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did
did price

AtSfne...pump
$0.0000067884
-$0.00009
(-92.97%)
Price change for the last 24 hours

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did market info
Market cap
Market cap is calculated by multiplying the circulating supply of a coin with its latest price.
Market cap = Circulating supply × Last price
Market cap = Circulating supply × Last price
Network
Underlying blockchain that supports secure, decentralized transactions.
Circulating supply
Total amount of a coin that is publicly available on the market.
Liquidity
Liquidity is the ease of buying/selling a coin on DEX. The higher the liquidity, the easier it is to complete a transaction.
Market cap
$6,787.74
Network
Solana
Circulating supply
999,909,382 did
Token holders
346
Liquidity
$8,729.72
1h volume
$2,178.99
4h volume
$3,782.86
24h volume
$1.08M
did Feed
The following content is sourced from .

Meme Detective
Still bullish on #warcycle
If war shenanigans continue throughout the week, I could see this popping off
71DEQJGupinyyJFbJiU8k1F4PuWXfPw92KAPeMYApump
#mercury #damawged $busta $miga $annie $danger #ww3 $dale $andrea $kori $ufd #fartcoin $alon $bunker #1mil $mask #blackcoin #warroom


16.38K
4

PANews
Author: 0xResearcher
Manus achieved a SOTA (State-of-the-Art) score in the GAIA benchmark, showing that its performance outperformed Open AI's large models of the same level. In other words, it can independently complete complex tasks, such as cross-border business negotiations, which involve breaking down contract terms, predicting strategies, generating solutions, and even coordinating legal and finance teams. Compared with traditional systems, Manus has the advantage of dynamic object disassembly ability, cross-modal reasoning ability, and memory-enhancing learning ability. It can break down large tasks into hundreds of executable subtasks, process multiple types of data at the same time, and use reinforcement learning to continuously improve its decision-making efficiency and reduce error rates.
In addition to marveling at the rapid development of technology, Manus has once again sparked disagreement in the circle about the evolution path of AI: will AGI dominate the world in the future, or will MAS be synergistically dominant?
It starts with Manus' design philosophy, which implies two possibilities:
One is the AGI path. By continuously improving the level of individual intelligence, it is close to the comprehensive decision-making ability of human beings.
There is also the MAS path. As a super-coordinator, command thousands of vertical agents to work together.
On the surface, we are discussing different paths, but in fact we are discussing the underlying contradiction of AI development: how should efficiency and security be balanced? The closer the monolithic intelligence is to AGI, the higher the risk of black-box decision-making. While multi-agent collaboration can spread risk, it can miss critical decision-making windows due to communication delays.
The evolution of Manus has invisibly magnified the inherent risks of AI development. For example, data privacy black holes: in medical scenarios, Manus needs real-time access to patient genomic data; During financial negotiations, it may touch the company's undisclosed financial information; For example, the algorithmic bias trap, in hiring negotiations, Manus gives below-average salary recommendations to candidates of a particular ethnicity; Nearly half of the terms of emerging industries are misjudged when legal contracts are reviewed. Another example is the adversarial attack vulnerability, where hackers implant specific voice frequencies to enable Manus to misjudge the opponent's offer range during negotiations.
We have to face a terrible pain point for AI systems: the smarter the system, the wider the attack surface.
However, security is a word that has been mentioned a lot in web3, and there are a variety of encryption methods derived from the framework of the impossible triangle of V (blockchain networks cannot achieve security, decentralization, and scalability at the same time):
Zero Trust Security Model: The core idea of the Zero Trust security model is "trust no one, always verify", meaning that devices should not be trusted by default, regardless of whether they are on an internal network or not. This model emphasizes strict authentication and authorization for each access request to ensure system security.
Decentralized Identity (DID): DID is a set of identifier standards that enable entities to be identified in a verifiable and persistent manner without the need for a centralized registry. This enables a new model of decentralized digital identity, often compared to self-sovereign identity, which is an essential part of Web3.
Fully Homomorphic Encryption (FHE) is an advanced encryption technology that allows arbitrary computation to be performed on encrypted data without decrypting it. This means that a third party can perform operations on the ciphertext, and the result obtained after decryption is the same as the result of the same operation on the plaintext. This feature is important for scenarios that require computation without exposing raw data, such as cloud computing and data outsourcing.
Zero trust security models and DIDs have a certain number of projects in multiple rounds of bull markets, and they have either succeeded or drowned in the wave of encryption, and as the youngest encryption method: Fully Homomorphic Encryption (FHE) is also a big killer to solve security problems in the AI era. Fully homomorphic encryption (FHE) is a technology that allows computation to be performed on encrypted data.
How to fix it?
First, the data level. All information entered by the user (including biometrics, voice tone) is processed in an encrypted state, and even Manus itself cannot decrypt the original data. For example, in a medical diagnosis case, the patient's genomic data is analyzed in ciphertext throughout the process to avoid the leakage of biological information.
Algorithmic level. The "cryptographic model training" achieved through FHE makes it impossible for developers to peek into the decision-making path of AI.
At the level of synergy. Multiple agent communications are encrypted at the threshold, and a single node can be breached without causing global data leakage. Even in supply chain attack and defense drills, attackers infiltrate multiple agents and fail to gain a complete view of the business.
Due to technical limitations, web3 security may not be directly related to most users, but it is inextricably linked to indirect interests, and in this dark forest, if you don't do your best to arm, you will never escape the identity of "leeks".
Launched on the Ethereum mainnet in 2017, uPort was probably the first decentralized identity (DID) project to be released on mainnet.
In terms of zero trust security model, NKN released its mainnet in 2019.
Mind Network is the first FHE project to be launched on the mainnet, and has taken the lead in cooperating with ZAMA, Google, DeepSeek, etc.
uPort and NKN are already projects that I have never heard of, and it seems that security projects are really not being paid attention to by speculators, so let's wait and see if Mind network can escape this curse and become a leader in the security field.
The future is here. The closer AI is to human intelligence, the more it needs non-human defenses. The value of FHE is not only to solve today's problems, but also to pave the way for the era of strong AI. On this treacherous road to AGI, FHE is not an option, but a necessity for survival.
Show original
2.48K
0

ChainCatcher 链捕手
Manus achieved a SOTA (State-of-the-Art) score in the GAIA benchmark, showing that its performance exceeds that of Open AI's large-scale models of the same level. In other words, it can independently complete complex tasks, such as cross-border business negotiations, which involve breaking down contract terms, predicting strategies, generating solutions, and even coordinating legal and finance teams. Compared with traditional systems, Manus has the advantages of dynamic object disassembly, cross-modal reasoning, and memory-enhanced learning. It can break down large tasks into hundreds of executable subtasks, process multiple types of data at the same time, and use reinforcement learning to continuously improve its decision-making efficiency and reduce error rates.
In addition to marveling at the rapid development of technology, Manus has once again sparked disagreement in the circle on the path of AI evolution: will AGI dominate the world in the future, or will MAS be synergistically dominant?
This starts with Manus' design philosophy, which implies two possibilities:
One is the AGI path. By continuously improving the level of individual intelligence, it is close to the comprehensive decision-making ability of human beings.
There is also the MAS path. As a super-coordinator, command thousands of vertical agents to work together.
On the surface, we are discussing different paths, but in fact we are discussing the underlying contradiction of AI development: how should efficiency and security be balanced? The closer the monolithic intelligence is to AGI, the higher the risk of black-box decision-making. However, although multi-agent collaboration can diversify risks, it may miss key decision-making windows due to communication delays.
The evolution of Manus has invisibly magnified the inherent risks of AI development. For example, data privacy black holes: in medical scenarios, Manus needs real-time access to patient genomic data; During financial negotiations, it may touch the company's undisclosed financial information; For example, the algorithmic bias trap, in which Manus gives below-average salary recommendations to candidates of a particular ethnicity in hiring negotiations; Nearly half of the terms of emerging industries are misjudged when legal contracts are reviewed. Another example is the adversarial attack vulnerability, in which the hacker implanted a specific voice frequency to make Manus misjudge the opponent's offer range during the negotiation.
We have to face a terrible pain point for AI systems: the smarter the system, the wider the attack surface.
However, security is a word that has been constantly mentioned in web3, and a variety of encryption methods have been derived from the framework of the impossible triangle of V God (blockchain networks cannot achieve security, decentralization, and scalability at the same time):
Zero Trust Security Model: The core idea of the Zero Trust security model is "trust no one, always verify", meaning that devices should not be trusted by default, regardless of whether they are on an internal network or not. This model emphasizes strict authentication and authorization for each access request to ensure system security.
Decentralized Identity (DID): DID is a set of identifier standards that enable entities to be identified in a verifiable and persistent manner without the need for a centralized registry. This enables a new model of decentralized digital identity, often compared to self-sovereign identity, and is an important part of Web3.
Fully Homomorphic Encryption (FHE): is an advanced encryption technology that allows arbitrary computation to be performed on encrypted data without decrypting it. This means that a third party can perform operations on the ciphertext, and the result obtained after decryption is the same as the result of the same operation on the plaintext. This feature is important for scenarios that require computation without exposing raw data, such as cloud computing and data outsourcing.
The zero trust security model and DID have a certain number of projects in multiple rounds of bull markets, and they have either succeeded or drowned in the wave of encryption, and as the youngest encryption method: Fully Homomorphic Encryption (FHE) is also a big killer to solve the security problems in the AI era. Fully homomorphic encryption (FHE) is a technology that allows computation to be performed on encrypted data.
How to fix it?
First, the data level. All information entered by the user (including biometrics, voice tone) is processed in an encrypted state, and even Manus itself cannot decrypt the original data. For example, in a medical diagnosis case, the patient's genomic data is analyzed in ciphertext throughout the process to avoid the leakage of biological information.
Algorithmic level. The "cryptographic model training" realized by FHE makes it impossible for developers to peek into the decision-making path of AI.
At the level of synergy. Threshold encryption is used for multiple agent communications, and a single node will not be breached without causing global data leakage. Even in supply chain attack and defense drills, attackers cannot obtain a complete view of the business after infiltrating multiple agents.
Due to technical limitations, web3 security may not be directly related to most users, but it is inextricably linked to indirect interests, and in this dark forest, if you don't do your best to arm, you will never escape the identity of "leeks". uPort was launched on the Ethereum mainnet in 2017 and was probably the first decentralized identity (DID) project to be released on the mainnet. In terms of zero trust security model, NKN released its mainnet in 2019. Mind Network is the first FHE project to be launched on the mainnet, and has taken the lead in cooperating with ZAMA, Google, DeepSeek, etc. uPort and NKN are already projects that I have never heard of, and it seems that security projects are really not concerned by speculators, so let's wait and see if Mind network can escape this curse and become a leader in the security field.
The future is here. The closer AI is to human intelligence, the more it needs non-human defense systems. The value of network information security is not only to solve current problems, but also to pave the way for the era of strong AI. On this steep road to AGI, cyber security is not an option, but a necessity for survival.
Show original


2.87K
0
did price performance in USD
The current price of did is $0.0000067884. Over the last 24 hours, did has decreased by -92.97%. It currently has a circulating supply of 999,909,382 did and a maximum supply of 999,909,382 did, giving it a fully diluted market cap of $6,787.74. The did/USD price is updated in real-time.
5m
+4.56%
1h
-18.76%
4h
-25.33%
24h
-92.97%
About did (did)
Latest news about did (did)

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did FAQ
What’s the current price of did?
The current price of 1 did is $0.0000067884, experiencing a -92.97% change in the past 24 hours.
Can I buy did on OKX?
No, currently did is unavailable on OKX. To stay updated on when did becomes available, sign up for notifications or follow us on social media. We’ll announce new cryptocurrency additions as soon as they’re listed.
Why does the price of did fluctuate?
The price of did fluctuates due to the global supply and demand dynamics typical of cryptocurrencies. Its short-term volatility can be attributed to significant shifts in these market forces.
How much is 1 did worth today?
Currently, one did is worth $0.0000067884. For answers and insight into did's price action, you're in the right place. Explore the latest did charts and trade responsibly with OKX.
What is cryptocurrency?
Cryptocurrencies, such as did, are digital assets that operate on a public ledger called blockchains. Learn more about coins and tokens offered on OKX and their different attributes, which includes live prices and real-time charts.
When was cryptocurrency invented?
Thanks to the 2008 financial crisis, interest in decentralized finance boomed. Bitcoin offered a novel solution by being a secure digital asset on a decentralized network. Since then, many other tokens such as did have been created as well.
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OKX does not provide investment or asset recommendations. You should carefully consider whether trading or holding digital assets is suitable for you in light of your financial condition. Please consult your legal/tax/investment professional for questions about your specific circumstances. For further details, please refer to our Terms of Use and Risk Warning. By using the third-party website ("TPW"), you accept that any use of the TPW will be subject to and governed by the terms of the TPW. Unless expressly stated in writing, OKX and its affiliates (“OKX”) are not in any way associated with the owner or operator of the TPW. You agree that OKX is not responsible or liable for any loss, damage and any other consequences arising from your use of the TPW. Please be aware that using a TPW may result in a loss or diminution of your assets. Product may not be available in all jurisdictions.