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  3. Спасибо за бонус. 0.1 USDT Aug-27-2026 20:28 0x8D1565265BD41926d6A9B1... 0x53902bec061e8560fb5f96fb1bac2dc817b127a9fae97d4ed7a95de86f435452
  4. Спасибо за бонус 0xf33ce1e85c262a2c8be + 0.2 USDT - Aug-27-2026 20:28 0x53902bec061e8560fb5f96fb1bac2dc817b127a9fae97d4ed7a95de86f435452 Викторина
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  6. Get well soon so this is the question if you get 20 $ on casinok and need to wager USDT to cash out later to crypto wallet or directly to external wallet provider I did messaged you several times but I did think you go to a trip with families and may be back in September or October and did not think it is a health issue first time hearing that from you.
  7. Спасибо! *880e3 - *8eE8a $0.1 USDT Bep-20 27.08.2026 22:28:18 0x53902bec061e8560fb5f96fb1bac2dc817b127a9fae97d4ed7a95de86f435452 Викторина в чате Profit-Hunters BIZ
  8. Спасибо за викторину! *****0551692b8F4e925C6fF 0.3 USDT Bep-20 0x53902bec061e8560fb5f96fb1bac2dc817b127a9fae97d4ed7a95de86f435452 2026-08-27 17:28:18.
  9. Winvest Paid: 0.00096384 BTC Withdrawal Amount: $76.70 Payment Received via Bitcoin 27 Aug 2026 01:14:55 GMT+8 Transaction ID: [ddb8d5ee91682b678244cf33762e9d2df95c7298bfcdb5b88e2d5703e1d41e3f] Transaction Link: https://www.blockchain.com/explorer/transactions/btc/ddb8d5ee91682b678244cf33762e9d2df95c7298bfcdb5b88e2d5703e1d41e3f
  10. Спасибо за полезную викторину! 0x4C0ec75B56e1974************************* 0.3 USDT - Aug-27-2026 05:28:18 PM +UTC 0x53902bec061e8560fb5f96fb1bac2dc817b127a9fae97d4ed7a95de86f435452
  11. Paid us 12.24 USDT: Aug-27-2026 01:00:30 AM +UTC https://bscscan.com/tx/0x8def65c6ad38eb32694de8950412bbbe9700c705502b4e23549f37620106384c
  12. Payment received from Cryptox to sqmonitor via USDT-BEP20: 0x79bc654ce946c0ea2841f8ed610fbaebf443439e780f5025179eefb85ae92184 Aug-27-2026 07:40:58 AM +UTC 5.3 BSC-USD
  13. Transaction date: 27.08.2026 in 20:00 Transaction ID: 1188478 Payer transaction ID: 1188477 Transaction type: Transfer Status: Accepted and enrolled Using Azvox API To your wallet: W142574 Sender: W214982 Credited amount: + 7.10 RUB Sender's comment: Выплата из проекта Buxnova
  14. Payment received from Horlino to sqmonitor via Tron: d0e8afa7c098a08174940d657d95f0b5eb35e17ce43cfedbbce2eaad3303afa0 2026-08-26 22:05:27 (UTC) 22.86 TRX (~$7.67)
  15. Paid us 5.49 USDT : Aug-27-2026 01:02:50 AM +UTC https://bscscan.com/tx/0x8a2051d834d2440862840741510a3d7d5c1cd607cc0fb77f171ac9b45e1d47ff
  16. Payment received from Lendex to sqmonitor via USDT-BEP20: 0x1a0561c44be5a7a8a3e55405a94094f815ef361ce5c23f2e1d5db9a06ebd9f66 Aug-27-2026 08:11:01 AM +UTC 4 BSC-USD
  17. Payment received from ZX17 to sqmonitor via USDT-BEP20: 0x0724ca93a97907928696f6bd92b96f5a0ce811ce97ea0f046beb0a850aa2ddd9 Aug-26-2026 10:09:30 PM +UTC 4.85 BSC-USD
  18. Payment received from PairBots to sqmonitor via USDT-BEP20: 0xacb1fb5b491baa680ef80c77b19964806e1d330cde242120da0e05d74b1a824b Aug-26-2026 07:34:36 PM +UTC 3.71 BSC-USD
  19. Payment received from Solmers to sqmonitor via Solana: 3QLYzGyn9q5mqkyj3PkN1PMeXN3TbHDqQyRtmuN1tUG6BSSxPNugbBWyzSrh8shZVdZCSjPz5YG8KePKPfTUNeYR 01:05:17 Aug 27, 2026 (UTC +3) 0.0537368 SOL (~$5.37)
  20. Payment received from Crypto Flex Limited to sqmonitor via USDT-BEP20: 0x70d475ee93b1e61c1182b0a2f7d6171186814006d441f972b6a7540d6689788b Aug-27-2026 10:27:50 AM +UTC 1.53 BSC-USD
  21. Justin Sun’s Girlfriend, Jing Tian! How much does a human egg weigh? 3.5 micrograms. How much does USD 50 million in cash weigh? About 2.5 tons. Yesterday, My Girlfriend Jing Tian blew up across X and the crypto community, somehow bringing these two completely unrelated numbers together. When two enormous attention economies—the crypto world and the entertainment industry—collided, they produced one of the wildest stories of the year. The male lead: Justin Sun. The female lead: Jing Tian. One is one of the most talked-about entrepreneurs in the global crypto industry. The other is a well-known actress who has appeared in The Warring States, The Great Wall, The Glory of Tang Dynasty, and Rattan. One is famous for creating stories of wealth and attention; the other has long been nicknamed a “flower of wealth and beauty.” When these two names appeared in the same story, they opened the curtain on a nineteen-year tale about an unforgettable first love. After all, who hasn't fantasized about becoming rich one day and throwing enough money at the person they once dreamed about to finally win them over? Apparently, Brother Sun did it! What makes the story even more dramatic is that the Justin Sun portrayed in it wasn't born into some ultra-wealthy family with a silver spoon in his mouth. In the story, he recalls Beijing in 2011, when he spent three days debating whether to buy a RMB 150 down jacket. That same year, The Warring States, starring Jing Tian, reportedly had an investment of RMB 150 million, with stars including Sun Honglei, Francis Ng, and Kim Hee-sun appearing alongside her. Anyone could see that they lived in two completely different worlds. Under normal circumstances, their lives might never have crossed. Just like twenty years ago, when Sun supposedly spent forty minutes repeatedly editing a friend request to her—only to be completely ignored! Yes, not rejected. Yes, Ignored! Just nineteen years—from a broke young man to a billionaire. Just nineteen years—from a friend request that received no response to a story about egg retrieval and surrogacy for him! Could a miracle like this only happen in crypto? The Climax of the Story: Spending Like Crazy for His Dream Girl When they went to the movies, booking the entire theater was apparently standard procedure. If the theater couldn't be fully booked, assistants would supposedly wait outside and offer money to every ticket holder to persuade them to leave! Jing Tian reportedly said Hong Kong was too crowded and she might easily be recognized, so she wanted to get away. The result? A group of thirty people, a private jet, and a trip from Tenerife to the Maldives—only about 10,000 kilometers across the planet. At Montage Laguna Beach, USD 1 million was reportedly spent to reserve an entire floor for Jing Tian's privacy. RMB 30 million as a marriage gift? Justin Sun transferred it. A luxury home in Hong Kong? According to the story, Justin Sun agreed. And finally, the story came to an end over the one payment that was never made: USD 50 million for surrogacy. According to the long-form post, beginning the previous year, Jing Tian had already undergone blood tests, hormone testing, ultrasounds, and ovarian reserve assessments in Beijing. A surrogate in California had also reportedly been selected in January—a 34-year-old woman who had already given birth to two children. The USD 200,000 deposit paid to the surrogacy agency was non-refundable. Everything seemed ready. Only one final step remained: Egg retrieval. USD 50 Million at a Seaside Hotel On February 28, the story says Jing Tian arrived in the United States aboard a Gulfstream G700 and checked into Montage Laguna Beach, perched above the Pacific coastline. To protect her privacy, Justin Sun supposedly booked an entire floor of the hotel for thirty days at a cost of USD 1 million. Jing Tian stayed for only eight days. On the eighth day, she called. “50 million. U.S. dollars.” According to the account, Jing Tian said that without the money, she would not proceed with the egg retrieval. This became the turning point of the entire story. What supposedly made him hesitate wasn't really the money. It was the question behind the money. He even asked Claude: “Does she not love me anymore?” The AI didn't answer the question of love. But it reportedly gave him a very clear recommendation: Don't pay the USD 50 million. The Truth Is, Money Can Buy Every Empty Seat—but It Can't Buy the Answer The cruelest part of this story isn't the RMB 30 million. Nor is it the USD 50 million. It's that the young man who once hesitated over buying a down jacket finally accumulated enough wealth to satisfy almost any material desire—yet still couldn't be certain whether another person would choose to stay. Crypto technology tries to eliminate uncertainty through code. Transaction records are immutable. Smart contracts execute automatically. Asset ownership can be publicly verified. But the moment we enter the world of human relationships, all those rules seem to stop working. There is no on-chain proof of affection. Promises cannot be permanently stored. And there is no oracle capable of delivering a trustless answer about someone's feelings. That may be the greatest irony in the entire story. A man capable of handling billions of dollars in the global crypto market is confronted with one incredibly simple question: “If he had paid the USD 50 million that day, would she have stayed?” And even he cannot get an answer. Can Crypto Really Create Miracles? Perhaps the answer is: Yes. Crypto has allowed capital to move at something close to the speed of information on the internet. It has given entrepreneurs from almost anywhere in the world the opportunity to directly access global markets. And it has allowed insight, courage, technology, and the opportunities of an era to collide with extraordinary intensity in an incredibly short period of time. Justin Sun's journey from a Peking University student to a globally recognized crypto billionaire is one of the most extreme examples of that speed. But we should also understand that the crypto world has never created fairy tales without a price. Wealth can grow incredibly quickly here—but drawdowns can be just as brutal. This industry can produce a new generation of wealthy people at astonishing speed, but it can also magnify desire, loneliness, and the cracks in human nature. Crypto technology can reconstruct financial relationships. It cannot automatically reconstruct human relationships. Perhaps that is what this entire controversy is really worth reflecting on for the crypto industry. Because even today, the crypto world still hasn't invented an asset that can be permanently exchanged for genuine love. Perhaps that is the most expensive boundary of wealth—and the human reality that every technology must eventually confront. This article is adapted from the story My Girlfriend Jing Tian posted by Justin Sun on X. The original post explicitly states: “This article is purely fictional. Any resemblance to actual persons or events is purely coincidental.” The relationship, surrogacy, and financial details mentioned above are elements of the original narrative and should not be regarded as facts established by a court or other authoritative process. Original post: https://x.com/justinsuntron/status/2092932777612390850
  22. SuperEx Educational Series: Understanding How Does a New Block Quickly Propagate Across the Entire Network #SuperEx #EducationalSeries Many people imagine that once a new block is created, every node receives it instantly, like a group chat notification. Sounds smooth, but that is not how it works. A blockchain does not have one central server shouting: “New block, everyone sync now.” The real process is more like a network-wide relay. A miner or validator creates a block and sends it to connected peers. Those peers check it and forward it to their peers. The block spreads layer by layer. In plain English: blocks do not teleport; they travel through a peer-to-peer network. What Is Block Propagation? Block propagation is the process by which a newly created block spreads from its producer to other nodes in the network. This process is not simply “sending a file.” When a node receives a new block, it usually performs checks: does the parent block exist, is the structure valid, is the consensus proof valid, do transactions execute correctly, and does the resulting state match? Only after checks will the node relay it further. In one sentence: block propagation is a continuous process of receiving, verifying, and forwarding. Why Fast Propagation Matters The slower block propagation is, the more likely the network is to temporarily disagree. Suppose two block producers create different blocks at almost the same time. If one block propagates slowly, some nodes may not see it and may continue building on the previous chain head. This increases temporary forks, stale blocks, and reorganization risk. For users, slow propagation can mean slower confirmation. For miners or validators, slow propagation can make their blocks more likely to be overtaken. For the network, slow propagation affects consensus efficiency and security margins. So blockchains need new blocks to reach more nodes quickly, but not by skipping verification. The balance matters: speed supports synchronization, validation supports security. How Does Propagation Work? First, a block producer creates a new block. In Bitcoin, a miner finds a proof-of-work hash below the difficulty target. In Ethereum PoS, the selected validator proposer packages transactions and execution results into a beacon block. Second, the producer sends it to directly connected peers. A node is not connected to every node in the world. It connects to a set of peers. The new block first goes to those direct neighbors. Third, receiving nodes perform basic validation. If the block is clearly invalid, such as unknown parent, bad signature, invalid proof-of-work, or mismatched state root, the node will not relay it. Otherwise, invalid blocks could easily slow down the network. Fourth, nodes relay it further. After validation, the node sends the new block or block announcement to more peers. Those peers repeat the process. Layer by layer, most nodes receive it. Fifth, nodes attach the block locally. If the block follows the rules and belongs to the node’s accepted best chain, the node adds it to its local blockchain database and updates its chain head. Bitcoin Case: Headers, Inventory, and Compact Blocks Bitcoin block propagation has been optimized over time. Early nodes could send full blocks directly, but that uses a lot of bandwidth. Later, Bitcoin’s P2P protocol added more efficient announcement and request flows. One common method is: a node first uses inv or headers to tell peers, “I have a new block.” If the peer needs it, it requests the full block with getdata. This avoids blindly sending the full block to everyone. BIP152 Compact Block Relay goes further. Many nodes already saw most transactions in their mempool before the block appeared. So there is no need to send every transaction again. A compact block sends the block header and short transaction IDs. The receiver reconstructs the block from its own mempool and only requests missing transactions. In plain English: if everyone already has most puzzle pieces, you do not resend the whole box. You send the arrangement and request only missing pieces. This is why the mempool is not only a waiting room for transactions. It also helps new blocks propagate faster. Ethereum Case: Gossip and Two Networks Ethereum is a bit more complex because nodes now have both an execution layer and a consensus layer. The execution client handles transaction gossip, transaction pool, EVM execution, and state management. The consensus client handles beacon blocks, attestations, fork choice, and finality. Ethereum.org’s networking documentation explains that execution clients gossip transactions, while consensus clients gossip blocks. When a validator proposer creates a new block, the block is propagated through the consensus-layer P2P network. Ethereum’s consensus layer uses libp2p gossipsub, where messages spread to peers subscribed to relevant topics. After receiving a block, the consensus client pre-validates it, then passes the execution payload to the execution client. The execution client re-executes transactions and checks whether the state root and receipts root match. Only then does the node accept the block. So Ethereum block propagation is not “downloading a block file.” It is a combined process of consensus-layer gossip, execution-layer recalculation, and local node acceptance. Why Not Send Blocks to Everyone Directly? Because no node is directly connected to every node. A blockchain is decentralized. Nodes are distributed across countries, ISPs, data centers, home networks, and cloud environments. Each node maintains a limited number of peer connections. New blocks spread through peer-to-peer relay, not central broadcast. Sending directly to everyone would create connection overload, bandwidth overload, weaker attack resistance, and huge pressure on central nodes. That would not be a decentralized network; it would be an exhausted broadcast hub. The advantage of P2P propagation is that there is no single point, and the network can spread information organically. The downside is latency: different nodes receive messages at slightly different times. What Makes Propagation Fast? First, peer connection quality. More stable peers, good bandwidth, and reliable connectivity help blocks propagate smoothly. Poor connections, high latency, and frequent disconnects slow things down. Second, block size. Larger blocks take longer to transmit and verify. Ethereum limits block size through gas limits; Bitcoin uses block size and weight limits. If blocks are too large, ordinary nodes struggle to keep up, pushing the network toward centralization. Third, compression and differential relay. Compact blocks, short IDs, compressed encoding, and requesting only missing transactions all reduce duplicate transmission. The core idea is simple: do not resend what peers already have. Fourth, already having transactions. If a node already has most transactions from the new block in its mempool, it can reconstruct the block faster. Better transaction propagation makes block propagation lighter. Fifth, topology and relay optimization. The structure of peer connections affects propagation speed. Mining pools, validators, builders, relays, and node providers optimize connectivity to reduce latency. But too much centralized optimization can create centralization risk. A Simple Case Suppose an Ethereum validator proposer creates a new block containing Alice’s transfer, Bob’s swap, and Carol’s NFT mint. First, the proposer’s consensus client publishes the block into the gossipsub network. Second, nearby peers receive it and check slot, proposer, signature, and basic structure. Third, the node passes the execution payload to the execution client. Fourth, the execution client re-executes Alice, Bob, and Carol’s transactions and calculates the state root. Fifth, if the result matches the block claim, the node accepts the block. Sixth, the node gossips the block to other peers. Seventh, more validators see it and issue attestations. Eighth, as consensus progresses, the block gains confirmation and moves toward finality. From the user’s view, a block explorer simply refreshes and shows a new block. From the network’s view, it is a round of high-speed propagation, verification, and re-propagation. Common Misunderstandings The first misunderstanding: a new block reaches all nodes at the same time. No. Networks have latency, nodes have different peers, locations, and bandwidth. Nodes receive new blocks at different times. The second misunderstanding: faster propagation is always safer. Not entirely. Speed matters, but validation cannot be skipped. A network that spreads messages fast without verification only spreads errors faster. The third misunderstanding: nodes always relay blocks they receive. Not necessarily. Nodes usually check basic validity first. If the block is invalid, too large, malformed, or has an unknown parent, a node may reject or delay it. The fourth misunderstanding: if a block explorer sees it first, the whole network saw it first. Wrong. A block explorer reflects certain nodes and indexers. It is not the whole network’s view, and it is not consensus itself. Risks and Limitations The first risk is network latency. Distance, bandwidth, and routing quality affect propagation speed. Higher latency increases the chance of temporary forks or missed voting windows. The second risk is oversized blocks. Larger blocks can include more transactions, but increase propagation and validation costs. If blocks become too large, ordinary nodes have a harder time participating, weakening decentralization. The third risk is malicious propagation. Attackers may send invalid blocks, spam messages, or try to isolate nodes. P2P networks need peer scoring, connection management, validation rules, and rate limits. The fourth risk is centralized relay dependency. To propagate faster, ecosystems may rely on a few high-performance relays, builders, mining pools, or node providers. Speed improves, but power may concentrate. The fifth risk is local-view inconsistency. Different nodes see new blocks at different times, so they may briefly disagree on the latest chain head. Consensus mechanisms exist to make these local views converge. Conclusion How does a new block quickly propagate across the network? The answer is not central broadcasting. It is relay through a peer-to-peer network. The block producer sends the new block to its peers, and those nodes validate and relay it further. Bitcoin uses headers, inv, getdata, and compact blocks to reduce bandwidth waste. Ethereum coordinates execution-layer and consensus-layer networks so transactions and blocks propagate efficiently. Fast propagation matters because it affects confirmation speed, fork probability, validator attestations, and network synchronization. But speed is not the only goal. Blocks must be validated, state must be recalculable, and the network must remain decentralized. In plain words: a new block does not instantly notify the whole world. It starts from one node, gets relayed and checked by many others, and gradually becomes shared history. Blockchain trust comes not only from cryptography, but also from this network process where nodes can verify and relay. About SuperEx As the world’s first Web3-powered cryptocurrency exchange, SuperEx has remained committed to building the Web3 ecosystem. Over the years, it has introduced a comprehensive range of products and services, including SuperEx DAO, SuperEx Web3 Wallet, Super Start, SuperEx P2P, SuperEx Stock Markets, SuperEx Copy Trading, SuperEx Earn, and SuperEx DAO Academy, creating a full-spectrum ecosystem that spans every major sector of Web3. Today, SuperEx serves over 10 million users, with a social media community of more than 600,000 followers across 166 countries and regions worldwide. The platform supports 1,000+ cryptocurrencies for both spot and futures trading. Seamlessly integrated with Super Wallet, SuperEx provides decentralized asset custody while combining the trading efficiency of a centralized exchange (CEX) with the security of a decentralized exchange (DEX). Click to register SuperEx Click to download the SuperEx APP Click to enter SuperEx CMC Click to enter SuperEx DAO Academy — Space
  23. +0.1 usdt Aug-26-2026 01:27:28 PM +UTC 0xd33A265054a6dcB50ab8c6770&** 0xd1b1eca479c09ec2bdcda52c658b28c01b5a938d688ce900d2094ef763b0e0b4 Викторина в чате Profit-Hunters biz Спасибки 🤗
  24. Payment received from Winvest to sqmonitor via Bitcoin: d781dc5e51197d9281a9fe17a5693edb74ed0d98ea90ee5c70a39aad2da68dd7 27 Aug 2026 05:16:12 UTC 0.00014259 BTC (~$11.21)
  25. There is a help section on the website with my contact details. Feel free to drop me a line, I’ll be happy to walk you through everything and help you out.
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