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Warcraft II: Remastered internal alpha spotted, hinting at an announcement soon

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Warcraft II: Remastered internal alpha spotted, hinting at an announcement soon


There might be a remastered version of Warcraft 2 on the horizon, as hinted at by an internal alpha appearing.

Said alpha has popped up on blizztrack.com, a website that tracks all of the available builds of Blizzard games. According to the site, something called “Warcraft II: Remastered Internal Alpha” has appeared on Blizzard’s Battle.net service.

Sadly, there’s very little information that can be gleaned from the listing, at least from what I can tell.

Blizzard will be hosting Warcraft Direct this weekend, which would surely be the opportune time to announce a remaster of Warcraft 2.

If true, let’s just hope this remaster goes better than Warcraft 3: Reforged as pretty much everyone was disappointed with it.

With that said, the very same blizztrack.com site noted last month that a patch 2.0 was being tested for Warcraft 3: Reforged, sparking some hope that a big overhaul might be coming. I’d say it would be rather odd for the game to get a big update so long after launching, but perhaps it could be something to do with Warcraft 2? This is just speculation, but perhaps Blizzard wants to make Warcraft 2 and 3 feel more cohesive and thus are redoing some of Reforged to make it fit in better.



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Polymarket and Prediction Markets: The Role of Betting in Election Forecasting | NFT CULTURE | NFT News | Web3 Culture | NFTs & Crypto Art

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Polymarket and Prediction Markets: The Role of Betting in Election Forecasting | NFT CULTURE | NFT News | Web3 Culture | NFTs & Crypto Art


Election prediction markets like Polymarket have long been a unique way to gauge public sentiment, providing real-time insights based on people’s willingness to put their money where their predictions are. As we saw with the recent election, platforms like Polymarket were instrumental for many observers wanting a pulse on the election as it unfolded. However, their performance wasn’t without limitations, showing the nuanced reality of prediction markets.

Polymarket: Real-Time Proxies, Not Crystal Balls

Polymarket’s allure lies in its dynamism. During the recent election, Polymarket offered real-time insights as vote counts rolled in, allowing users to follow shifts in sentiment almost minute-by-minute. According to an analysis by @punk9059, Polymarket gave viewers an accurate, if not always precise, look into voter behavior, such as fluctuating probabilities for key outcomes like the popular vote and battleground states.

Polymarket had its strengths, serving as a valuable proxy, but some forecasts were off. For instance, at one point, it predicted a 25% chance of Trump winning the popular vote. This divergence highlights the limitations of even the most responsive prediction markets: they reflect short-term sentiment rather than guarantee outcomes.

A “Massive Win” for Prediction Markets?

For proponents of Polymarket, like @SteveKBark, Trump’s eventual win underscored the platform’s utility and accuracy—challenging skeptics who dismissed prediction markets as unreliable. The final outcome lent credibility to prediction markets, which were at times mocked by mainstream political analysts.

However, the journey of prediction markets during the election also highlighted that these tools are just one piece of the forecasting puzzle. They’re incredibly useful for real-time updates and provide a platform for aggregated public sentiment, but they do not substitute for in-depth polling analysis. The blend of real-time betting with data-rich polling remains a promising area for election analysis.

The Future of Prediction Markets in Politics

Prediction markets, by design, are fluid and thrive on the collective wisdom (and biases) of their participants. Polymarket’s performance in the recent election has already sparked discussions about the viability of prediction markets as alternative forecasting tools. With their data-driven appeal, these markets offer unique insights that could complement traditional polling, especially in unpredictable races. As blockchain-backed prediction markets grow, they may become a key fixture in the media’s election coverage toolkit, with potential for better accuracy as more people participate and learn.

TL;DR

Polymarket offered valuable real-time election insights but had mixed accuracy, showing both the strengths and limitations of prediction markets as election forecasting tools. As prediction markets like Polymarket grow, they might provide complementary insights to traditional polling, with promising potential for the future.

 



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Boomland Airdrop Season 2: Earn Rewards Worth $1M in Hunters On-Chain

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Boomland Airdrop Season 2: Earn Rewards Worth M in Hunters On-Chain


Hunters On-Chain has launched Season 2 of the Boomland Airdrop on Game7 with a 100M $BOOM token prize pool worth $1M at its Token Generation Event. This season has an expanded LootDrop campaign with new ways to earn rewards, including Faction Wars.

With PvE and PvP modes, you can compete to rank on the leaderboard and get your share of the massive prize pool. Here’s what you need to know.

Rewards: $BOOM Tokens, XP and Premium Loot

Season 2 airdrop has 90M $BOOM on the leaderboard and 10M $BOOM on Faction Wars, rewarding players for in-game achievements and faction performance. Here’s what you can get:

$BOOM Bags: Contains $BOOM tokens which can be traded or burned to convert to in-game currency for character levelling.

G7 Portal XP and Credits: Earned through gameplay, XP and credits improve ranking and unlock items.

Premium Hunters and T3 Genesis Chests: Top players get Premium Hunters with special perks and T3 Genesis Chests with valuable items.

With tradeable $BOOM tokens, you can earn real-world value for your Hunters On-Chain efforts. Top players can convert these rewards into valuable assets in the Boomland ecosystem. It’s important to note that the full public launch of the $BOOM token has not yet happened.

Join the Boomland Airdrop

Go to Game7’s LootDrop page and connect your Boomland account to the Game7 Portal.

Go to Boomland’s airdrop page, and you can also join a faction using a community referral code to join other players in Faction Wars.

Start playing in Hunt Mode and get as high a score as possible to rank on the leaderboard.

Complete the first trial in the Boomland LootDrop campaign to qualify.

The top 3 factions in Faction Wars will share 10M $BOOM; faction ranking is based on the average score of each group. To join a faction, head over to Boomland’s X page to find some you can join (including reference codes), such as Blocklords.

The application deadline to start your own faction is November 21st, and you can do so on Game7.

Real Ownership with Immutable Passport

Hunters On-Chain uses blockchain to give players real ownership of their progress and assets. Through the Immutable Passport, players can store, trade or sell their Hunters, equipment and other valuable items, so their in-game efforts have real value. With this integration, players’ time and achievements translate to assets that can be transferred out of the game.

Game Modes: Earn $BOOM in PvE and PvP Challenges

Hunters On-Chain has several game modes for PvE and PvP players, each with different ways to earn $BOOM, XP and rewards. In PvE modes, you can play Hunt Mode, a 3 minute co-op battle across biomes with increasing difficulty.

For a team play experience, Co-Op Mode allows you to join another Hunter to protect the King, with levelling and bonus rewards during the battle. In Boss Hunt, you face powerful enemies, leading up to the ultimate boss fight that tests your skills and strategy.

For PvP players, Duel Mode allows you to play ranked best of 3 matches against each other, with winners increasing their rank and reward potential. Bounty Hunter Mode is a 10-player battle royale where players compete for valuable rewards.

During these matches, you can heal and temporarily boost your stats by picking up items on the battlefield, adding a strategic layer to PvP.

Tips to get the most out of the Boomland Airdrop

To get the most rewards in the Boomland Airdrop, focus on XP-boosting activities like completing quests, getting badges and referring friends to the game.

Premium hunters give you extra XP boosts that can help you climb the leaderboard. Being part of the community and following game updates also gives you tips and strategies.

In a Web3 game where every point matters, focusing on high XP activities and using in-game advantages like premium hunters can make a big difference in topping the leaderboard. By planning your gameplay and being active in the Boomland community, you can get more rewards and have more fun.

Conclusion: Why Join the Boomland Airdrop

The event runs till November 28, and the Boomland Airdrop gives you many chances to earn $BOOM tokens, exclusive loot and more rewards the longer you play. There is zero cost to join, and it is already popular among players to climb the leaderboard. If you want to boost your rewards, join a Faction with a referral code and get extra chances—the top 3 Factions get bonuses for the whole team. It is easy to join, play and see what you can win.

Editor’s note: Written with the assistance of AI – Edited and fact-checked by Jason Newey.

Jason Newey

Jason Newey is a seasoned journalist specializing in NFTs, the Metaverse, and Web3 technologies. With a background in digital media and blockchain technology, he adeptly translates complex concepts into engaging, informative articles.

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Bitcoin ATMs: Usage and Functionality Explained – Metaverseplanet.net

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Bitcoin ATMs: Usage and Functionality Explained – Metaverseplanet.net


A Bitcoin ATM (Automated Teller Machine) or BTM (Bitcoin Teller Machine) is a physical kiosk that facilitates Bitcoin transactions, bypassing the traditional banking system. As the value of cryptocurrencies rises and more people rely on digital assets, these machines have become increasingly popular.

Unlike regular ATMs, BTMs connect directly to a Bitcoin wallet rather than a bank account. Users transact through their Bitcoin wallets, where coins are deposited or debited. Some Bitcoin ATMs even resemble traditional ATMs, modified with specialized software to process Bitcoin transactions.

A Brief History of Bitcoin ATMs

Bitcoin ATMs: Usage and Functionality Explained

The world’s first Bitcoin ATM was installed on October 29, 2013, with a Robocoin machine located at Waves Coffee Shop in Vancouver, Canada. Though it ceased operations in 2015 due to technical issues, it remains a pioneering milestone in cryptocurrency ATM history. Over the years, Bitcoin ATMs have encountered regulatory challenges, leading to regulations similar to those for traditional ATMs, such as setting daily transaction limits.

How Does a Bitcoin ATM Work?

Bitcoin ATMs connect to a cryptocurrency exchange to facilitate Bitcoin purchases. When users deposit traditional currency, the machine converts it into Bitcoin and deposits it into their digital wallet, recorded on the blockchain — the decentralized ledger that tracks all cryptocurrency transactions. To use a Bitcoin ATM, users typically scan a QR code from their digital wallet, deposit cash, and receive the equivalent amount of Bitcoin in their wallet.

Risks and Limitations of Bitcoin ATMs

Though Bitcoin ATMs offer accessibility, they also come with certain risks and limitations. Due to regulations, many Bitcoin ATMs no longer provide anonymity; users are often required to verify their identity, particularly for larger transactions. Additionally, Bitcoin ATM fees are typically higher than other transaction methods, with fees varying by machine and operator.

The Current State of Bitcoin ATMs

Today, over 30,000 Bitcoin ATMs operate globally, with nearly 90% located in the United States. North America leads the market, with BTMs often found in cafes, retail stores, and transportation hubs like train stations and airports.

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Understanding the System 2 Model: OpenAI’s New Approach to LLM Reasoni

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Understanding the System 2 Model: OpenAI’s New Approach to LLM Reasoni


OpenAI recently launched two new models, OpenAI o1-preview and OpenAI o1-mini, representing a significant step forward in large language models (LLMs). These models are being hailed as the first commercial implementations of “System 2” reasoning models, a concept that contrasts with the traditional “System 1” AI models we’ve been using since the release of ChatGPT in 2022. But what exactly is a System 2 model, and how does it differ from System 1? This article dives into the techniques, concepts, and innovations behind this new wave of reasoning-based AI.

What Is the System 2 Model?

The idea of System 1 and System 2 thinking originates from Daniel Kahneman’s 2011 book Thinking, Fast and Slow. System 1 refers to fast, intuitive thinking, while System 2 involves slower, more deliberate, and analytical thinking. Similarly, in AI, System 1 models respond quickly to prompts based on learned patterns, whereas System 2 models engage in more thoughtful, step-by-step reasoning.

Until now, most of the AI models we have interacted with fall into the System 1 category, offering immediate responses based on previous training. System 2 models, like the new OpenAI o1, are designed to break down complex tasks, analyze different scenarios, and deliver more reasoned responses—mimicking a more human-like reasoning process.

The Shift from System 1 to System 2 in AI

When OpenAI launched ChatGPT in November 2022, it quickly became clear that AI models could handle a wide variety of tasks but often struggled with more complex, multi-step problems. System 1 models are excellent for straightforward queries, but tasks that require deeper analysis have often been challenging.

System 2 models, by contrast, approach problems methodically. They break tasks into smaller steps, assess different approaches, and evaluate outcomes before delivering a final response. This transition from reactive to deliberate problem-solving can revolutionize how AI handles more nuanced, never-before-seen problems.

Key Concepts Behind System 2 Models

1. Chain of Thought (CoT) Reasoning

The foundation of System 2 models lies in their ability to use Chain of Thought (CoT) reasoning. This involves generating intermediate steps before arriving at a final answer, helping the model process complex problems more effectively. This approach, popularized by papers such as Chain-of-Thought Prompting Elicits Reasoning in Large Language Models (2022), allows the model to reason through a problem, much like a human would break down a difficult question.

2. Tree of Thoughts

Another technique integrated into System 2 models is the Tree of Thoughts (2023). This method expands on the CoT approach by exploring multiple paths of reasoning simultaneously. The model can evaluate different strategies in parallel, selecting the most promising path based on logical outcomes.

3. Branch-Solve-Merge (BSM)

A more recent innovation is the Branch-Solve-Merge (2023) technique. This allows the model to branch off into different potential solutions, work through each one, and then merge the best elements to form a final, optimized solution.

4. System 2 Attention

System 2 Attention is another key aspect of these models. While traditional models use attention mechanisms to focus on important words or tokens in a prompt, System 2 models pay attention to the most critical steps in a reasoning process. By weighing certain reasoning paths more heavily, these models can make more informed decisions throughout the problem-solving process.

What Are Reasoning Tokens?

One of the biggest breakthroughs in System 2 models is the introduction of reasoning tokens. These tokens serve as a guide for the AI, directing it through each step of the reasoning process. Rather than simply responding to a prompt, the model uses these tokens to think through a problem more thoroughly.

Types of Reasoning Tokens

There are several types of reasoning tokens used in System 2 models, each designed for a specific purpose:

Self-Reasoning Tokens: These tokens help the model reason about the problem by itself, almost like a self-guided brainstorming session.

Planning Tokens: These tokens help the model plan out its steps in advance, ensuring that it follows a logical path toward solving the problem.

Examples of reasoning tokens might include commands like <Analyze_Problem>, <Generate_Hypothesis>, <Evaluate_Evidence>, and <Draw_Conclusion>. These tokens are invisible to the user but are crucial in guiding the AI through a complex reasoning process.

System 2 models often generate intermediate outputs or temporary conclusions during reasoning. These outputs allow the model to assess its progress before giving a final answer. However, these intermediate steps are removed before the user sees the final output. This behind-the-scenes reasoning process makes System 2 models capable of solving more intricate problems than their System 1 predecessors.

The Role of Reinforcement Learning (RL)

OpenAI has also integrated Reinforcement Learning (RL) into its System 2 models. RL helps the model focus on the most promising reasoning paths while avoiding less fruitful ones. By continuously learning from its mistakes, the model improves over time, improving at solving complex problems with each iteration.

This learning mechanism allows the AI to excel at tasks involving uncertainty or long-term planning—areas where traditional models tend to falter. RL ensures that the model doesn’t waste resources exploring unproductive paths and instead zeroes in on the best solutions faster.

Decision Gates: Ensuring Thoughtful Responses

System 2 models also use Decision Gates, which act as checkpoints during the reasoning process. These gates determine whether the model has engaged in sufficient reasoning before responding. If the reasoning is incomplete, the model continues to process the task until a satisfactory solution is found.

How System 2 Models Excel at Complex Tasks

Thanks to their CoT reasoning, planning tokens, and reinforcement learning techniques, System 2 models are particularly well-suited for complex, never-seen-before tasks. For example, deciphering ancient texts or installing a Wi-Fi network in a large stadium can be broken down into manageable steps by using specialized reasoning tokens.

Example: Deciphering Corrupted Texts

In a scenario where a System 2 model is tasked with deciphering a corrupted text, the reasoning tokens might include:

<analyze_script>: Directs the model to analyze the text’s structure.

<identify_patterns>: Guides the model in looking for recurring themes or patterns.

<cross_reference>: Prompts the model to compare the corrupted text with known texts.

These tokens help the model approach the task step-by-step, just as a human expert would.

System 2 in Action: Complex Wi-Fi Installations

Similarly, when designing a Wi-Fi installation in a complex environment like a stadium, the model could use tokens like:

<Analyze_Environment>: To understand the stadium’s layout.

<Determine_AP_Locations>: To decide the best places to install access points.

<Simulate_Traffic>: To simulate a full stadium and assess Wi-Fi performance.

By simulating different scenarios and solutions, the model ensures that the final outcome is optimized for real-world conditions.

Conclusion: The Future of AI with System 2 Models

System 2 models represent a major leap forward in AI capabilities, offering a new level of reasoning and problem-solving that traditional models couldn’t achieve. These models can tackle more complex, multi-step tasks with greater accuracy by utilizing techniques like Chain of Thought reasoning, reinforcement learning, and planning tokens. Although System 2 AI is still evolving, its potential to reshape industries like engineering, science, and data analysis is undeniable.

FAQs

What is the difference between System 1 and System 2 models?

System 1 models provide immediate, intuitive responses, while System 2 models engage in slower, more deliberate reasoning processes.

What are reasoning tokens in System 2 AI?

Reasoning tokens guide the model through each step of solving complex problems, breaking down tasks into smaller, manageable steps.

How does reinforcement learning improve System 2 models? Reinforcement learning helps the model focus on the most promising reasoning paths, learning from mistakes to improve over time.

What are Decision Gates in System 2 models?

Decision Gates ensure that the model has completed sufficient reasoning before delivering a final response.

How does the Chain of Thought technique help System 2 models?

Chain of Thought allows the model to break down complex tasks into intermediate steps, enabling a more thorough and reasoned approach.



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Nintendo Chose The Funniest Time To Confirm Switch 2 Backwards Compatibility

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Nintendo Chose The Funniest Time To Confirm Switch 2 Backwards Compatibility


Photo: Michael San Diego (Shutterstock)

A big question around the Switch 2 has just been answered. While everyone (in the U.S. at least) is glued to their TV watching the 2024 election returns, Nintendo officially confirmed that its next gaming console will be backwards compatible with the Switch.

“At today’s Corporate Management Policy Briefing, we announced that Nintendo Switch software will also be playable on the successor to Nintendo Switch,” Nintendo president Shuntaro Furukawa wrote on Twitter. “Nintendo Switch Online will be available on the successor to Nintendo Switch as well.”

Players with massive Switch game libraries everywhere just heaved a massive sigh of relief. It wasn’t a complete surprise, however, as there had been some clues that everything on the existing hardware might carry over to the Switch 2. Nintendo of America President Doug Bowser previously suggested that the company was focused on creating a smooth transition between consoles. At the same time, no one would have put it past Nintendo to do the unthinkable and buck the current expectations around taking your older game libraries into the future.

With Switch Online also being compatible with the next console, it seems like all of the emulation work Nintendo’s already done to make NES, SNES, Nintendo 64, Game Boy, Game Boy Advance, and Sega Genesis games work on its modern platform won’t have to be repeated this time around when switching from one device’s virtual console to another.

But where does this leave the Switch 2’s actual announcement? “Further information about the successor to Nintendo Switch, including its compatibility with Nintendo Switch, will be announced at a later date,” Furukawa added in his tweet. Many expected a reveal as early as September or October. Now, however, the window for a 2024 announcement seems to be closing fast, especially as the company prepares for its holiday blitz aimed at selling millions more of the existing Switch models.

Nintendo previously said it would announce the Switch 2, or whatever it ends up calling the successor console, before the end of March 2025. Despite the wait, the company reiterated that time-table today, saying nothing had changed.



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DeFi Adoption Will be Marked by Advanced Trading Models

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DeFi Adoption Will be Marked by Advanced Trading Models


In Brief

DeFi’s next phase requires advanced financial primitives, including hybrid trading models, to support sustained growth and attract both everyday users and institutional investors.

DeFi Adoption Will be Marked by Advanced Trading Models

As decentralized finance (DeFi) advances, it’s clear that its foundational technology needs to mature as well. Early innovations like Automated Market Makers (AMMs) and Centralized Exchanges (CEXs) were vital for DeFi’s adoption in its beginnings, but the ecosystem now requires more robust tools to support its next phase, one that attracts both everyday users and institutional DeFi investors. The next era of DeFi will be marked by advanced “financial primitives”—new mechanisms that can drive sustained growth. One advancement will be the introduction of hybrid trading models, which are essential for supporting institutional DeFi, the next generation of finance.

Mapping DeFi’s Waves of Innovation

The introduction of new financial primitives has marked each stage of DeFi’s adoption, each propelling the next wave of innovation. In the first major bull run, lending protocols like Aave and Compound, and AMMs like Uniswap, laid the groundwork for DeFi by introducing democratic access to liquidity and yield, allowing users to lend, borrow, and trade assets directly from their wallets without intermediaries.

The next wave of innovation was marked by the emergence of more advanced trading infrastructure, like the rise of order book-based systems, such as Central Limit Order Books (CLOBs). These innovations not only brought increased maturity to DeFi by increasing control and precision in trade executions but also by providing a familiar TradFi-user experience. Developments like these have helped introduce new participants into the ecosystem, particularly institutional players seeking greater flexibility and high-frequency trading capabilities.

The industry is now ready for its next wave of innovation and to continue on its path of maturity towards institutional DeFi. This next wave will require advanced financial primitives to support larger institutional entry and expansion into the space. This maturity will likely see the rise of a hybrid model that combines the strengths of both lending protocols and AMMs with the efficiency and sophistication of CLOBs. Hybrid trading models will represent a sophisticated approach that goes beyond the basic financial primitives that drove DeFi’s first wave of innovation and will offer a more nuanced and versatile trading ecosystem that can support the needs of institutions.  

DeFi’s Maturity Lies in Hybrid Trading Models

The next wave of DeFi growth is expected to be driven by increasing institutional investment and interest, and this will require a well-structured market to navigate. To accommodate this shift, DeFi must evolve beyond the limitations of AMMs, which are well-suited for everyday users, and develop infrastructure that meets the demands of more sophisticated traders. This is where creating a hybrid model with CLOBs has the potential to become a game-changer for DeFi, offering advanced trading capabilities, superior price discovery, and improved capital efficiency to support the needs of institutional participants. This integration would combine the features and benefits of both trading mechanisms creating a more versatile and efficient financial tool. 

In addition to providing a more advanced trading experience, a hybrid trading model can also help solve some of DeFi’s biggest pain points. Fragmented liquidity continues to be an obstacle as assets are often locked in different protocols and silos. Integrating AMMs and CLOBs can help stabilize and deepen native liquidity across DeFi platforms by pooling liquidity and creating easier access to capital and assets. This reduces the need for external incentives to attract users, such as liquidity mining, and creates a more sustainable liquidity model.

Institutional Adoption will Require A Familiar Trading Experience in DeFi

For DeFi to reach its full potential and bring in larger institutional players, it must offer a trading environment that balances ease of access with the efficiency and sophistication found in traditional finance. Hybrid trading models that integrate AMMs with CLOBs can offer this balance, delivering a refined trading experience that encourages deeper liquidity and stronger market dynamics. These hybrid models have the potential to define the future of DeFi, shaping an ecosystem that supports a wide range of participants and offers long-term stability and growth.

Disclaimer

In line with the Trust Project guidelines, please note that the information provided on this page is not intended to be and should not be interpreted as legal, tax, investment, financial, or any other form of advice. It is important to only invest what you can afford to lose and to seek independent financial advice if you have any doubts. For further information, we suggest referring to the terms and conditions as well as the help and support pages provided by the issuer or advertiser. MetaversePost is committed to accurate, unbiased reporting, but market conditions are subject to change without notice.

About The Author


Vitali Dervoed is a tech entrepreneur with 10 years of experience across banks, fintech ventures, and diverse industries. His expertise spans product development, business analysis, process improvements, business development, and blockchain software development. He has guided teams in achieving professional growth and strategic goals. Vitali has led local and international product launches, creating mobile applications for sectors like fintech, sports and wellness, and e-commerce.

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Vitali Dervoed is a tech entrepreneur with 10 years of experience across banks, fintech ventures, and diverse industries. His expertise spans product development, business analysis, process improvements, business development, and blockchain software development. He has guided teams in achieving professional growth and strategic goals. Vitali has led local and international product launches, creating mobile applications for sectors like fintech, sports and wellness, and e-commerce.



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Bold and the Beautiful: Steffy Knocks Down Logan Ladies One at a Time

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    Bold and the Beautiful: Steffy Knocks Down Logan Ladies One at a Time


    Bold and the Beautiful has Steffy Forrester full of sarcasm and witty comebacks as she addresses the complaints over her recent firing of the Logan daughter on the CBS soap. Then there’s Taylor Hayes, who remains mounted on the corner of her daughter’s desk, acting as Steffy’s amplifier. She sits there with a snarky look on her face and echoes her daughter’s words. This can’t be good for the morale around Forrester Creations.

    Bold and the Beautiful: Steffy Forrester’s Deed Makes Ridge Forrester Quiver

    Bold and the Beautiful fans put Ridge Forrester (Thorsten Kaye) in the wrong after letting Steffy Forrester (Jacqueline MacInnes Wood) railroad him. One of the biggest complaints from B&B viewers is how he allowed his daughter to have Hope Logan (Annika Noelle) escorted out of the building. Even “Team Steffy” viewers found this level of humiliation uncalled for.

    Bold and the Beautiful Spoilers: Steffy Forrester (Jacqueline MacInnes Wood)
    B&B | CBS

    But this is just the beginning for Ridge, and he can thank his daughter for putting a target on his back. Steffy Forrester never discussed firing Hope with her father. But she continues to say her father agreed with her and uses it as a defense. She told her father what Hope had done. Then she informed him she fired him. He had no say in the matter in this Bold and the Beautiful event.

    But, instead of calling his daughter on her unethical antic, he acts as if he goes along with this. Possibly because Taylor Hayes (Rebecca Budig) is like a fixture in his office these days, and she pushes him to agree with their daughter.

    B&B: Steffy Ready for the Logan Women

    Katie Logan was Steffy Forrester’s first contender on Bold and the Beautiful this week. Steffy had a comeback for everything Katie threw at her and knocked down everything she said. The Forrester daughter seemed to feel pleasure when letting this Logan sister know Ridge was right by her side through the incident.

    She also seemed to enjoy reminding Katie that the Forresters own this company. But, you can bet she isn’t the last Logan woman hit with Steffy’s misguided use of control. Steffy Forrester will need to hold her own with Brooke Logan (Katherine Kelly Lang) who comes with her mama bear face on. So, the Forrester daughter knocks down the demands from the Logan family one at a time. She likely has Taylor hovering close by and reinforcing everything her daughter says.

    But Steffy has more than just the Logan ladies looking for answers and offering a piece of their minds. Carter Walton (Lawrence Saint-Victor) also likely confronts Steffy. But first, he heads to Ridge, who by now knows that Carter’s complaint is legit about Steffy letting her personal life bleed into the workplace.

    So, now Ridge needs to clean up Steffy Forrester’s mess as it gets even bigger this week on Bold and the Beautiful. It was like he stood aside as Steffy had her childish fit, which resulted in pushing Hope out the door. Once Brooke has her say, Ridge will realize just what he’s done. Plus, Eric Forrester (John McCook) has Donna Logan (Jennifer Gareis) to contend with, but you can bet her second stop is Ridge Forrester.

    Bold and the Beautiful: Ridge A Sitting Duck for Irate Complaints

    Ridge Forrester can’t walk away or hide from this. His daughter was way out of bounds, and it’s likely he knew this from the get-go. But will he admit that standing by and not doing a thing was not right or that he should have stopped it?

    Even when he lightly reprimanded his daughter for what she did, Taylor baited Ridge. She reminded him how he backed his daughter about the firing. So, Ridge has to know that he did the wrong thing by not cutting off his daughter’s Logan-hunting behavior. Instead, tabling the conversation for when Steffy Forrester and Hope Logan cooled down was the right move. But it looks like he pays dearly for this on the CBS soap.

    Head back to Soap Dirt for the latest Bold and the Beautiful spoilers.



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    ApeChain: Unlocking the Future of Blockchain with Content, Tools, and Distribution | NFT CULTURE | NFT News | Web3 Culture | NFTs & Crypto Art

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    ApeChain: Unlocking the Future of Blockchain with Content, Tools, and Distribution | NFT CULTURE | NFT News | Web3 Culture | NFTs & Crypto Art


     

    ApeChain, the Ethereum layer-2 network by ApeCoin DAO, has quickly emerged as a forward-thinking platform that optimizes blockchain for the BAYC ecosystem and beyond. Building on Arbitrum’s technology and an innovative ecosystem blueprint, ApeChain emphasizes three main areas: Content, Tools, and Distribution. This approach aims to create a streamlined experience for developers and users, with features designed to elevate web3 interactions.

    ApeChain Core: Enhancing the Blockchain Experience

    ApeChain’s core plan focuses on user-centric growth, facilitating discovery, competition, and broad distribution.

    Discovery: ApeChain aims to make blockchain exploration easy with a comprehensive ecosystem website launching in September 2024. Partnering with companies like Halliday, Decent, and Privy, ApeChain provides tools for seamless onboarding, account abstraction, and bridging with fiat onramps. This user-friendly approach not only attracts new participants but also makes navigating the ecosystem intuitive and accessible.
    Competition: Leveraging unique web3 protocols, ApeChain introduces the Reboot Protocol, a framework that allows users to place wagers on themselves, friends, or events. This protocol can support competitions across all ApeChain dApps, adding an engaging competitive element. Furthermore, ApeChain is pioneering Native Yield, enabling instant withdrawals across ApeCoin, ETH, and stablecoins—a first for blockchain platforms.
    Distribution: To expand ApeChain’s reach, the platform collaborates with renowned brands like BAPE. Its integration with Otherside, Yuga Labs’ metaverse project, makes use of the ODK (Open Development Kit), which incorporates Unreal Engine Blueprints. These blueprints let users buy, sell, and trade NFTs directly in the Otherside metaverse, further advancing the spatial internet and providing a new, immersive way to engage with crypto.

    Arbitrum’s Role: Key Technological Upgrades

    ApeChain leverages Arbitrum’s roadmap, including Stylus, Timeboost, BoLD, and Cluster Chains—each designed to enhance scalability, transaction efficiency, and security on ApeChain.

    Stylus: A new programming paradigm, Stylus enables developers to write smart contracts in Rust, C, or C++ while maintaining compatibility with Ethereum’s EVM. This flexibility makes ApeChain a versatile environment for developers with varied technical backgrounds.
    Timeboost: This upgrade introduces priority gas fees, allowing users to expedite transactions by paying a premium. Half of these fees return to the DAO, while the other half is burned, creating a natural deflationary effect on ApeCoin as demand grows.
    BoLD (Bounded Liquidity Delay Protocol): BoLD moves ApeChain closer to permissionless validation, decentralizing security further. Validators can act as proposers and challengers, earning rewards for defending network integrity. This protocol enables ApeCoin-based security bonds and introduces specialized roles for Yuga NFTs, further integrating the Ape ecosystem into ApeChain’s core technology.
    Cluster Chains: An innovative Arbitrum feature, Cluster Chains allows interconnected chains to leverage each other’s validators, boosting scalability and throughput. By facilitating cross-chain collaboration, ApeChain ensures faster transactions and expands capacity to support a growing user base.

    Protocol Incentives: Banana Bill’s Support for Builders

    ApeChain’s Banana Bill initiative funds dApp development on the network, with a unique rewards program for early contributors. The initiative provides token allocations for decentralized contributions, incentivizing developers to build and grow on ApeChain. This points-based rewards system fuels ecosystem expansion, empowering creators while building long-term value for ApeCoin holders.

    Conclusion: ApeChain’s Vision of the Web3 Future

    ApeChain is more than a blockchain network; it’s an evolving ecosystem crafted for creators, users, and brands. By aligning with Arbitrum’s cutting-edge technology, ApeChain focuses on improving user experience, fostering innovation, and advancing decentralized security. With a robust development roadmap, ApeChain is set to become a powerful platform for building next-gen dApps, driving ecosystem growth, and supporting the evolving spatial internet.

    TL;DR: ApeChain, a new Ethereum layer-2 network, brings a threefold focus on Content, Tools, and Distribution, enhancing the BAYC ecosystem. Leveraging Arbitrum’s advanced features, including Stylus and Timeboost, ApeChain improves scalability, security, and usability. With initiatives like the Banana Bill, ApeChain offers strong incentives for builders, positioning itself as a key player in the future of blockchain and the spatial internet.

     



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    Best game engine for mobile game development

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    Best game engine for mobile game development


    Introduction

    The mobile gaming industry has exploded in recent years, offering immense opportunities for developers to reach a global audience. To capitalize on this growth, developers need powerful and flexible game engines. This guide will explore some of the best game engines for mobile game development, considering factors like performance, ease of use, and community support.

    Key Considerations for Mobile Game Development

    Before diving into specific game engines, consider the following factors:

    Platform: Are you targeting iOS, Android, or both?

    Genre: The genre of your game will influence the choice of engine.

    Team Size and Experience: A larger team with experienced developers may be able to handle more complex engines, while smaller teams might benefit from simpler tools.

    Performance: The engine should be optimized for mobile devices, delivering smooth gameplay and efficient resource usage.

    Community and Support: A strong community and active forums can provide valuable resources and assistance.

    Top Game Engines for Mobile Game Development

    1. Unity

    Why Unity?

    Versatility: Unity is a powerful and versatile game engine suitable for a wide range of game genres.

    Cross-Platform Development: Easily deploy games to iOS, Android, Windows, macOS, and various consoles.

    Large Community and Asset Store: Benefit from a vast community and a wealth of pre-built assets.

    Advanced Features: Unity offers advanced features like physics, lighting, and particle effects.

    Key Considerations for Mobile Game Development

    2. Unreal Engine

    Why Unreal Engine?

    Stunning Visuals: Unreal Engine is renowned for its powerful rendering capabilities and stunning visuals.

    Blueprint Visual Scripting: Create game logic visually without writing code.

    C++ Programming: For experienced programmers, C++ offers greater control and performance optimization.

    Robust Physics Engine: Simulate realistic physics interactions in your game world.

    3. Godot

    Why Godot?

    Open-Source and Free: Godot is a free and open-source game engine, making it an attractive option for indie developers.

    Node-Based Visual Scripting: Create game logic visually using nodes.

    2D and 3D Capabilities: Godot is suitable for both 2D and 3D game development.

    Cross-Platform Support: Export games to various platforms, including mobile, PC, and consoles.

    4. GameMaker Studio 2

    Why GameMaker Studio 2?

    User-Friendly Interface: GameMaker Studio 2’s drag-and-drop interface makes it easy to create games without writing code.

    Powerful Scripting: GML (GameMaker Language) offers a flexible scripting language for advanced users.

    Cross-Platform Compatibility: Export games to various platforms, including mobile, PC, and consoles.

    Large Community and Asset Store: Benefit from a supportive community and a vast collection of assets to accelerate development.

    Top Game Engines for Mobile Game Development

    5. Phaser

    Why Phaser?

    JavaScript-Based: Use JavaScript to create HTML5 games that can run in web browsers and on mobile devices.

    Lightweight and Fast: Phaser is optimized for performance, making it suitable for fast-paced games.

    Large Community and Resources: Benefit from a large community and a wealth of tutorials and examples.

    Choosing the Right Engine

    When selecting a game engine for mobile development, consider the following factors:

    Your Skill Level: If you’re a beginner, a visual scripting engine like Unity’s Bolt or Godot’s Node-based system can be a good starting point.

    The Type of Game You Want to Create: Different engines are better suited for specific genres.

    Read Also: Best Free Game Development Software for Students

    Your Budget: Some engines are free, while others may require licensing fees.

    Platform Compatibility: Ensure the engine supports the platforms you want to target (iOS, Android).

    Best game engine for mobile game development

    Community and Support: A strong community and active forums can be invaluable resources.

    Conclusion

    The choice of game engine is crucial for the success of your mobile game. By carefully considering your needs, skills, and budget, you can select the best tool to bring your game ideas to life. Remember, the most important factor is to start creating and experimenting. With dedication, passion, and the right tools, you can achieve your game development goals.



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