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Harga Sonic (prev. FTM)

Harga Sonic (prev. FTM)S

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Bagaimana perasaan kamu tentang Sonic (prev. FTM) hari ini?

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Catatan: Informasi ini hanya untuk referensi.

Harga Sonic (prev. FTM) hari ini

Harga aktual Sonic (prev. FTM) adalah Rp8,076.09 per (S / IDR) hari ini dengan kapitalisasi pasar saat ini sebesar Rp23.26T IDR. Volume perdagangan 24 jam adalah Rp2.08T IDR. Harga S hingga IDR diperbarui secara real time. Sonic (prev. FTM) adalah -6.68% dalam 24 jam terakhir. Memiliki suplai yang beredar sebesar 2,880,000,000 .

Berapa harga tertinggi S?

S memiliki nilai tertinggi sepanjang masa (ATH) sebesar Rp16,987.45, tercatat pada 2025-01-04.

Berapa harga terendah S?

S memiliki nilai terendah sepanjang masa (ATL) sebesar Rp5,506.6, tercatat pada 2025-02-03.
Hitung profit Sonic (prev. FTM)

Prediksi harga Sonic (prev. FTM)

Berapa harga S di 2026?

Berdasarkan model prediksi kinerja harga historis S, harga S diproyeksikan akan mencapai Rp8,109.75 di 2026.

Berapa harga S di 2031?

Di tahun 2031, harga S diperkirakan akan mengalami perubahan sebesar +41.00%. Di akhir tahun 2031, harga S diproyeksikan mencapai Rp21,771.59, dengan ROI kumulatif sebesar +156.04%.

Riwayat harga Sonic (prev. FTM) (IDR)

Harga Sonic (prev. FTM) -37.88% selama setahun terakhir. Harga tertinggi S dalam IDR pada tahun lalu adalah Rp16,987.45 dan harga terendah S dalam IDR pada tahun lalu adalah Rp5,506.6.
WaktuPerubahan harga (%)Perubahan harga (%)Harga terendahHarga terendah {0} dalam periode waktu yang sesuai.Harga tertinggi Harga tertinggi
24h-6.68%Rp8,052.61Rp8,849.74
7d-5.33%Rp7,765.59Rp9,244.18
30d-29.51%Rp6,709.86Rp16,322.95
90d-40.64%Rp5,506.6Rp16,987.45
1y-37.88%Rp5,506.6Rp16,987.45
Sepanjang masa-36.72%Rp5,506.6(2025-02-03, 46 hari yang lalu )Rp16,987.45(2025-01-04, 76 hari yang lalu )

Informasi pasar Sonic (prev. FTM)

Riwayat kapitalisasi pasar Sonic (prev. FTM)

Kapitalisasi pasar
Rp23,259,148,801,630.69
Kapitalisasi pasar yang sepenuhnya terdilusi
Rp25,641,596,335,172.9
Peringkat pasar
Harga ICO
Rp660.14 Detail ICO
Beli Sonic (prev. FTM) sekarang

Pasar Sonic (prev. FTM)

  • #
  • Pasangan
  • Jenis
  • Harga
  • Volume 24j
  • Tindakan
  • 1
  • S/USDT
  • Spot
  • 0.4874
  • $1.49M
  • Trading
  • Kepemilikan Sonic (prev. FTM) berdasarkan konsentrasi

    Whale
    Investor
    Ritel

    Alamat Sonic (prev. FTM) berdasarkan waktu kepemilikan

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

    Peringkat Sonic (prev. FTM)

    Penilaian rata-rata dari komunitas
    4.6
    Peringkat 100
    Konten ini hanya untuk tujuan informasi.

    Data Sosial Sonic (prev. FTM)

    Dalam 24 jam terakhir, skor sentimen media sosial untuk Sonic (prev. FTM) adalah 3, dan sentimen media sosial terhadap tren harga Sonic (prev. FTM) adalah Bullish. Skor media sosial Sonic (prev. FTM) secara keseluruhan adalah 0, yang berada di peringkat 1832 di antara semua mata uang kripto.

    Menurut LunarCrush, dalam 24 jam terakhir, mata uang kripto disebutkan di media sosial sebanyak 1,058,120 kali, di mana Sonic (prev. FTM) disebutkan dengan rasio frekuensi 0%, berada di peringkat 1832 di antara semua mata uang kripto.

    Dalam 24 jam terakhir, terdapat total 18 pengguna unik yang membahas Sonic (prev. FTM), dengan total penyebutan Sonic (prev. FTM) sebanyak 1. Namun, dibandingkan dengan periode 24 jam sebelumnya, jumlah pengguna unik penurunan sebesar 22%, dan jumlah total penyebutan penurunan sebesar 83%.

    Di Twitter, ada total 0 cuitan yang menyebutkan Sonic (prev. FTM) dalam 24 jam terakhir. Di antaranya, 0% bullish terhadap Sonic (prev. FTM), 0% bearish terhadap Sonic (prev. FTM), dan 100% netral terhadap Sonic (prev. FTM).

    Di Reddit, terdapat 1 postingan yang menyebutkan Sonic (prev. FTM) dalam 24 jam terakhir. Dibandingkan dengan periode 24 jam sebelumnya, jumlah penyebutan penurunan sebesar 0% .

    Semua tinjauan sosial

    Sentimen rata-rata(24h)
    3
    Skor media sosial(24h)
    0(#1832)
    Kontributor sosial(24h)
    18
    -22%
    Penyebutan di media sosial(24h)
    1(#1832)
    -83%
    Dominasi di media sosial (24h)
    0%
    X
    Postingan X(24h)
    0
    0%
    Sentimen X (24h)
    Bullish
    0%
    Netral
    100%
    Bearish
    0%
    Reddit
    Skor Reddit(24h)
    0
    Postingan Reddit(24h)
    1
    0%
    Komentar Reddit(24h)
    0
    0%

    Cara Membeli Sonic (prev. FTM)(S)

    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.
    Konversi Sonic (prev. FTM) ke S

    Konversi Sonic (prev. FTM) ke S

    Gunakan beragam opsi pembayaran untuk membeli Sonic (prev. FTM) di Bitget. Kami akan menunjukkan caranya.

    Trading futures perpetual S

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

    Harga S saat ini adalah Rp8,076.09, dengan perubahan harga 24 jam sebesar -6.68%. Trader dapat meraih profit dengan mengambil posisi long atau short pada futures S.

    Panduan perdagangan futures S

    Bergabunglah di copy trading S dengan mengikuti elite trader.

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

    Berita Sonic (prev. FTM)

    Blockchain Cronos akan menerbitkan kembali 70 miliar token yang dibakar pada 2021 setelah pemungutan suara kontroversial disetujui
    Blockchain Cronos akan menerbitkan kembali 70 miliar token yang dibakar pada 2021 setelah pemungutan suara kontroversial disetujui

    Ringkasan Cepat Sebuah proposal tata kelola oleh Cronos untuk menerbitkan kembali 70 miliar token CRO, yang sebelumnya dibakar pada tahun 2021, telah disetujui. Persetujuan ini akan meningkatkan pasokan token CRO dari 30 miliar menjadi batas aslinya yaitu 100 miliar.

    The Block2025-03-18 10:45
    Pembaruan Sonic (prev. FTM) lainnya

    FAQ

    Berapa harga Sonic (prev. FTM) saat ini?

    Harga live Sonic (prev. FTM) adalah Rp8,076.09 per (S/IDR) dengan kapitalisasi pasar saat ini sebesar Rp23,259,148,801,630.69 IDR. Nilai Sonic (prev. FTM) sering mengalami fluktuasi karena aktivitas 24/7 yang terus-menerus di pasar kripto. Harga Sonic (prev. FTM) saat ini secara real-time dan data historisnya tersedia di Bitget.

    Berapa volume perdagangan 24 jam dari Sonic (prev. FTM)?

    Selama 24 jam terakhir, volume perdagangan Sonic (prev. FTM) adalah Rp2.08T.

    Berapa harga tertinggi sepanjang masa (ATH) dari Sonic (prev. FTM)?

    Harga tertinggi sepanjang masa dari Sonic (prev. FTM) adalah Rp16,987.45. Harga tertinggi sepanjang masa ini adalah harga tertinggi untuk Sonic (prev. FTM) sejak diluncurkan.

    Bisakah saya membeli Sonic (prev. FTM) di Bitget?

    Ya, Sonic (prev. FTM) saat ini tersedia di exchange tersentralisasi Bitget. Untuk petunjuk yang lebih detail, bacalah panduan Bagaimana cara membeli kami yang sangat membantu.

    Apakah saya bisa mendapatkan penghasilan tetap dari berinvestasi di Sonic (prev. FTM)?

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

    Di mana saya bisa membeli Sonic (prev. FTM) 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 Sonic (prev. FTM) (S)?

    Beli kripto di aplikasi Bitget
    Daftar dalam hitungan menit untuk membeli kripto melalui kartu kredit atau transfer bank.
    Download Bitget APP on Google PlayDownload Bitget APP on AppStore
    Trading di Bitget
    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 Sonic (prev. FTM) secara online melalui Bitget, tunduk pada risiko pasar. Bitget menyediakan cara yang mudah dan nyaman bagi kamu untuk membeli Sonic (prev. FTM), 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 Sonic (prev. FTM) kamu. Halaman ini dan informasi apa pun yang disertakan bukan merupakan dukungan terhadap mata uang kripto tertentu.

    Beli

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    S
    IDR
    1 S = 8,076.09 IDR
    Bitget menawarkan biaya transaksi terendah di antara semua platform perdagangan utama. Semakin tinggi level VIP kamu, semakin menguntungkan tarifnya.

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While democratizing text generation by AI, ChatGPT has enabled non-specialists to experience the power of large language models, also known as LLMs. From schoolchildren to professional engineers, everyone could ask questions, get summaries, create code, and generate content ideas through a natural language computing conversation. The impact in the professional world has been just as significant. Several companies quickly integrated these models into their products and workflows. OpenAI generated nearly 1 billion dollars in revenue in 2023, potentially reaching 3.7 billion in 2024. This ascent was supported by the development of AI APIs and commercial licenses. The formation of major partnerships, such as with Microsoft, allowed ChatGPT to be included in users’ daily routines (search engines, office suites), further amplifying its impact. GPT-3.5 was a true turning point. AI could now compose coherent text on demand. GPT-4, created at the beginning of 2023, affirmed the revolutionary aspect of the software by notably improving its reasoning capabilities and image comprehension. In record time, text-generative AI has transitioned from a laboratory curiosity to an essential consumer tool, both for less experienced users and for companies seeking automation. However, this meteoric rise has been called into question by the evolution of giant models. Indeed, major players in the web, such as Open AI and its competitors (Anthropic, Google, Meta, Grok in the United States, Mistral in France, Deepseek and Qwen in China) have worked to increase the power of their LLMs since 2024. Thus, new records of performance and intelligence have been established at the cost of significant efforts and massive expenses. Nevertheless, gains tend to plateau compared to the initial spectacular jumps. Indeed, according to “scaling laws”, each new advancement now requires an exponential increase in resources (model size, data used, computing power), which progressively limits the real progress margin of artificial intelligences. In fact, doubling the intelligence of a model would not merely double the initial cost but multiply it by ten or a hundred: it would require both more computing power and more training data. Where the transition from GPT-3 to GPT-4 brought significant improvements (with GPT-4 performing approximately 40% better than GPT-3.5 on certain standardized academic exams), OpenAI’s next model (codenamed Orion) is said to offer only minimal improvements over GPT-4, according to some sources. This dynamics of diminishing returns affects the entire sector: Google reportedly found that its Gemini 2.0 model does not meet expected goals, and Anthropic even temporarily paused the development of its main LLM to reassess its strategy. In short, the exhaustion of large high-quality training data corpora, as well as the unsustainable costs in computing power and energy needed to improve models, lead to a sort of technical ceiling, at least temporarily. The numbers confirm this on benchmarks. The multitask understanding scores (MMLU) of the best models converge: since 2023, almost all LLMs achieve similar performances on these tests, indicating we are approaching a plateau. Even much smaller open-source models are beginning to compete with the giants trained by billions of dollars in investments. The race for enormity of models is therefore showing its limits, and the giants of AI are changing strategies: Sam Altman (OpenAI) stated that the path to truly intelligent AI will likely no longer come from simply scaling LLMs, but rather from a creative use of existing models. In clear terms, it involves finding new approaches to gain intelligence without simply multiplying the size of neural networks. Certain techniques, such as Chain-of-Thought (or Tree-of-Thought), allow the model to generate a “reasoning” (often referred to as “thinking” models) before providing its answer, within which it can explore possibilities and realize its mistakes… This is the hallmark of models o1, o3 from OpenAI , R1 from Deepseek , and the „Think“ mode of Grok… This method offers remarkable intelligence gains, particularly in mathematical problems. However, it still comes at a cost: one of the major benchmarks for testing model intelligence is the ARC-AGI (“Abstract and Reasoning Corpus for Artificial General Intelligence”), published by François Chollet in 2019, which tests the intelligence of models on generalization tasks like the one below : This benchmark remained a challenge too difficult for the entirety of general models for a long time, taking 4 years to progress from 0 % completion with GPT-3 to 5 % with GPT-4o. But last December, OpenAI published the results of its range of o3 models, with a specialized model on ARC-AGI achieving 88 % completion : However, each problem incurs a cost of over $3,000 to execute (not counting training expenses), and takes over ten minutes. The limit of giant LLMs is now evident. Instead of accumulating billions of parameters for ever-smaller returns in intelligence, the AI industry now prefers to equip it with “arms and legs” to transition from simple text generation to concrete action. Now, AI no longer merely answers questions or generates content passively, but connects itself to databases, triggers APIs, and executes actions: conducting internet searches, writing code and executing it, booking a flight, making a call… It is clear that this new approach radically transforms our relationship with technology. This paradigm shift allows companies to rethink their workflows and use the power of LLMs to automate tedious and repetitive tasks. This modular approach focuses on interaction intelligence rather than brute parametric force. The real challenge now is to enable AI to collaborate with other systems to achieve tangible results. Several intelligent agents already illustrate the disruptive potential of this approach: Anthropic, creator of Claude, recently published a new standard, the Model Context Protocol (or MCP), which should ultimately allow connection between a compatible LLM and “servers” of tools chosen by the user. This approach has already garnered much attention in the community. Some, like Siddharth Ahuja (@sidahuj) on X (formerly Twitter), use it to connect Claude to Blender, the 3D modeling software, generating scenes just with queries : The arrival of these agents marks a decisive turning point in our interaction with AI. By allowing an artificial intelligence to take action, we witness a transformation of work methods. Companies integrating agents into their systems can automate complex processes, reduce delays, and improve operational accuracy, whether it’s about synthesizing vast volumes of information or driving complete applications. For professionals, the impact is immediate. An analyst can now delegate the research and compilation of information to Deep Research, freeing up time for strategic analysis. A developer, aided by v0, can turn an idea into reality in just a few minutes, while GitHub Copilot speeds up code production and reduces errors. The possibilities are already immense and continue to grow as new agents are created. Beyond the professional realm, these agents will also transform our daily lives, sliding into our personal tools and making services once reserved for experts accessible: it is now much easier to “photoshop” an image, generate code for a complex algorithm, or obtain a detailed report on a topic… Thus, the era of giant LLMs may be coming to an end, while the arrival of AI agents opens a new era of innovation. These agents – Deep Research, Manus, v0 by Vercel, GitHub Copilot, Cursor, Perplexity AI, and many others – seem to demonstrate that the true value of AI lies in its ability to orchestrate multiple tools to accomplish complex tasks, save time, and transform our workflows. But beyond these concrete successes, one question remains: what does the future of AI hold for us? What innovations can we expect? Perhaps an even deeper integration with edge computing, or agents capable of learning in real time, or modular ecosystems allowing everyone to customize their digital assistant? What is certain is that we are still only at the beginning of this revolution, which may be the largest humanity will ever experience. And you, are you eager to discover Orion (GPT5), Claude 4, Llama 4, DeepHeek R2, and other disruptive innovations? Which tool from this future excites you the most?
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    Mata uang kripto populer
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    Baru ditambahkan
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    Di antara semua aset Bitget, 8 aset ini adalah yang paling mendekati kapitalisasi pasar Sonic (prev. FTM).