most number of qubits used in an experiment (12). While practical quantum technologies are already emerging — including highly effective sensors, actuators and other devices — a true quantum computer that outperforms a classical computer is still years away. Theorists are continually figuring out better ways to overcome decoherence, while experimentalists are gaining more and more control over the quantum world through various technologies and instruments. The pioneering work being done today is paving the way for the coming quantum era.

So quantum technology is still years away?

No, quantum technologies are already in use! QKD is already commercially available, and will greatly benefit from new research (scientists at IQC are currently pursuing quantum encryption through free space via satellite). Although a fully functioning quantum computer is a longer-term goal, many fundamental and practical discoveries have been made in the name of quantum computing. Quantum sensors and actuators will allow scientists to navigate the nano-scale world with remarkable precision and sensitivity. Such tools will be invaluable to the development of true quantum information processors. The quantum revolution is already under way, and the possibilities that lie ahead are limitless.