What is the philosophy of The rise of cryptocurrency

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What is the philosophy of The rise of cryptocurrency

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The Philosophy of the Rise of Cryptocurrency

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Brief framing: Cryptocurrency’s rise is not just a tech story; it expresses a cluster of philosophical ideas about money, authority, trust, freedom, and social order. Below are the main philosophical themes and tensions it brings to the fore. 1. Trust and decentralization - Claim: Replace centralized intermediaries with cryptographic protocols and distributed consensus so that social coordination depends less on institutions and more on code. - Tension: “Trustless” systems still require social trust (developers, miners, exchanges). - Key source: Satoshi Nakamoto, “Bitcoin: A Peer-to-Peer Electronic Cash System” (2008). 2. Sovereignty and individual autonomy - Claim: Financial self-sovereignty — individuals control keys and value without third-party approval — fits libertarian and autonomy ethics. - Tension: Key custody, scams, and private infrastructure often reintroduce dependence. - See: Hayek, Denationalisation of Money (1976); libertarian influences in early crypto culture. 3. Money, value, and property - Claim: Crypto forces a rethinking of what money is (code + consensus) and how property rights are defined (tokenized, programmable). - Tension: Value often driven by narrative and speculation, raising questions about intrinsic vs. convention-based value. - Relevant: Saifedean Ammous, The Bitcoin Standard (2018); economic literature on money theory. 4. Cryptoeconomics and incentive design - Claim: Economic incentives built into protocols (mining rewards, tokenomics) are governance tools; code is law in a material sense. - Tension: Mis-specified incentives produce perverse outcomes (centralization, rent extraction). - See: Nick Szabo on smart contracts; Vitalik Buterin on token design. 5. Governance, law, and legitimacy - Claim: Decentralized networks challenge traditional legal authority and ask what kinds of governance can be encoded vs. democratically deliberated. - Tension: Hard forks, off-chain governance, and regulatory responses show persistent need for institutions. - Source: De Filippi & Wright, Blockchain and the Law (2018). 6. Privacy, surveillance, and the panopticon - Claim: Crypto promises pseudonymous or privacy-preserving transactions; some designs counter surveillance capitalism and state oversight. - Tension: Many chains are transparent; privacy coins raise legal and ethical concerns. - See debates around privacy coins and ledger transparency. 7. Utopian technocracy vs. market ideology - Claim: Two recurring narratives — techno-utopian emancipation through code, and market-driven libertarianism that reduces state roles. - Tension: Both can enable exclusion, capture by elites, or corporate appropriation of open ideals. - Cultural analyses: Vigna & Casey, The Age of Cryptocurrency (2015). 8. Epistemic authority and truth production - Claim: Public ledgers create immutable records and new authorities for historical facts (who owns what, when). - Tension: “Immutable” records can encode mistakes, crimes, or falsehoods that are hard to correct; oracle/trust problems remain. - See literature on oracles and on-chain/off-chain epistemology. 9. Ethics, inclusion, and distributional effects - Claim: Crypto advocates argue for financial inclusion and censorship resistance for the unbanked. - Tension: Market volatility, scams, and token concentration often widen inequality; environmental costs raise moral concerns. - References: studies on crypto inequality and environmental impact (e.g., energy consumption critiques). 10. Open questions and future philosophy - How should democratic values shape protocol design? When does code supersede law? Can public goods and common-pool resources be governed by crypto without reproducing exclusion? - These are active debates at the intersection of political philosophy, ethics, and technology studies. Short conclusion: Cryptocurrency is a practical instantiation of philosophical debates about authority, value, and freedom. It amplifies longstanding questions (What is money? Who should decide?) while creating new ones about how social order is encoded in technology. Selected references - Nakamoto, S. (2008). Bitcoin: A Peer-to-Peer Electronic Cash System. https://bitcoin.org/bitcoin.pdf - Hayek, F. A. (1976). Denationalisation of Money. - Vigna, P., & Casey, M. J. (2015). The Age of Cryptocurrency. - De Filippi, P., & Wright, A. (2018). Blockchain and the Law. - Szabo, N. (1997). Smart Contracts. - Ammous, S. (2018). The Bitcoin Standard. - On energy/impact debates: academic and journalistic critiques (e.g., De Vries; Cambridge Bitcoin Electricity Consumption Index). If you’d like, I can expand any of these bullets into a short essay or supply further reading on a particular theme (governance, ethics, money theory, etc.).

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Explain: Tension: Mis-specified incentives produce perverse outcomes (centralization, rent extraction).

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Can you go into more depth on this topic. I would like a greater understanding and more specifc information. Return a longer response.

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How Mis‑Specified Crypto Incentives Produce Perverse Outcomes (Centralization, Rent Extraction, and Beyond)

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Introduction Cryptoeconomic design—how rewards, penalties, and token distributions are set—is meant to align individual behavior with a protocol’s collective goals (security, decentralization, useful services). When incentives are mis‑specified, however, rational actors respond in ways that can undermine those goals. Below I unpack the mechanisms, give concrete examples from the crypto ecosystem, sketch theoretical frames, and outline mitigation strategies and trade‑offs. 1) What “mis‑specified incentives” means - A protocol specifies payoffs (who gets rewards, who pays penalties). If these payoffs reward short‑term profit, scale, or asymmetric informational/control advantages, actors will pursue those paths—even if they harm decentralization, fairness, or long‑term viability. - Common failure modes: rent‑seeking, concentration of power, collusion, front‑running, system gaming, and socially harmful externalities. 2) Mechanisms that produce perverse outcomes - Economies of scale: rewards that scale sublinearly with cost can favor large operators (mining farms, validator pools). - Winner‑takes‑most network effects: more liquid markets, larger staking pools, or popular exchanges attract more users, reinforcing concentration. - Principal–agent problems: token holders delegate governance but have low participation, enabling delegates or major holders to act in their own interest. - Information asymmetries and capture: insiders (devs, VCs) or sophisticated actors exploit superior knowledge or tooling (bots, private relays). - Externalities and public goods underprovision: private incentives ignore social costs (energy use, systemic risk). - Single points of failure created by optimizations (e.g., centralized custodial infrastructure because it’s convenient). 3) Concrete examples - Mining centralization (Bitcoin): ASICs + geography + cheap electricity produced large mining pools and farms. GHash.io briefly approached a >50% pool in 2014, raising 51% attack fears. See Eyal & Sirer (2014) on strategic mining incentives. Gencer et al. (2018) document centralization trends in PoW networks. - Mining pools and delegated validation (PoS): both PoW mining pools and PoS staking services aggregate power and concentrate control; large pools can censor or coordinate behavior. - 51% and majority attacks: where attackers control consensus and can double‑spend or censor transactions (historic examples on smaller PoW chains). - MEV (Maximal Extractable Value): miners/validators can reorder/extract value from transactions (front‑running, sandwich attacks). MEV led to private transaction relays and extractive bidding; Daian et al. “Flash Boys 2.0” (2019) documents these dynamics. - Oracle manipulation & leveraged DeFi exploits: bZx (2020) and other protocols were exploited via price‑oracle manipulation and flash loans because incentives enabled easy, profitable manipulation. - Token distribution and governance capture: ICO-era token allocations often left founders/VCs with large holdings and early liquidity, enabling plutocratic governance and insider selling. Low voter turnout makes governance decisions susceptible to vote buying. - Rug pulls & liquidity mining pathologies: anonymous teams issue tokens, incentivize liquidity through yield farming, then exit‑scam; or reward structures prioritize short‑term TVL (total value locked) rather than protocol health. - Environmental externalities: PoW mining’s incentives push operators toward cheapest energy, often fossil fuel–intensive localities; the private incentive to mine ignores climate costs (De Vries; CBECI). 4) Theoretical lenses - Game theory: Nash equilibria can be socially suboptimal when individual incentives diverge from collective goods (Prisoner’s Dilemma / tragedy of the commons). - Rent‑seeking theory: actors expend resources to capture existing wealth (e.g., extract MEV, arbitrage) rather than create value. - Principal–agent and collective action problems: dispersed token holders lack coordination capability to police or guide large stakeholders. 5) Mitigation strategies and design patterns These are not silver bullets; each carries trade‑offs. Protocol design - Careful tokenomics: capped founder allocations, vesting schedules, time‑locked tokens, gradual issuance to avoid early capture. - Staking/validator limits: caps on per‑validator stake, identity/uniqueness mechanisms, or protocol incentives that penalize overconcentration. - ASIC resistance (or not): PoW chains sometimes tweak algorithms to reduce ASIC advantage (e.g., Monero), but ASIC resistance often provokes an arms race and reduces efficiency. - Hybrid consensus & randomness: combining committees, random selection, or rotation to limit persistent centralization. Governance & participation - Encourage broad participation: quadratic voting/funding, conviction voting, or mechanisms that give more voice to diverse stakeholders. - Anti‑vote‑buying: lockups, reputation weighting, or delegation limits can reduce plutocratic capture. Technical countermeasures - MEV mitigation: encrypted/padding transactions, fair ordering protocols, batch auctions, or private transaction submission infrastructures (e.g., Flashbots, proposer-builder separation). - Oracle decentralization: use medianizing oracles, multiple data sources, time‑weighted averages, and economic guarantees to reduce single‑point manipulation. - Formal verification, audits, and bug bounties to reduce exploit risk and misaligned contract incentives. Economic & social measures - Progressive token distributions: airdrops to early users/community, retroactive public goods funding, and grants to align incentives with public benefit. - Regulatory guardrails: disclosure requirements, custody rules, and anti‑fraud enforcement can limit scams and excessive concentration. 6) Trade‑offs and normative considerations - Decentralization vs efficiency: measures that enforce egalitarian stake distributions can reduce performance or security economics. - Incentive robustness vs complexity: richer mechanisms (quadratic voting, threshold encryption) increase complexity and UX friction; complexity introduces new attack surfaces. - Permissionless ideals vs governance necessity: complete permissionlessness facilitates innovation but makes coordination and accountability hard; some institutionalization often emerges (exchanges, foundations). 7) Practical heuristics for designers and communities - Model adversaries: assume rational, profit‑maximizing actors will game any reward. - Simulate at scale: stress‑test tokenomics and governance under plausible attacker coalitions. - Iterate and decentralize gradually: start with safe defaults, reduce privileged control over time (progressive decentralization). - Monitor concentration metrics: staking distribution, pool shares, token Gini, MEV flows. - Build remediation paths: upgradeability, emergency brakes, and community processes for genuine crises (but avoid creating single governance kings). Conclusion Mis‑specified incentives are not merely a technical bug; they reshuffle power and economic flows in real social systems. Carefully designed cryptoeconomics can reduce—but not eliminate—centralization and rent extraction. The hard lesson of crypto’s history is that incentives that look elegant on paper often interact with human behavior, organizational tactics, and market pressures in ways that produce concentrated power and perverse extractions unless those interactions are explicitly anticipated and governed. Selected references and further reading - Nakamoto, S. (2008). Bitcoin: A Peer‑to‑Peer Electronic Cash System. https://bitcoin.org/bitcoin.pdf - Eyal, I., & Sirer, E. G. (2014). Majority is not enough: Bitcoin mining is vulnerable. https://arxiv.org/abs/1311.0243 - Gencer, A. E., et al. (2018). Decentralization in Bitcoin and Ethereum networks. https://arxiv.org/abs/1801.03998 - Daian, P., et al. (2019). Flash Boys 2.0: Frontrunning, Transaction Reordering, and Consensus Instability in Decentralized Exchanges. https://arxiv.org/abs/1904.05234 - “The DAO” hack and Ethereum fork (2016) — historical case study. - bZx postmortems (2020) — examples of oracle exploits in DeFi. - De Filippi, P., & Wright, A. (2018). Blockchain and the Law. - De Vries, A. (various) and Cambridge Bitcoin Electricity Consumption Index for energy debates. If you want, I can: - Model a specific tokenomics example and show how incentives lead to concentration; - Summarize one of the above case studies (e.g., bZx or The DAO) step‑by‑step; - Draft a checklist for designing less‑extractive token incentives. Which would be most useful?

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Give Examples

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How Mis‑Specified Crypto Incentives Produce Perverse Outcomes (Centralization, Rent Extraction, and Concrete Examples)

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Introduction (short) Cryptoeconomics tries to align individual payoffs with protocol goals. When the payoff structure is poorly designed or ignores strategic responses, rational actors exploit opportunities that increase private gain while undermining security, decentralization, fairness, or social welfare. Below I explain the mechanisms, give concrete cases from crypto, and summarize mitigations and trade‑offs. How mis‑specified incentives work (mechanisms) - Economies of scale: If rewards grow less than costs (or grow faster than costs) in ways that favor large players, incumbents scale up (e.g., large miners, validator operators). - Information asymmetry and positional advantage: Actors with faster access to information or ordering (low-latency miners, bots) capture value (front‑running, MEV). - Externalities and off‑chain costs: Protocols that ignore externalities (energy, congestion) push costs onto third parties or society. - Governance capture: Token distributions that concentrate voting power let large holders extract rents or block reforms. - Short‑termism and speculative incentives: High immediate yields (liquidity mining) attract opportunistic actors who abandon the protocol when rewards fall. - Oracle/bridge vulnerability: Protocols that rely on manipulable inputs create arbitrage opportunities for attackers (flash loans, oracle manipulation). Concrete examples 1) Mining pool centralization (Bitcoin) - What happened: ASIC specialization and reward schemes led to large mining pools (e.g., Antpool, F2Pool) gaining dominant shares at times. - Why it’s a mis‑specification outcome: Proof‑of‑Work rewards and variance reduction via pooling incentivize miners to join large pools for steadier income, concentrating hash power and increasing counterparty risk and potential censorship vectors. - Reference: Nakamoto (2008) and later empirical analyses of pool concentration (see Cambridge Bitcoin Electricity Consumption / mining reports). 2) Validator/staking concentration and liquid staking (Proof‑of‑Stake) - What happened: Liquid‑staking services (e.g., Lido) aggregated stakes and at times controlled a large fraction of staked ETH. Large validators also run multiple nodes. - Why it’s a mis‑specification outcome: Staking rewards + convenience (liquidity tokens) favor large, trusted operators, recreating intermediaries and increasing single‑point governance risk. - Trade‑offs: Convenience and composability vs. decentralization. - Source: Lido stats and discussions in the Ethereum community. 3) MEV, front‑running and sandwich attacks - What happened: Searchers and miners/validators extract Miner/Maximal Extractable Value (MEV) by reordering, front‑running, or sandwiching transactions on DEXs. Users pay higher fees or suffer worse execution. - Why it’s a mis‑specification outcome: Public mempools and first‑come transaction ordering create positional rents; simple fee rules don’t prevent extraction. - Example study: “Flash Boys 2.0: Frontrunning, Transaction Reordering, and Consensus Instability in Decentralized Exchanges” (Daian et al., 2019). Flashbots is a mitigation architecture that emerged in response. 4) Oracle manipulation & flash‑loan attacks (bZx) - What happened: In 2020, bZx suffered multiple exploits where attackers used flash loans to manipulate on‑chain price oracles and extract large profits. - Why it’s a mis‑specification outcome: Reliance on single or easily manipulable price feeds and reward structures that allowed profit from temporary price distortion. - Lesson: Protocols must design robust oracle incentives/aggregation, or accept the risk of manipulation. 5) Yield farming and token distribution capture (COMP, various DeFi projects) - What happened: COMP token airdrops and liquidity mining (summer 2020) created massive short‑term flows. Whales and bots captured disproportionate rewards; many liquidity providers left when incentives stopped. - Why it’s a mis‑specification outcome: High instantaneous rewards without durable alignment encourage rent‑seeking and transient participation rather than long‑term contributors. - Result: Cycle of volatility, concentrated holdings, and governance power in the hands of early large recipients. 6) Rug pulls and founder extraction - What happened: Token creators retain private keys and privileged controls and sometimes dump tokens or drain liquidity (rug pulls). - Why it’s a mis‑specification outcome: Granting too much unilateral power (no multisig, no vesting, no transparency) leaves incentives for founders to extract value immediately. - Mitigations include multisigs, timelocks, audited contracts, and vesting. 7) Governance capture and vote selling - What happened: Governance tokens can be bought to sway protocol votes (e.g., large holders opposing proposals they don’t like), or used to extract bribes. - Why it’s a mis‑specification outcome: One‑token‑one‑vote and liquid markets for tokens make governance susceptible to rent‑seeking and short‑term captures. Quadratic voting or reputation systems are proposed alternatives, each with trade‑offs. Why these outcomes are “rational” - Game theory: Given the payoff structure, the described strategies are Nash equilibriums—each actor maximizes utility given others’ actions. If the protocol designer ignores equilibrium responses, undesirable equilibria emerge. - Principal–agent and mechanism design: Designers (principals) must anticipate opportunistic agents who optimize for private return, not protocol health. Mitigations and trade‑offs - Design better reward curves: diminishing returns to single actors, caps on effective stake, or progressive bonding that discourages outsized pools. Trade‑off: may reduce efficiency and increase complexity. - Anti‑sybil and fair distribution: identity systems, quadratic funding, vesting, narrower founder allocations. Trade‑off: friction, privacy invasion, and potential for exclusion. - Improve oracle design: decentralized aggregation, time‑weighted averages, economic incentives for honest reporting. Trade‑off: latency and reduced responsiveness. - MEV mitigation: private transaction pools, auction mechanisms (Flashbots), sealed‑bid ordering, or privacy layers. Trade‑off: complexity and partial centralization. - Governance hacks: multisig, timelocks, delegated or quadratic voting, reputation systems. Trade‑off: balanc­ing efficiency, decentralization, and resistance to bribery. - Transparency and audits: code audits, verifiable vesting, on‑chain attestations reduce rug‑pull risk but do not fully eliminate incentive misalignment. Practical takeaways - “Code is law” is only true when incentives align with social goals; otherwise, code becomes a rent‑extraction machine. - Expect rational actors to exploit any profitable asymmetry; robust protocol design must model strategic behavior and externalities, not just happy‑path usage. - Mitigations exist but always involve trade‑offs (efficiency vs. decentralization, privacy vs. anti‑sybil). Awareness of these trade‑offs is crucial for designers, users, and regulators. Further reading / sources - S. Nakamoto, Bitcoin: A Peer‑to‑Peer Electronic Cash System (2008). - Daian, P., et al., “Flash Boys 2.0: Frontrunning, Transaction Reordering, and Consensus Instability in Decentralized Exchanges” (2019). - Reports and post‑mortems on the bZx flash‑loan exploits (Feb 2020). - Discussions on MEV and Flashbots (flashbots.net). - De Filippi & Wright, Blockchain and the Law (2018) — governance and regulatory issues. - Empirical posts and dashboards on mining pool concentration and Lido staking statistics (public dashboards). If you want, I can: (a) write a short case study tracing one exploit step‑by‑step (e.g., a bZx attack or a sandwich attack on Uniswap), or (b) sketch a simple reward schedule that reduces validator concentration and show its pros/cons. Which would you prefer?

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Can you suggest ideas associated with this one or other people who have written about the topic.

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Authors, Ideas, and Readings on Mis‑Specified Crypto Incentives and Perverse Outcomes

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Below are clustered suggestions—key ideas to explore, thinkers who’ve written about them, and representative works. Each entry notes why it’s relevant to incentive failures (centralization, rent extraction, capture). 1. Mechanism design, game theory, and economic foundations - Leonid Hurwicz, Eric Maskin, Roger Myerson — foundational mechanism‑design theory (Nobel winners). Useful for formalizing incentive alignment and designing truthful mechanisms. - John Nash — game‑theoretic equilibria (why perverse equilibria persist). - Recommended reading: Maskin, E. “Mechanism Design: How to Implement Social Goals” (lecture notes); Myerson, R. “Game Theory” (textbook). 2. Rent‑seeking, public choice, and political economy - Gordon Tullock & James Buchanan — public choice and rent‑seeking theory (explains capture, lobbying, vote buying). - Mancur Olson — collective action and how concentrated interests capture public goods. - Why relevant: explains how token holders, validators, or incumbents organize to capture protocol rents. 3. Commons governance and polycentric institutions - Elinor Ostrom — governing the commons, institutional design for collective goods. - Why relevant: alternatives to pure market or code‑only governance; informs on on‑chain commons and funding public goods. - Recommended: Ostrom, E., Governing the Commons (1990). 4. Crypto‑native researchers and case studies - Ittay Eyal & Emin Gün Sirer — “Majority is not enough” (mining incentives, selfish mining). - Phil Daian et al. — “Flash Boys 2.0” (MEV, frontrunning). - Vitalik Buterin — essays on tokenomics, MEV, proposer‑builder separation (PBS), and progressive decentralization. - Nick Szabo — smart contracts and incentive framing (classic essays). - Primavera De Filippi & Aaron Wright — Blockchain and the Law (governance, legal tensions). 5. Empirical decentralization and systems research - Adem Efe Gencer et al. — measurements of decentralization in Bitcoin/Ethereum. - De Vries / Cambridge Bitcoin Electricity Consumption Index — energy/externality analyses. - Why relevant: quantifies concentration and environmental externalities. 6. Mechanisms for extraction and abuse (technical research) - Flashbots team — MEV research and mitigation (practical systems like Flashbots). - Research on oracle attacks, flash‑loans (postmortems for bZx, The DAO history). - Why relevant: concrete exploit mechanisms and mitigation prototypes. 7. Philosophical and normative critiques - Friedrich Hayek — Denationalisation of Money (monetary sovereignty and private money). - Contemporary critics and ethicists — analyses of inequality, surveillance, and environmental justice (journal articles; environmental ethics texts). - Why relevant: situates crypto incentives within broader moral/political theory. 8. Law, regulation, and institutional remedies - Coin Center (policy analysis), De Filippi & Wright (legal scholarship), academic law reviews on tokens, securities, and custody. - Why relevant: regulatory constraints change incentives (custodial requirements, disclosures). 9. Sociology of tech and cultural critique - Vigna & Casey — The Age of Cryptocurrency (cultural history). - Research on techno‑utopianism, hacker cultures, and the political economy of platforms (STS literature). - Why relevant: explains how narratives shape design choices and adoption. 10. Design-oriented and interdisciplinary proposals - Quadratic voting/funding (Buterin, Vitalik; Lalley et al.) for governance that resists plutocracy. - Progressive decentralization (start centralized, decentralize over time) — practical deployment strategy. - Identity/Sybil resistance proposals (BrightID, Idena) to reduce capture. - On‑chain public goods funding (Gitcoin, quadratic funding) and retroactive public goods funding (OPF proposals). Suggested short reading list (starter links) - Nakamoto, S. “Bitcoin: A Peer‑to‑Peer Electronic Cash System” (2008). https://bitcoin.org/bitcoin.pdf - Eyal & Sirer, “Majority is not enough” (2014). https://arxiv.org/abs/1311.0243 - Daian et al., “Flash Boys 2.0” (2019). https://arxiv.org/abs/1904.05234 - De Filippi & Wright, Blockchain and the Law (2018). - Ostrom, E., Governing the Commons (1990). - Vitalik Buterin — blog posts on MEV, tokenomics, PBS (vitalik.ca). How you might use these resources - For theory: read Maskin/Myerson + Ostrom to combine formal mechanism design with institutional practice. - For technical grounding: Eyal & Sirer, Daian et al., Flashbots research. - For normative framing: Hayek, Buchanan, and contemporary critiques on distribution and environment. - For policy: De Filippi & Wright and Coin Center analyses. If you want, I can: - Produce a targeted annotated bibliography (e.g., 10–15 items) tailored to governance, MEV, or oracle manipulation; or - Draft a short literature map linking specific incentive problems (e.g., MEV, staking concentration, rug pulls) to recommended readings and mitigation proposals. Which would you prefer?

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