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BNB AI price

BNB AI priceBNB

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₱0.003786PHP
-3.74%1D
Ang presyo ng BNB AI (BNB) sa Philippine Peso ay ₱0.003786 PHP.
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Price chart
BNB AI price chart (PHP/BNB)
Last updated as of 2025-12-15 21:32:13(UTC+0)

Live BNB AI price today in PHP

Ang live BNB AI presyo ngayon ay ₱0.003786 PHP, na may kasalukuyang market cap na ₱0.00. Ang BNB AI bumaba ang presyo ng 3.74% sa huling 24 na oras, at ang 24 na oras na trading volume ay ₱788.57. Ang BNB/PHP (BNB AI sa PHP) ang rate ng conversion ay ina-update sa real time.
How much is 1 BNB AI worth in Philippine Peso?
As of now, the BNB AI (BNB) price in Philippine Peso is ₱0.003786 PHP. You can buy 1 BNB for ₱0.003786, or 2,641.32 BNB for ₱10 now. In the past 24 hours, the highest BNB to PHP price was ₱0.003945 PHP, and the lowest BNB to PHP price was ₱0.003786 PHP.

Sa palagay mo ba ay tataas o bababa ang presyo ng BNB AI ngayon?

Total votes:
Rise
0
Fall
0
Ina-update ang data ng pagboto tuwing 24 na oras. Sinasalamin nito ang mga hula ng komunidad sa takbo ng presyo ni BNB AI at hindi dapat ituring na investment advice.

BNB AI market Info

Price performance (24h)
24h
24h low ₱024h high ₱0
All-time high (ATH):
₱0.1321
Price change (24h):
-3.74%
Price change (7D):
-20.54%
Price change (1Y):
-67.42%
Market ranking:
#8632
Market cap:
--
Ganap na diluted market cap:
--
Volume (24h):
₱788.57
Umiikot na Supply:
-- BNB
Max supply:
139.00M BNB

BNB AI Price history (PHP)

Ang presyo ng BNB AI ay -67.42% sa nakalipas na taon. Ang pinakamataas na presyo ng sa PHP noong nakaraang taon ay ₱0.1321 at ang pinakamababang presyo ng sa PHP noong nakaraang taon ay ₱0.002079.
TimePrice change (%)Price change (%)Lowest priceAng pinakamababang presyo ng {0} sa corresponding time period.Highest price Highest price
24h-3.74%₱0.003786₱0.003945
7d-20.54%₱0.003786₱0.004848
30d-25.53%₱0.003786₱0.005166
90d-87.66%₱0.003786₱0.03104
1y-67.42%₱0.002079₱0.1321
All-time-41.54%₱0.002079(2025-08-25, 113 araw ang nakalipas)₱0.1321(2025-09-10, 97 araw ang nakalipas)
BNB AI price historical data (all time)

Ano ang pinakamataas na presyo ng BNB AI?

Ang BNB all-time high (ATH) noong PHP ay ₱0.1321, naitala noong 2025-09-10. Kung ikukumpara sa BNB AI ATH, sa current BNB AI price ay bumaba ng 97.13%.

Ano ang pinakamababang presyo ng BNB AI?

Ang BNB all-time low (ATL) noong PHP ay ₱0.002079, naitala noong 2025-08-25. Kung ikukumpara BNB AI ATL, sa current BNB AI price ay tumataas ng 82.11%.

BNB AI price prediction

Kailan magandang oras para bumili ng BNB? Dapat ba akong bumili o magbenta ng BNB ngayon?

Kapag nagpapasya kung buy o mag sell ng BNB, kailangan mo munang isaalang-alang ang iyong sariling diskarte sa pag-trading. Magiiba din ang aktibidad ng pangangalakal ng mga long-term traders at short-term traders. Ang Bitget BNB teknikal na pagsusuri ay maaaring magbigay sa iyo ng sanggunian para sa trading.
Ayon sa BNB 4 na teknikal na pagsusuri, ang signal ng kalakalan ay Malakas na nagbebenta.
Ayon sa BNB 1d teknikal na pagsusuri, ang signal ng kalakalan ay Sell.
Ayon sa BNB 1w teknikal na pagsusuri, ang signal ng kalakalan ay Malakas na nagbebenta.

Ano ang magiging presyo ng BNB sa 2026?

Sa 2026, batay sa +5% taunang pagtataya ng rate ng paglago, ang presyo ng BNB AI(BNB) ay inaasahang maabot ₱0.004227; batay sa hinulaang presyo para sa taong ito, ang pinagsama-samang return on investment ng pamumuhunan at paghawak BNB AI hanggang sa dulo ng 2026 aabot +5%. Para sa higit pang mga detalye, tingnan ang BNB AI mga hula sa presyo para sa 2025, 2026, 2030-2050.

Ano ang magiging presyo ng BNB sa 2030?

Sa 2030, batay sa isang +5% taunang pagtataya ng rate ng paglago, ang presyo ng BNB AI(BNB) ay inaasahang maabot ₱0.005138; batay sa hinulaang presyo para sa taong ito, ang pinagsama-samang return on investment ng pamumuhunan at paghawak BNB AI hanggang sa katapusan ng 2030 ay aabot 27.63%. Para sa higit pang mga detalye, tingnan ang BNB AI mga hula sa presyo para sa 2025, 2026, 2030-2050.

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FAQ

Ano ang kasalukuyang presyo ng BNB AI?

Ang live na presyo ng BNB AI ay ₱0 bawat (BNB/PHP) na may kasalukuyang market cap na ₱0 PHP. BNB AIAng halaga ni ay dumaranas ng madalas na pagbabago-bago dahil sa patuloy na 24/7 na aktibidad sa market ng crypto. BNB AIAng kasalukuyang presyo ni sa real-time at ang makasaysayang data nito ay available sa Bitget.

Ano ang 24 na oras na dami ng trading ng BNB AI?

Sa nakalipas na 24 na oras, ang dami ng trading ng BNB AI ay ₱788.57.

Ano ang all-time high ng BNB AI?

Ang all-time high ng BNB AI ay ₱0.1321. Ang pinakamataas na presyong ito sa lahat ng oras ay ang pinakamataas na presyo para sa BNB AI mula noong inilunsad ito.

Maaari ba akong bumili ng BNB AI sa Bitget?

Oo, ang BNB AI ay kasalukuyang magagamit sa sentralisadong palitan ng Bitget. Para sa mas detalyadong mga tagubilin, tingnan ang aming kapaki-pakinabang na gabay na Paano bumili ng bnb-ai .

Maaari ba akong makakuha ng matatag na kita mula sa investing sa BNB AI?

Siyempre, nagbibigay ang Bitget ng estratehikong platform ng trading, na may mga matatalinong bot sa pangangalakal upang i-automate ang iyong mga pangangalakal at kumita ng kita.

Saan ako makakabili ng BNB AI na may pinakamababang bayad?

Ikinalulugod naming ipahayag na ang estratehikong platform ng trading ay magagamit na ngayon sa Bitget exchange. Nag-ooffer ang Bitget ng nangunguna sa industriya ng mga trading fee at depth upang matiyak ang kumikitang pamumuhunan para sa mga trader.

Saan ako makakabili ng crypto?

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Seksyon ng video — mabilis na pag-verify, mabilis na pangangalakal

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Paano kumpletuhin ang pag-verify ng pagkakakilanlan sa Bitget at protektahan ang iyong sarili mula sa panloloko
1. Mag-log in sa iyong Bitget account.
2. Kung bago ka sa Bitget, panoorin ang aming tutorial kung paano gumawa ng account.
3. Mag-hover sa icon ng iyong profile, mag-click sa "Hindi Na-verify", at pindutin ang "I-verify".
4. Piliin ang iyong nagbigay ng bansa o rehiyon at uri ng ID, at sundin ang mga tagubilin.
5. Piliin ang “Mobile Verification” o “PC” batay sa iyong kagustuhan.
6. Ilagay ang iyong mga detalye, magsumite ng kopya ng iyong ID, at mag-selfie.
7. Isumite ang iyong aplikasyon, at voila, nakumpleto mo na ang pagpapatunay ng pagkakakilanlan!
Bumili ng BNB AI para sa 1 PHP
Isang welcome pack na nagkakahalaga ng 6200 USDT para sa mga bagong user ng Bitget!
Bumili ng BNB AI ngayon
Ang mga investment sa Cryptocurrency, kabilang ang pagbili ng BNB AI online sa pamamagitan ng Bitget, ay napapailalim sa market risk. Nagbibigay ang Bitget ng madali at convenient paraan para makabili ka ng BNB AI, at sinusubukan namin ang aming makakaya upang ganap na ipaalam sa aming mga user ang tungkol sa bawat cryptocurrency na i-eooffer namin sa exchange. Gayunpaman, hindi kami mananagot para sa mga resulta na maaaring lumabas mula sa iyong pagbili ng BNB AI. Ang page na ito at anumang impormasyong kasama ay hindi isang pag-endorso ng anumang partikular na cryptocurrency.

BNB sa PHP converter

BNB
PHP
1 BNB = 0.003786 PHP. Ang kasalukuyang presyo ng pag-convert ng 1 BNB AI (BNB) sa PHP ay 0.003786. Ang rate na ito ay para sa reference lamang.
Nag-aalok ang Bitget ng pinakamababang bayad sa transaksyon sa lahat ng pangunahing trading platforms. Kung mas mataas ang iyong VIP level, mas paborable ang mga rate.

BNB mga mapagkukunan

BNB AI na mga rating
4.6
100 na mga rating
Mga kontrata:
0x3376...2C66c85(BNB Smart Chain (BEP20))
Mga link:

Bitget Insights

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TheNewsCrypto
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BNB Could Reach $1,700, But Ozak AI Forecast Points to Higher ROI Territory🚀🤖 To Know More👇
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$BNB is shaping up well with a clear bull flag on the 4H chart. After a strong move up, price has been consolidating in a descending channel. This pattern shows sellers are fading while buyers are quietly stepping in. A breakout above the resistance would confirm the bullish move and open the door for another leg higher. Until then, it’s a waiting game. No breakout, no trade. But if BNB reclaims that level, momentum could pick up fast
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Exploring Copy Trading Strategy Through Getagent AI and Real Trades
▪️How I Used Getagent AI to Understand Copy Trading Agents When I started using Getagent AI, my goal was not to blindly copy trades. I wanted to understand how these AI copy trading agents actually think, how they manage risk, and which ones are structured to avoid major losses over time. Instead of guessing, I began asking Getagent very direct questions about the logic behind each agent, their strategy design, and why their performance differed under the same market conditions. Those conversations gave me far more clarity than I expected. ▪️Learning How AI Copy Trading Agents Think One of the first things Getagent helped me understand is that AI copy trading agents are not equal just because they trade crypto. Each one is built around a specific philosophy. Some are designed to survive first and grow slowly, while others are built to exploit momentum aggressively when conditions allow. That distinction became extremely important when I asked which agents were best suited for avoiding major losses. ▪️Choosing Agents Designed to Avoid Major Losses From those discussions, Apex_Neutral stood out as the most risk-conscious option. Getagent explained that this agent operates with extreme patience, only entering the market when statistically significant divergences appear. It pairs long and short positions to neutralize market direction risk and avoids over-trading entirely. Even though its returns were not the highest, the logic behind it was clear. This agent was built for protection, not excitement. That alone reshaped how I think about capital preservation when choosing who to copy. ▪️Understanding the Highest Winning AI Trader The conversation naturally led to BlueChip_Alpha, which at the time had the highest winning performance among the agents. What impressed me was not just the profit rate, but the structure behind it. Getagent explained that BlueChip_Alpha treats the market as a ranking system. Every few hours, it evaluates major assets like BTC, ETH, SOL, and BNB based on multi-timeframe momentum and volume-price behavior. Strong performers are bought, weak performers are shorted, creating a hedged, market-neutral portfolio. ▪️How the AI Handles Trend Shifts and Risk This is where I really began to understand how AI copy trading differs from manual trading. BlueChip_Alpha does not predict direction. It captures relative strength. Leverage is increased only when momentum and volume align across multiple timeframes, and exposure is reduced the moment those conditions weaken. Risk controls are predefined, not emotional. Seeing that logic laid out clearly by Getagent changed how I evaluate aggressive agents. ▪️Why Some Agents Struggle in Certain Markets I also asked Getagent why some agents underperform even when they have strong historical risk metrics. That’s when the AI explained the difference between rigid and adaptive strategies. Dip_Sniper, for example, is designed to catch trend exhaustion and reversals. When the market trends cleanly without exhaustion signals, it often stays inactive and may show small losses. On the other hand, Pure_DeepSeek adapts dynamically, switching between scalping and swing behavior depending on real-time conditions. ▪️Seeing the Logic in a Real Copy Trade What really tied everything together was seeing this logic play out in an actual copy trade. One closed $SOL short position, opened and closed within a few hours, reflected exactly what Getagent had described earlier. The entry was based on relative weakness, the leverage was controlled, fees were accounted for, and the position was closed without hesitation once the objective was met. ▪️How This Changed My Approach to Copy Trading Looking back, using Getagent AI to question these copy trading agents changed how I approach copying trades entirely. I stopped chasing the highest returns and started focusing on structure, adaptability, and risk logic. Instead of asking which agent makes the most money, I now ask how that agent survives different market phases. ▪️Final Takeaway From Using Getagent AI In the end, the biggest value wasn’t just copying AI trades. It was using Getagent AI to understand why those trades exist in the first place. That understanding made me more selective, more patient, and far more confident in choosing which AI copy trading agents actually align with my risk tolerance and trading goals.
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Why I joined the GetAgent AI Trading Bot event: I joined the Bitget GetAgent AI Trading Bot event because I wanted to understand how AI copy trading actually works in real market conditions. Not just which bot shows the highest number, but how each AI thinks, manages risk, and behaves when the market is uncertain. Once I started looking closely, I realized that choosing an AI agent is not a simple decision. Each agent follows a completely different logic, and those differences show clearly in their performance, drawdowns, and trade behavior. Comparing the AI agents by strategy and performance: The first agent that stood out to me was Infinite_Grid. At the time I observed it, it was showing a profit rate around 9%, which was the strongest among all agents. Its strategy is contrarian cycle trading. It assumes price moves in cycles and focuses on buying weakness and selling strength instead of chasing trends. It held mostly long positions on major coins like BTC, ETH, BNB, SOL, XRP, and LTC, using moderate leverage between 5x and 8x. Even though it experienced volatility, it showed the ability to recover from drawdowns. Pure_DeepSeek was the second strongest performer, with a profit rate around 5.5%. Its strategy is adaptive and flexible. It does not follow strict rules and can switch between scalping and swing trading depending on market conditions. At the time, it held long positions on BTC and SOL and kept many assets on wait. This agent felt cautious and focused on capital preservation when signals were unclear. Apex_Neutral had a profit rate around -9.5%. Its approach is market neutral. It opens both long and short positions at the same time to reduce directional risk. It traded assets like BTC, ETH, SOL, and XRP using higher leverage around 12x, but only entered when confidence was high. Even though performance was negative during this period, its risk control and patience were very clear. Dip_Sniper showed a profit rate around -25%. Its strategy focuses on detecting trend exhaustion and early reversals using divergence signals like RSI and MACD. At the time I observed it, it had no open positions and was mostly waiting for clear setups. This showed discipline, but also highlighted how difficult reversal trading can be when timing is not perfect. BlueChip_Alpha was sitting around -55%. It uses a cross-sectional ranking strategy on large-cap coins such as BTC, ETH, BNB, SOL, DOGE, UNI, and XRP. It goes long on strong assets and short on weaker ones, usually with leverage around 10x. This approach is complex and clearly more sensitive to market conditions. Altcoin_Turbo had a profit rate close to -65%. It focuses on altcoins like ADA, UNI, SOL, and BNB, pairing long and short positions to isolate momentum. Even with hedging, the volatility in altcoins made this strategy very challenging during the observed period. CTA_Force was also near -65%. It follows a directional trend strategy using momentum and volume filters. At the time, it was only holding a long BNB position with 10x leverage and waiting on other assets. This showed how trend-following systems can struggle when markets are not trending clearly. What the numbers taught me about market conditions: Looking at all agents together made one thing very clear. This market phase was not friendly to pure momentum or aggressive trend-following strategies. Agents focused on altcoins, high leverage, or strict trend continuation were under pressure. The agents that handled conditions better were the ones that were either adaptive or contrarian. Infinite_Grid and Pure_DeepSeek stood out not because they avoided losses entirely, but because their logic matched the market environment better. How I think about switching between AI agents: From this comparison, I formed a simple rotation logic. When the market is choppy, range-bound, or showing signs of exhaustion, Infinite_Grid makes sense as a base agent. Its cycle-based logic and moderate leverage help control risk. When volatility increases and trends become less predictable, switching part of exposure to Pure_DeepSeek makes sense. Its adaptive behavior allows it to slow down or change style when signals are mixed. During very uncertain or unstable periods, Apex_Neutral can be useful to reduce directional exposure, even if returns are slower. Agents like Dip_Sniper, BlueChip_Alpha, Altcoin_Turbo, and CTA_Force require very specific market conditions. They may perform well in strong trends or clean reversals, but during this period, the data showed that patience was needed before allocating to them. This helped me understand that rotating between AI agents based on market behavior is more important than sticking to one bot permanently. Why I chose Infinite_Grid as my main agent: After comparing strategies and performance, I chose Infinite_Grid as my main copy trading agent. Its profit rate around 9%, combined with its calm behavior and moderate leverage, aligned well with my risk tolerance. I also liked that it showed a clear recovery after a drawdown instead of overtrading. Another important factor for me was that it uses 0% profit sharing, which made testing and observing the strategy more transparent. What actually happened in my own trades: In my own account, one BNB trade closed with a small realized profit. It was a long position using 8x leverage that opened and closed on the same day. The gain was small, but the execution was clean and disciplined. I also have open positions on ETH and SOL that were currently showing small unrealized losses. These positions use 5x leverage and have no liquidation risk. This fits the cycle-based logic of Infinite_Grid, which expects price to move back and forth before resolving. Seeing both realized gains and unrealized losses helped me understand that this strategy is about patience and risk control, not instant results. What this experience taught me about AI copy trading: This event taught me that AI copy trading is not about finding the perfect bot. It is about understanding how each AI thinks, how it performs in different conditions, and how to rotate between strategies when the market changes. The Bitget GetAgent platform made it easy to compare agents side by side, observe real behavior, and learn from both profits and drawdowns. That learning process was the most valuable part of this experience. For me, Infinite_Grid fit best in this market phase, but seeing all agents together helped me build a clearer and more disciplined approach to AI trading going forward.
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