𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸

1.3K posts

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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸

𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸

@mfebriyanto2357

Free tokens enthusiast 💸 Tracking every alpha, hunting airdrops nonstop.

Katılım Eylül 2020
1.7K Takip Edilen328 Takipçiler
𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸 retweetledi
nGRND_io
nGRND_io@nGRND_io·
$160B+ worth of gold has been sitting in the ground, inaccessible to investors. That’s beginning to change. As real-world assets move on-chain, natural wealth is becoming more accessible to digital markets. nGRND is building a new paradigm at the centre of that shift.
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
Most markets create value by extracting it. nGRND challenges that assumption with in-ground gold exposure on-chain. Preservation becomes the new mechanism of value creation. @nGRND_io
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
Sustainable ecosystems are rarely the result of attention spikes or incentive dependency alone. They emerge when interaction becomes habitual enough to dissolve into daily life, and @sleepagotchi aligns closely with that long-term behavioral structure.
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Sleepagotchi 💤🦖
Sleepagotchi 💤🦖@sleepagotchi·
Your habits already tell a story. We’re building an intelligence layer around the patterns, habits, and signals that shape how you feel every day - powered by AI, wearables, and user-owned data. More soon 🌙
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
Liquidity is only validated when synchronized exits collide with real settlement stress. @FX_Capital3 scales incentive-driven participation beyond tested liquidity resilience thresholds. Risk emerges when inflow velocity persistently exceeds genuine absorption capacity.
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
@heyaura approaches wallet design through continuity preservation instead of interface complexity. When awareness and execution remain aligned in a single environment, workflow fragmentation declines significantly. That alignment improves clarity and operational efficiency.
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
When execution allows multiple valid outcomes, correctness becomes conditional on context and timing. @aeredium eliminates that condition entirely — one input always converges to one invariant state everywhere. Determinism becomes structural, not situational.
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸 retweetledi
Elon Musk
Elon Musk@elonmusk·
Grok Voice is #1!
Artificial Analysis@ArtificialAnlys

Announcing agentic performance benchmarking for Speech to Speech models on Artificial Analysis. We use 𝜏-Voice to measure tool calling and customer interaction voice agent capabilities in realistic customer service scenarios Even the strongest Speech to Speech (S2S) models today resolve only about half of realistic customer service scenarios end-to-end - a meaningful gap relative to frontier text-based agents on the same tasks. Voice channels introduce significant complexity: challenging accents, background noise, and packet loss, all while requiring fast responses, consistency across long multi-turn conversations, and reliable tool use. Performance also varies considerably by audio condition: in clean audio some models perform notably better, but realistic conditions continue to pose a challenge. Conversation duration also varies meaningfully across models, with implications for both customer experience and operational cost. About 𝜏-Voice: Our Agentic Performance benchmark is based on 𝜏-Voice (Ray, Dhandhania, Barres & Narasimhan, 2026), which extends 𝜏²-bench into the voice modality to evaluate S2S models on realistic customer service tasks. It measures multi-turn instruction following, support of a simulated customer through a complete interaction, and tool use against simulated customer service systems. The simulated user combines an LLM-driven decision model with realistic audio synthesis: diverse accents, background noise, and packet loss modelled on real network conditions. This complements our Big Bench Audio benchmark measuring intelligence and Conversational Dynamics (Full Duplex Bench subset) benchmark measuring conversational naturalness. Scores are the average of three independent pass@1 trials. We evaluate under realistic audio conditions using the 𝜏²-bench base task split across three domains: ➤ Airline (50 scenarios): e.g., changing a flight, rebooking under policy constraints ➤ Retail (114 scenarios): e.g., disputing a charge, processing a return ➤ Telecom (114 scenarios): e.g., resolving a billing issue, troubleshooting a service problem Task success is determined by deterministic checks against expected actions and final database state, consistent with the 𝜏²-bench evaluator. Key results: xAI's Grok Voice Think Fast 1.0 is the clear leader at 52.1%, averaging 5.6 minutes per conversation, the second-longest overall. OpenAI's GPT-Realtime-2 (High) (39.8%, 3.0 min) and GPT-Realtime-1.5 (38.8%, 4.8 min) follow, with Gemini 3.1 Flash Live Preview - High close behind at 37.7% (3.8 min). Speech to Speech is a fast evolving modality and we expect movement in rankings as we continue to add new models with these capabilities, and model robustness improves. Congratulations @xAI @elonmusk! See below for further detail ⬇️

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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
The real inefficiency in finance isn’t throughput—it’s reinterpretation. Every system boundary that reprocesses intent expands distance between “decide” and “done.” @MovitOn_P2P preserves intent integrity from initiation to settlement without procedural dilution.
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
When every system rewards optimization, behavior stops revealing conviction and starts revealing strategy under incentive pressure. @quipnetwork separates authentic participation from mechanically generated engagement.
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
Speed is abundant. Deterministic allocation is scarce. Networks only reveal their real architecture when flows compete for the same constrained execution window. @dtelecom prices access directly—so resolution emerges from signal, not randomness.
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
The strength of @konnex_world lies in its recursive feedback architecture. Ingest converts stronger inputs into stronger models, and stronger models naturally attract higher-quality participation over time. That’s protocol-native compounding. $KNX
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dTelecom
dTelecom@dtelecom·
Origin IDs are your boost on the way to a $2.6M airdrop. They are the first on-chain footprint within the network, reflecting early participation and granting PRO access on @dMeetApp Claim your early access to the next big shift.
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
Many platforms still rely on explicit engagement loops to maintain daily relevance. @sleepagotchi feels more evolved because it operates inside existing routines, turning interaction into a background behavioral layer rather than a consciously initiated action.
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
Operational integrity is measured at exit, never onboarding. @FX_Capital3 optimizes engagement throughput through incentive-aligned mechanics. Constraint: whether liquidity depth scales proportionally with aggregate redemption stress.
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FXCapital 3
FXCapital 3@FX_Capital3·
Not every prop firm actually wants you to profit. Trailing drawdowns that move against you mid-trade. News bans on your best setups. Consistency rules buried where you won't find them. In reality, most prop firms want you to lose. Not us.
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𝓜𝓮𝓻𝓲𝓨𝓪𝓷𝓽𝓸
@heyaura reflects the evolution toward execution-native wallet systems. Reducing the distance between insight and action lowers cognitive overhead and coordination cost across workflows. The experience becomes more natural, coherent, and operationally efficient.
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