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Harga Drift

Harga DriftDRIFT

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Mata uang kuotasi:
USD

Bagaimana perasaan kamu tentang Drift hari ini?

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Catatan: Informasi ini hanya untuk referensi.

Harga Drift hari ini

Harga aktual Drift adalah $0.8726 per (DRIFT / USD) hari ini dengan kapitalisasi pasar saat ini sebesar $240.59M USD. Volume perdagangan 24 jam adalah $30.75M USD. Harga DRIFT hingga USD diperbarui secara real time. Drift adalah -7.71% dalam 24 jam terakhir. Memiliki suplai yang beredar sebesar 275,709,570 .

Berapa harga tertinggi DRIFT?

DRIFT memiliki nilai tertinggi sepanjang masa (ATH) sebesar $2.65, tercatat pada 2024-11-09.

Berapa harga terendah DRIFT?

DRIFT memiliki nilai terendah sepanjang masa (ATL) sebesar $0.1000, tercatat pada 2024-05-16.
Hitung profit Drift

Prediksi harga Drift

Kapan waktu yang tepat untuk membeli DRIFT? Haruskah saya beli atau jual DRIFT sekarang?

Ketika memutuskan apakah akan membeli atau menjual DRIFT, Anda harus terlebih dahulu mempertimbangkan strategi trading Anda sendiri. Aktivitas trading trader jangka panjang dan trader jangka pendek juga akan berbeda. Analisis teknikal DRIFT Bitget dapat memberi Anda referensi untuk trading.
Menurut Analisis teknikal 4J DRIFT, sinyal tradingnya adalah Kuat jual.
Menurut Analisis teknikal 1H DRIFT, sinyal tradingnya adalah Jual.
Menurut Analisis teknikal 1M DRIFT, sinyal tradingnya adalah Netral.

Berapa harga DRIFT di 2026?

Berdasarkan model prediksi kinerja harga historis DRIFT, harga DRIFT diproyeksikan akan mencapai $0.8963 di 2026.

Berapa harga DRIFT di 2031?

Di tahun 2031, harga DRIFT diperkirakan akan mengalami perubahan sebesar +42.00%. Di akhir tahun 2031, harga DRIFT diproyeksikan mencapai $2.24, dengan ROI kumulatif sebesar +137.42%.

Riwayat harga Drift (USD)

Harga Drift +774.01% selama setahun terakhir. Harga tertinggi DRIFT dalam USD pada tahun lalu adalah $2.65 dan harga terendah DRIFT dalam USD pada tahun lalu adalah $0.1000.
WaktuPerubahan harga (%)Perubahan harga (%)Harga terendahHarga terendah {0} dalam periode waktu yang sesuai.Harga tertinggi Harga tertinggi
24h-7.71%$0.8737$0.9348
7d-11.13%$0.8560$1.02
30d-32.45%$0.8560$1.47
90d+96.41%$0.3822$2.65
1y+774.01%$0.1000$2.65
Sepanjang masa+774.01%$0.1000(2024-05-16, 262 hari yang lalu )$2.65(2024-11-09, 85 hari yang lalu )

Informasi pasar Drift

Riwayat kapitalisasi pasar Drift

Kapitalisasi pasar
$240,591,541.49
Kapitalisasi pasar yang sepenuhnya terdilusi
$872,626,715.87
Peringkat pasar
Beli Drift sekarang

Pasar Drift

  • #
  • Pasangan
  • Jenis
  • Harga
  • Volume 24j
  • Tindakan
  • 1
  • DRIFT/USDT
  • Spot
  • 0.8758
  • $11.22M
  • Trading
  • Kepemilikan Drift berdasarkan konsentrasi

    Whale
    Investor
    Ritel

    Alamat Drift berdasarkan waktu kepemilikan

    Holder
    Cruiser
    Trader
    Grafik harga langsung coinInfo.name (12)
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    Peringkat Drift

    Penilaian rata-rata dari komunitas
    4.6
    Peringkat 101
    Konten ini hanya untuk tujuan informasi.

    Cara Membeli Drift(DRIFT)

    Buat Akun Bitget Gratis Kamu

    Buat Akun Bitget Gratis Kamu

    Daftar di Bitget dengan alamat email/nomor ponsel milikmu dan buat kata sandi yang kuat untuk mengamankan akunmu.
    Verifikasi Akun Kamu

    Verifikasi Akun Kamu

    Verifikasikan identitasmu dengan memasukkan informasi pribadi kamu dan mengunggah kartu identitas yang valid.
    Beli Drift (DRIFT)

    Beli Drift (DRIFT)

    Gunakan beragam opsi pembayaran untuk membeli Drift di Bitget. Kami akan menunjukkan caranya.

    Trading futures perpetual DRIFT

    Setelah berhasil mendaftar di Bitget dan membeli USDT atau token DRIFT, kamu bisa mulai trading derivatif, termasuk perdagangan futures dan margin DRIFT untuk meningkatkan penghasilanmu.

    Harga DRIFT saat ini adalah $0.8726, dengan perubahan harga 24 jam sebesar -7.71%. Trader dapat meraih profit dengan mengambil posisi long atau short pada futures DRIFT.

    Bergabunglah di copy trading DRIFT dengan mengikuti elite trader.

    Setelah mendaftar di Bitget dan berhasil membeli USDT atau token DRIFT, kamu juga bisa memulai copy trading dengan mengikuti elite trader.

    Berita Drift

    DRIFTUSDT akan diluncurkan untuk perdagangan futures dan bot trading
    DRIFTUSDT akan diluncurkan untuk perdagangan futures dan bot trading

    Bitget akan meluncurkan DRIFTUSDT untuk perdagangan futures dengan leverage maksimum 75, bersama dengan dukungan untuk bot perdagangan futures, pada tanggal 9 November 2024 (UTC+8). Coba perdagangan futures di situs web resmi kami (www.bitget.com) atau aplikasi Bitget sekarang. Futures perpetual US

    Bitget Announcement2024-11-08 14:41
    Pembaruan Drift lainnya

    Listing terbaru di Bitget

    Listing baru

    FAQ

    Berapa harga Drift saat ini?

    Harga live Drift adalah $0.87 per (DRIFT/USD) dengan kapitalisasi pasar saat ini sebesar $240,591,541.49 USD. Nilai Drift sering mengalami fluktuasi karena aktivitas 24/7 yang terus-menerus di pasar kripto. Harga Drift saat ini secara real-time dan data historisnya tersedia di Bitget.

    Berapa volume perdagangan 24 jam dari Drift?

    Selama 24 jam terakhir, volume perdagangan Drift adalah $30.75M.

    Berapa harga tertinggi sepanjang masa (ATH) dari Drift?

    Harga tertinggi sepanjang masa dari Drift adalah $2.65. Harga tertinggi sepanjang masa ini adalah harga tertinggi untuk Drift sejak diluncurkan.

    Bisakah saya membeli Drift di Bitget?

    Ya, Drift saat ini tersedia di exchange tersentralisasi Bitget. Untuk petunjuk yang lebih detail, bacalah panduan Bagaimana cara membeli Drift protocol kami yang sangat membantu.

    Apakah saya bisa mendapatkan penghasilan tetap dari berinvestasi di Drift?

    Tentu saja, Bitget menyediakan platform perdagangan strategis, dengan bot trading cerdas untuk mengotomatiskan perdagangan Anda dan memperoleh profit.

    Di mana saya bisa membeli Drift dengan biaya terendah?

    Dengan bangga kami umumkan bahwa platform perdagangan strategis kini telah tersedia di exchange Bitget. Bitget menawarkan biaya dan kedalaman perdagangan terdepan di industri untuk memastikan investasi yang menguntungkan bagi para trader.

    Di mana saya dapat membeli Drift (DRIFT)?

    Beli kripto di aplikasi Bitget
    Daftar dalam hitungan menit untuk membeli kripto melalui kartu kredit atau transfer bank.
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    Deposit mata uang kripto kamu ke Bitget dan nikmati likuiditas tinggi dan biaya perdagangan yang rendah.

    Bagian video — verifikasi cepat, trading cepat

    play cover
    Cara menyelesaikan verifikasi identitas di Bitget dan melindungi diri kamu dari penipuan
    1. Masuk ke akun Bitget kamu.
    2. Jika kamu baru mengenal Bitget, tonton tutorial kami tentang cara membuat akun.
    3. Arahkan kursor ke ikon profil kamu, klik "Belum diverifikasi", dan tekan "Verifikasi".
    4. Pilih negara atau wilayah penerbit dan jenis ID kamu, lalu ikuti petunjuknya.
    5. Pilih "Verifikasi Seluler" atau "PC" berdasarkan preferensimu.
    6. Masukkan detail kamu, kirimkan salinan kartu identitasmu, dan ambil foto selfie.
    7. Kirimkan pengajuanmu, dan voila, kamu telah menyelesaikan verifikasi identitas!
    Investasi mata uang kripto, termasuk membeli Drift secara online melalui Bitget, tunduk pada risiko pasar. Bitget menyediakan cara yang mudah dan nyaman bagi kamu untuk membeli Drift, dan kami berusaha sebaik mungkin untuk menginformasikan kepada pengguna kami secara lengkap tentang setiap mata uang kripto yang kami tawarkan di exchange. Namun, kami tidak bertanggung jawab atas hasil yang mungkin timbul dari pembelian Drift kamu. Halaman ini dan informasi apa pun yang disertakan bukan merupakan dukungan terhadap mata uang kripto tertentu.

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    DRIFT
    USD
    1 DRIFT = 0.8726 USD
    Bitget menawarkan biaya transaksi terendah di antara semua platform perdagangan utama. Semakin tinggi level VIP kamu, semakin menguntungkan tarifnya.
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    LUCI_11
    LUCI_11
    4h
    Bearish Signals: Indicators That $YULI May Decline Further Despite the potential for long-term growth, there are several bearish signals that could suggest $YULI may face further declines in its value. A thorough analysis of market trends, technical indicators, and macroeconomic factors is essential to understanding the risks that could hinder $YULI’s growth or lead to a sustained downtrend. 1. Weak or Declining Market Sentiment The cryptocurrency market is highly sentiment-driven. If the broader market experiences a bearish trend or heightened investor risk aversion, $YULI could be impacted negatively. If market sentiment turns pessimistic—driven by factors such as macroeconomic instability, regulatory concerns, or negative news about cryptocurrency in general—investors may begin selling off speculative assets like $YULI, causing further price declines. A prolonged market downtrend would reflect a lack of investor confidence, signaling potential continued losses for $YULI. 2. Low Trading Volume Trading volume is a key indicator of a cryptocurrency’s market health. A sharp decline in $YULI’s trading volume could be a sign of waning interest and decreasing liquidity. When trading volume drops significantly, it suggests a lack of demand for the asset, making it more vulnerable to large price swings with smaller trades. A decrease in volume might also mean that investors are holding off on buying, waiting for more favorable market conditions or higher adoption before re-entering. In such cases, the token’s price may continue to drift lower as market participation stagnates. 3. Deteriorating Technical Indicators Several technical indicators can signal bearish trends for $YULI: • Relative Strength Index (RSI) Below 30: An RSI below 30 signals that $YULI might be oversold, but prolonged low readings can indicate persistent weakness and the absence of buying pressure. A consistently low RSI suggests that the token is failing to recover and could continue downward. • Moving Average Crossovers: If the 50-day moving average (MA) crosses below the 200-day MA (a “death cross”), this is a classic bearish signal. This indicates that the token is in a downtrend, with sellers dominating the market. • MACD Divergence: A bearish divergence in the Moving Average Convergence Divergence (MACD) could also signal declining momentum for $YULI. When the MACD line crosses below the signal line, it indicates weakening momentum and the potential for further price declines. 4. Lack of Development or Innovation A stagnant or inactive development team can lead to declining investor confidence in $YULI’s future prospects. If the project fails to deliver on key milestones, releases, or new features, it could signal a lack of commitment or technological innovation. In an industry driven by constant advancement, the failure to improve or adapt will lead to a loss of market relevance. If $YULI’s team becomes complacent or fails to engage with the community, it could lose support, causing a long-term price decline. 5. Regulatory Concerns Tighter regulations in key markets or legal challenges could have a significant negative impact on $YULI. Regulatory scrutiny has been increasing across the cryptocurrency space, with many countries taking steps to implement stricter rules for digital assets. If $YULI faces regulatory hurdles, such as being classified as a security or subjected to additional taxes and restrictions, it could face increased pressure to comply or face penalties. A crackdown on meme tokens or DeFi projects in general would reduce investor confidence, leading to price declines. 6. Competitive Pressure The cryptocurrency market is saturated, with numerous competitors offering similar or superior services. If $YULI fails to differentiate itself from other tokens or cannot capture sufficient market share, it will struggle to maintain growth. Newer tokens with better technology, stronger ecosystems, or more compelling use cases could overshadow $YULI, causing its value to drop. Additionally, if larger projects such as Ethereum, Solana, or Cardano continue to innovate and capture attention, $YULI could lose relevance, particularly if it fails to expand its use cases or adopt new trends. 7. Negative Community Sentiment $YULI’s value is heavily influenced by its community. If the token loses support from its user base—whether due to dissatisfaction with the project’s direction, failure to meet expectations, or negative social media reactions—it could cause a sharp decline in demand. A loss of community engagement or a breakdown in trust could trigger a sell-off, leading to further declines in $YULI’s price. While $YULI may have growth potential, there are several bearish signals that investors should watch for. These include declining market sentiment, weakening technical indicators, low trading volume, regulatory uncertainty, and competitive threats. To avoid further declines, $YULI’s development team must address these challenges, maintain a strong community, and remain adaptable to market trends. If these issues persist, the token could face a continued downtrend, making it crucial for investors to carefully monitor its performance
    SOCIAL0.00%
    YULI0.00%
    BGUSER-SX0MCXKN
    BGUSER-SX0MCXKN
    2025/01/09 17:45
    Maitland of Al
    The term "Maitland" is not a widely recognized term in the field of Artificial Intelligence (AI). However, I can provide some information on the concept of "maintland" or "maintenance land" in the context of AI. In AI, maintenance land refers to the process of maintaining and updating AI systems to ensure they continue to function effectively and efficiently over time. This can include tasks such as: 1. _Data maintenance_: Ensuring that the data used to train and test AI models is accurate, complete, and up-to-date. 2. _Model maintenance_: Updating AI models to reflect changes in the underlying data or to improve their performance. 3. _Software maintenance_: Ensuring that the software used to deploy and manage AI systems is up-to-date and secure. 4. _Hardware maintenance_: Ensuring that the hardware used to support AI systems is functioning properly and is sufficient to meet the demands of the system. Importance of Maitland in AI The concept of maitland is important in AI because it ensures that AI systems continue to function effectively and efficiently over time. This can help to: 1. _Improve performance_: Regular maintenance can help to improve the performance of AI systems by ensuring that they are using the most up-to-date data and models. 2. _Reduce errors_: Maintenance can help to reduce errors and improve the accuracy of AI systems by ensuring that they are functioning correctly. 3. _Enhance security_: Maintenance can help to enhance the security of AI systems by ensuring that they are protected from cyber threats and that any vulnerabilities are patched. 4. _Increase trust_: Maintenance can help to increase trust in AI systems by ensuring that they are transparent, explainable, and fair. Challenges of Maitland in AI The challenges of maitland in AI include: 1. _Data quality_: Ensuring that the data used to train and test AI models is accurate, complete, and up-to-date can be a challenge. 2. _Model drift_: AI models can drift over time, which can affect their performance and accuracy. 3. _Software updates_: Ensuring that the software used to deploy and manage AI systems is up-to-date and secure can be a challenge. 4. _Hardware maintenance_: Ensuring that the hardware used to support AI systems is functioning properly and is sufficient to meet the demands of the system can be a challenge. Best Practices for Maitland in AI The best practices for maitland in AI include: 1. _Regular maintenance_: Regular maintenance is essential to ensure that AI systems continue to function effectively and efficiently over time. 2. _Data quality checks_: Data quality checks should be performed regularly to ensure that the data used to train and test AI models is accurate, complete, and up-to-date. 3. _Model monitoring_: AI models should be monitored regularly to ensure that they are performing as expected and to detect any drift or degradation. 4. _Software updates_: Software updates should be performed regularly to ensure that the software used to deploy and manage AI systems is up-to-date and secure. 5. _Hardware maintenance_: Hardware maintenance should be performed regularly to ensure that the hardware used to support AI systems is functioning properly and is sufficient to meet the demands of the system.$AL
    AL0.00%
    CYBER0.00%
    Crypto-Paris
    Crypto-Paris
    2024/12/27 14:52
    Deploying und Überwachung von Machine-Learning-Modellen Deploying 1. Integrieren des Modells in den
    Deploying und Überwachung von Machine-Learning-Modellen Deploying 1. Integrieren des Modells in den Workflow 2. Bereitstellung der Ergebnisse für Benutzer/Entwickler 3. Konfiguration der Modellumgebung Überwachung 1. *Modellleistung*: Überwachen von Genauigkeit und Leistung 2. *Data-Drift*: Erkennen von Datenveränderungen 3. *Modell-Degradation*: Überwachen der Modellleistung über die Zeit 4. *Benutzerfeedback*: Sammeln von Feedback für Verbesserungen Erfolgskriterien 1. *Modellleistung*: Erforderliche Genauigkeit und Leistung erreicht 2. *Benutzerzufriedenheit*: Benutzer zufrieden mit Ergebnissen 3. *Stabilität*: Modell bleibt stabil und funktioniert ordnungsgemäß Tools für Deploying und Überwachung 1. TensorFlow Serving 2. AWS SageMaker 3. Azure Machine Learning 4. Google Cloud AI Platform 5. Prometheus und Grafana für Überwachung Best Practices 1. Kontinuierliche Integration und -lieferung 2. Automatisierte Tests 3. regelmäßige Überwachung und Analyse 4. Dokumentation und Kommunikation 5. kontinuierliche Verbesserung und Optimierung
    CLOUD0.00%
    DRIFT0.00%
    Kylian-mbappe
    Kylian-mbappe
    2024/12/27 14:25
    Deploying und Überwachung von Machine-Learning-Modellen Deploying Das Deploying ist der letzte Schr
    Deploying und Überwachung von Machine-Learning-Modellen Deploying Das Deploying ist der letzte Schritt eines Data-Analytics-Projekts. Hier werden die Machine-Learning-Modelle in den tatsächlichen Workflow integriert und die Ergebnisse für Benutzer oder Entwickler zugänglich gemacht. Überwachung Nach dem Deploying wird die Leistung des Modells überwacht, um Veränderungen wie Data-Drift oder Modell-Degradation zu erkennen. Wenn alles ordnungsgemäß funktioniert, kann das Projekt als erfolgreich betrachtet werden. Schritte der Überwachung 1. *Modellleistung*: Überwachen der Modellleistung und -genauigkeit. 2. *Data-Drift*: Erkennen von Veränderungen in den Daten, die das Modell beeinflussen könnten. 3. *Modell-Degradation*: Überwachen der Modellleistung über die Zeit, um Degradation zu erkennen. 4. *Benutzerfeedback*: Sammeln von Feedback von Benutzern, um das Modell zu verbessern. Erfolgskriterien 1. *Modellleistung*: Das Modell erreicht die erforderliche Genauigkeit und Leistung. 2. *Benutzerzufriedenheit*: Die Benutzer sind mit den Ergebnissen des Modells zufrieden. 3. *Stabilität*: Das Modell bleibt stabil und funktioniert ordnungsgemäß über die Zeit.
    DRIFT0.00%
    Sanam_Baloch
    Sanam_Baloch
    2024/12/27 14:07
    The final stage of a data analytics project: deployment and monitoring. This is where the rubber meets the road, and the machine learning models are put into action. During this stage, the analysts integrate the models into the actual workflow, making the outcomes available to users or developers. This is a critical step, as it ensures that the insights and predictions generated by the models are actionable and can drive business decisions. Once the model is deployed, the analysts closely monitor its performance, watching for any changes that could impact its accuracy or effectiveness. This includes: 1. *Data drift*: Changes in the underlying data distribution that could affect the model's performance. 2. *Model degradation*: Decreases in the model's accuracy or performance over time. 3. *Concept drift*: Changes in the underlying relationships between variables that could impact the model's performance. By monitoring the model's performance and addressing any issues that arise, the analysts can ensure that the project remains successful and continues to deliver value to the organization. Some key activities during this stage include: 1. *Model serving*: Deploying the model in a production-ready environment. 2. *Monitoring and logging*: Tracking the model's performance and logging any issues or errors. 3. *Model maintenance*: Updating or retraining the model as needed to maintain its performance. 4. *Feedback loops*: Establishing processes to collect feedback from users or stakeholders and incorporating it into the model's development. By following these steps, analysts can ensure that their data analytics project is not only successful but also sustainable and adaptable to changing business needs.
    DRIFT0.00%

    Aset terkait

    Mata uang kripto populer
    Pilihan 8 mata uang kripto teratas berdasarkan kapitalisasi pasar.
    Kap. pasar yang sebanding
    Di antara semua aset Bitget, 8 aset ini adalah yang paling mendekati kapitalisasi pasar Drift.