Bitcoin Mining Anbieter WARUM GIBT ES DAS „MINING" UND WIE KANN MAN DAMIT GELD VERDIENEN?
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Because of my mathematics background, I was fascinated by the algorithms that made Bitcoin possible. We recently conducted a study of 1, US consumers and when asked the question, do you know what the Federal Reserve does?
When was the last time you heard mention of any central bank? During the lesson on Alexander Hamilton in your eighth grade American History class?
Get your first mining output today You will get periodic mining outputs to your designated wallet. Alex , VP of business development from Innosilicon.
This can cause some implications for investors as other assets with low supply, like gold, can have high demand and push prices higher.
At this rate of halving, the total number of bitcoin in circulation will reach a limit of 21 million, making the currency entirely finite and potentially more valuable over time.
Here's the catch. In order for bitcoin miners to actually earn bitcoin from verifying transactions, two things have to occur.
First, they must verify 1 megabyte MB worth of transactions, which can theoretically be as small as 1 transaction but are more often several thousand, depending on how much data each transaction stores.
This is the easy part. Second, in order to add a block of transactions to the blockchain, miners must solve a complex computational math problem, also called a "proof of work.
In other words, it's a gamble. The difficulty level of the most recent block at the time of writing is more than 13 trillion.
That is, the chance of a computer producing a hash below the target is 1 in 13 trillion. To put that in perspective, you are about 44, times more likely to win the Powerball jackpot with a single lottery ticket than you are to pick the correct hash on a single try.
Fortunately, mining computer systems spit out many, many more hash possibilities than that. Nonetheless, mining for bitcoin requires massive amounts of energy and sophisticated computing rigs, but more about that later as well.
The difficulty level is adjusted every blocks, or roughly every 2 weeks, with the goal of keeping rates of mining constant.
That is, the more miners there are competing for a solution, the more difficult the problem will become. The opposite is also true.
If computational power is taken off of the network, the difficulty adjusts downward to make mining easier. Here's a helpful analogy to consider:.
My friends don't have to guess the exact number, they just have to be the first person to guess any number that is less than or equal to the number I am thinking of.
And there is no limit to how many guesses they get. There is no 'extra credit' for Friend B, even though B's answer was closer to the target answer of Rather, I'm asking millions of would-be miners and I'm thinking of a digit hexadecimal number.
Now you see that it's going to be extremely hard to guess the right answer. If 1 in 13 trillion doesn't sound difficult enough as is, here's the catch to the catch.
Not only do bitcoin miners have to come up with the right hash, but they also have to be the first to do it. Because bitcoin mining is essentially guesswork, arriving at the right answer before another miner has almost everything to do with how fast your computer can produce hashes.
Just a decade ago, bitcoin mining could be performed competitively on normal desktop computers. Over time, however, miners realized that graphics cards commonly used for video games were more effective and they began to dominate the game.
In , bitcoin miners started to use computers designed specifically for mining cryptocurrency as efficiently as possible, called Application-Specific Integrated Circuits ASIC.
These can run from several hundred dollars to tens of thousands but their efficiency in mining Bitcoin is superior.
Today, bitcoin mining is so competitive that it can only be done profitably with the most up-to-date ASICs. Even with the newest unit at your disposal, one computer is rarely enough to compete with what miners call "mining pools.
A mining pool is a group of miners who combine their computing power and split the mined bitcoin between participants.
A disproportionately large number of blocks are mined by pools rather than by individual miners. Mining pools and companies have represented large percentages of bitcoin's computing power.
Between 1 in 13 trillion odds, scaling difficulty levels, and the massive network of users verifying transactions, one block of transactions is verified roughly every 10 minutes.
The bitcoin network can process about seven transactions per second, with transactions being logged in the blockchain every 10 minutes.
For comparison, Visa can process somewhere around 24, transactions per second. As the network of bitcoin users continues to grow, however, the number of transactions made in 10 minutes will eventually exceed the number of transactions that can be processed in 10 minutes.
At that point, waiting times for transactions will begin and continue to get longer, unless a change is made to the bitcoin protocol.
There have been two major solutions proposed to address the scaling problem. Developers have suggested either 1 creating a secondary "off-chain" layer to Bitcoin that would allow for faster transactions that can be verified by the blockchain later, or 2 increasing the number of transactions that each block can store.
With less data to verify per block, the Solution 1 would make transactions faster and cheaper for miners.
Solution 2 would deal with scaling by allowing for more information to be processed every 10 minutes by increasing block size.
That is, they went with Solution 1. The program that miners voted to add to the bitcoin protocol is called a segregated witness , or SegWit.
Less than a month later in August , a group of miners and developers initiated a hard fork , leaving the bitcoin network to create a new currency using the same codebase as bitcoin.
Although this group agreed with the need for a solution to scaling, they worried that adopting segregated witness technology would not fully address the scaling problem.
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