From Gas Limit to Keyed Nonces: How to Understand the Next Stage of Ethereum's Scalability?

marsbit發佈於 2026-05-14更新於 2026-05-14

文章摘要

From Gas Limits to Keyed Nonces: Understanding the Next Phase of Ethereum Scalability This article explores how recent Ethereum developments focus on moving complexity away from end-users, wallets, and DApps to the protocol layer. It discusses the consensus around significantly increasing the Gas Limit to 200 million, a change aimed at reducing fees and improving network capacity. However, it emphasizes that this increase is part of a holistic approach that includes mechanisms like enshrined Proposer-Builder Separation (ePBS) and Block-Level Access Lists to manage state growth and maintain node decentralization. The piece also delves into Keyed Nonces (EIP-8250), a proposed upgrade to Ethereum's transaction ordering. It explains how moving from a single, linear nonce queue per account to multiple independent nonce domains ("channels") can enable parallel transaction streams for different use cases. This is particularly crucial for privacy protocols and smart wallets, reducing transaction conflicts and unlocking new design possibilities. Ultimately, the article argues that these technical upgrades—alongside native account abstraction and cross-L2 interoperability—are converging towards a singular goal: enhancing the overall user experience. This means making on-chain interactions smoother, safer, and more cohesive, with wallets serving as the critical interface translating complex protocol improvements into intuitive user actions.

Author: imToken

Objectively speaking, for some time now, many users' intuitive understanding of Ethereum has often not come from roadmap or developer meetings, but from specific on-chain operations.

For example, in recent years, what everyone has personally felt includes lower Gas during transfers, improved cross-chain interoperability experiences, and so on. This is precisely why Ethereum's scaling has never been a simple 'performance race' problem—for ordinary users, higher TPS, larger blocks, and more complex underlying architectures only make sense when they are truly translated into lower costs, smoother operations, and safer wallet experiences.

And recently, a series of new developments in Ethereum happen to point towards Ethereum's attempt to systematically shift the complexity that was previously borne by wallets, DApps, third-party relayers, and users themselves, forward to the protocol layer.

Among these are Keyed Nonces with Vitalik's involvement, the directional consensus formed around the 200 million Gas Limit floor in the Glamsterdam upgrade, and the series of subtle clues in the 2026 roadmap that continue to emphasize native account abstraction, cross-L2 interoperability, and L1 security strengthening.

I. Gas Limit Increased to 200 Million?

First, let's look at the most easily perceived point for users: Gas Limit.

As is well known, in the Ethereum network, every transaction (whether it's a transfer or a contract interaction) consumes a certain amount of Gas, and the Gas Limit capacity of each Ethereum block is fixed, meaning the number of 'slots' is limited: the more slots, the more 'passengers' can be transported in the same time period; the more slots are tight, people have to bid for the same seat, and Gas fees also rise.

Theoretically, expanding the block Gas limit would indeed directly and significantly improve the performance of the Ethereum mainnet. However, in the past, against the backdrop of significant developments in routes like L2, Ethereum has been relatively cautious and restrained about this. Most of the scaling pressure has been intentionally directed towards the L2 track.

Looking at the expansion curve of Ethereum's Gas Limit reveals that after the Ethereum network's Gas Limit first broke through 10 million from 8 million in September 2019, it wasn't until this year, over 7 years, that the Gas Limit increased from 8 million to 60 million. Especially, it truly entered the acceleration phase only in 2025—from 30 million to 36 million in February, increased again to 45 million in July, and upgraded to 60 million after the Fusaka upgrade in December.

It can be said that most of the expansion was squeezed into the year 2025. Of course, as we mentioned earlier, 2025 is also a crucial year in Ethereum's development history. The Fusaka upgrade, just 7 months after the May Pectra upgrade, proved that the EF, despite undergoing significant leadership changes, still has the ability to drive major updates. It also marked Ethereum's formal entry into an accelerated development rhythm of 'two hard forks per year' (See Extended Reading《Ethereum 2026: Interpreting EF's Latest Protocol Roadmap, Officially Entering the Era of 'Engineering Upgrades'?》).

Source: Etherscan

According to the Ethereum Foundation's Soldøgn Interop Recap released on May 2nd, over 100 core Ethereum contributors participated in an interoperability conference in Svalbard, Norway, focusing on the Glamsterdam upgrade. The key goals were to advance the multi-client implementation, testing, and parameter alignment for Glamsterdam. At the end of the conference, developers had formed a directional consensus around a 200 million Gas Limit after Glamsterdam.

This means that if subsequent processes go smoothly, the execution capacity of Ethereum L1 is expected to increase from the current approximately 60 million Gas Limit to a magnitude of 200 million. On a longer time scale, the Ethereum ecosystem's publicly discussable attitude towards Gas Limit has clearly become much more 'radical'. The EIP-9698 proposal even suggests 'increasing tenfold every two years', raising the Gas Limit to 3.6 billion by 2029, which is 50 times the current level.

However, it needs to be emphasized here that increasing the Gas Limit is not simply about making blocks bigger.

If it only roughly increases the computational capacity each block can hold, it might lower fees in the short term, but in the long run, it would burden nodes more heavily, cause state data inflation, and also mean it becomes more difficult for ordinary users to run nodes, ultimately weakening Ethereum's most core decentralized foundation.

Therefore, Glamsterdam's scaling approach is a combination punch:

  • ePBS (enshrined Proposer-Builder Separation) more clearly incorporates the block building and verification process into protocol rules, allowing validators to more securely handle larger blocks;
  • Block-Level Access Lists (BAL) pre-record the accounts and storage locations to be accessed during block execution, thereby supporting parallel disk reads, parallel transaction verification, and parallel state root calculation;
  • And EIP-8037 increases the cost of state creation-related operations to avoid excessive state growth after the Gas Limit is increased.

Ultimately, Ethereum doesn't just want to 'fit more transactions'; it's also thinking about how to not make node operation thresholds increasingly higher while fitting more transactions.

This is also the fundamental difference between Ethereum's scaling roadmap and many high-performance chain narratives. It has always pursued not sacrificing verification cost for superficial throughput, but rather increasing the mainnet's own carrying capacity while trying to maintain ordinary node participation and system verifiability.

II. Keyed Nonces: Turning 'One Queue' into 'Multiple Lanes'

If Gas Limit solves 'how much a block can hold', then Keyed Nonces focuses on another more detailed but crucial question: how should a transaction be queued?

As is well known, in Ethereum, a nonce can be simply understood as the 'sequence number' of an account's transaction. Its role is to prevent the same transaction from being executed repeatedly and to ensure transactions from the same account are processed in order.

This mechanism is easy to understand in ordinary transfer scenarios: it's the first transaction, second transaction, third transaction in sequence, queued one after another.

However, the problem is that when account capabilities become more complex, such as involving private transactions, smart wallets, session keys, batch operations, third-party payment, etc., a single linear nonce can become a bottleneck. Therefore, the core idea of Keyed Nonces, proposed in EIP-8250, is to change from an account having only one nonce queue to being able to have multiple nonce domains.

Specifically, it replaces the single sender nonce in EIP-8141 Frame Transaction with a (nonce_key, nonce_seq) structure, where nonce_key == 0 corresponds to the traditional account nonce, while non-zero keys can choose independent protocol-managed nonce sequences. Transactions under different keys are independent of each other, and replay protection does not interfere between them.

This sounds technical, but it can be understood with a life analogy: In the past, an account was like having only one window at a bank, all business had to queue in the same line; Keyed Nonces is like assigning different businesses to different windows. Transfers, private withdrawals, session authorizations, batch executions can each take their own lane.

This is especially important for privacy protocols because, to avoid directly binding users' on-chain activities to a single public address, privacy protocols might have multiple users initiate transactions through the same shared sender address. However, under a single nonce mechanism, once one user's transaction is packaged, it could cause other users' waiting transactions to become invalid or blocked.

Whereas Keyed Nonces allows each withdrawal to choose its own nonce domain, for example, derived from a privacy nullifier, reducing this queuing conflict from the protocol layer.

Vitalik's own positioning of it is even more ambitious. When introducing EIP-8250, he clearly stated that Keyed Nonces 'not only provides stronger support for protocol-layer privacy solutions, but may also be the first step in Ethereum's new state scaling strategy—by creating storage types specifically optimized for different use cases, achieving ultimate scalability while maintaining protocol decentralization.'

In other words, it can be simply understood as: Gas Limit solves the 'size of the block', while Keyed Nonces explores the 'shape of the state'—what Ethereum needs to carry in the future is not just more transactions, but more types of transactions.

III. How Will This Affect Ordinary Users?

For the Ethereum ecosystem, many protocol upgrades seem far from ordinary users, but ultimately they all land on the wallet experience.

Because the real entry point for users to interact with Ethereum is not EIPs, clients, or developer meetings, but every transfer, authorization, signature, cross-chain, and DApp interaction within the wallet. That is to say, changes at the protocol layer only truly complete the transformation from technical upgrade to user experience upgrade when they are translated into clearer, smoother, and safer operational experiences at the wallet layer.

For example, the now familiar account abstraction is not meant to make users understand more technical terms, but to allow users to more naturally use on-chain accounts in the future. Therefore, in recent years, batch transactions, Gas payment by others, recovery mechanisms, different signature methods, session authorizations, and more flexible security strategies have gradually become basic capabilities in wallets.

Similarly, taking Keyed Nonces as an example, it sounds like a very low-level optimization of the account queuing mechanism. But on the user side, its potential impact is not abstract. Because today, many users may have encountered similar scenarios during on-chain operations: a transaction is not confirmed for a long time, subsequent transactions get stuck; wanting to cancel or speed up a transaction but not understanding the relationship between nonce, Gas, and replacement transactions; especially during parallel multi-step operations, one failed step affects all subsequent processes.

For ordinary users, these problems seem like 'the wallet isn't easy to use' or 'the chain isn't easy to use'. But behind them is actually related to the design of the single linear nonce in the Ethereum account model. The direction represented by Keyed Nonces is to allow accounts to no longer have to execute all operations in order through one queue, but to split into multiple parallel lanes according to different usage scenarios.

In the future, ordinary transfers, DApp authorizations, private transactions, batch transactions, Gas payment by others, and other operations could theoretically have more independent execution spaces, reducing the probability of blocking and conflicts with each other.

This will undoubtedly further expand the design space for smart wallets.

More importantly, in the past, these capabilities often required the complexity to be shared among wallets, DApps, relay services, and users. Users needed to understand authorization scopes, judge whether Gas was reasonable, know exactly what they were signing, and repeatedly confirm in multi-step operations like cross-chain, swapping, staking, and claiming rewards. Any misunderstanding at any step could lead to operational failure and asset loss risk.

What Ethereum is now trying to do is to move part of this complexity forward to the protocol layer, allowing wallets to provide better interaction abstraction for users based on more standardized, more native underlying capabilities.

This is also why Gas Limit, BAL, ePBS, Keyed Nonces, Frame Transactions, native account abstraction, and cross-L2 interoperability, seemingly belonging to different technical modules, are actually all serving the same thing: enabling Ethereum to carry more complex on-chain usage scenarios without sacrificing decentralization and security.

Looking specifically, putting these dynamics together reveals that Ethereum's recent focus is not scattered:

  • Gas Limit increase addresses mainnet execution capacity and fee pressure;
  • BAL, ePBS, EIP-8037 address how to maintain node verifiability and controlled state growth during scaling;
  • Keyed Nonces and Frame Transactions address bottlenecks in account models, privacy protocols, and smart wallets at the protocol layer;
  • Native account abstraction and cross-L2 interoperability further point towards the experience improvements that ordinary users can truly feel.

This also means Ethereum is entering a new stage.

After all, in the past few years, the market paid more attention to L2 scaling, Blob fee reduction, and modular narratives. Users also gradually got used to transferring assets between different L2s and finding lower-cost interaction environments. However, as the mainnet Gas Limit continues to increase, upgrades like Glamsterdam progress, and account abstraction and interoperability solutions continue to evolve, the question Ethereum is answering is no longer just 'how to make transactions cheaper', but 'how to make the on-chain experience more like a whole'.

In this process, the importance of wallets will undoubtedly be further amplified.

Because wallets are not only the entry point for users into Ethereum, but also the interface through which protocol capabilities are truly understood and used by users. In the future, the more complex the underlying upgrades, the more they need to be translated by wallets into clearer signature prompts, more understandable transaction paths, more upfront risk identification, and smoother on-chain interaction experiences.

Let's encourage each other.

相關問答

QWhat is the core purpose of increasing the Gas Limit to 200 million in the context of the Glamsterdam upgrade, and what are the associated technical measures?

AThe core purpose is to significantly increase the execution capacity of the Ethereum mainnet, potentially lowering transaction fees for users in the short term. However, it is not a simple block size increase. To prevent negative long-term impacts like increased node burden and state data bloat, the Glamsterdam upgrade employs a combination of technical measures including ePBS (enshrined Proposer-Builder Separation) to securely handle larger blocks, Block-Level Access Lists (BAL) to enable parallel processing, and EIP-8037 to control the cost and growth of state creation operations.

QHow does the Keyed Nonces mechanism (EIP-8250) improve upon the traditional single linear nonce system in Ethereum?

AKeyed Nonces replaces the traditional single nonce queue for an account with multiple independent nonce domains, structured as (nonce_key, nonce_seq). A nonce_key of 0 corresponds to the traditional account nonce, while non-zero keys can manage independent nonce sequences. This allows different types of transactions (e.g., regular transfers, privacy transactions, session authorizations, batch operations) to proceed on separate, parallel channels without blocking or interfering with each other, thus solving bottlenecks for complex account scenarios involving privacy protocols, smart wallets, and third-party gas payment.

QAccording to the article, why is the wallet's role becoming increasingly important in Ethereum's evolving landscape?

AThe wallet is the primary interface through which users interact with Ethereum. As protocol-layer upgrades (like Gas Limit increases, Keyed Nonces, native account abstraction) introduce more complex underlying capabilities, the wallet's role is crucial in translating these technical advancements into clear, safe, and smooth user experiences. This includes providing clearer signature prompts, understandable transaction paths, proactive risk identification, and seamless cross-L2 interactions, thereby completing the transformation from technical upgrade to user experience upgrade.

QWhat fundamental distinction does the article highlight between Ethereum's scaling approach and that of other high-performance blockchains?

AThe article emphasizes that Ethereum's scaling approach fundamentally differs from many high-performance chain narratives. Ethereum does not pursue superficial throughput at the cost of verification costs or node decentralization. Instead, it aims to increase the mainnet's carrying capacity while striving to maintain accessibility for ordinary node operators and preserving the system's verifiability and security. This is a core principle behind its combined technical measures like ePBS and BAL alongside Gas Limit increases.

QWhat broader question is Ethereum now attempting to address, moving beyond just making transactions cheaper?

ABeyond simply making transactions cheaper, Ethereum is now focusing on answering the question of 'how to make the on-chain experience more like a cohesive whole.' This involves integrating improvements across execution capacity (Gas Limit), node verifiability (ePBS, BAL), account models (Keyed Nonces), and user experience (native account abstraction, cross-L2 interoperability) to create a more unified, seamless, and capable on-chain ecosystem for diverse and complex use cases.

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什麼是 $S$

什麼是 AGENT S

Agent S:Web3中自主互動的未來 介紹 在不斷演變的Web3和加密貨幣領域,創新不斷重新定義個人如何與數字平台互動。Agent S是一個開創性的項目,承諾通過其開放的代理框架徹底改變人機互動。Agent S旨在簡化複雜任務,為人工智能(AI)提供變革性的應用,鋪平自主互動的道路。本詳細探索將深入研究該項目的複雜性、其獨特特徵以及對加密貨幣領域的影響。 什麼是Agent S? Agent S是一個突破性的開放代理框架,專門設計用來解決計算機任務自動化中的三個基本挑戰: 獲取特定領域知識:該框架智能地從各種外部知識來源和內部經驗中學習。這種雙重方法使其能夠建立豐富的特定領域知識庫,提升其在任務執行中的表現。 長期任務規劃:Agent S採用經驗增強的分層規劃,這是一種戰略方法,可以有效地分解和執行複雜任務。此特徵顯著提升了其高效和有效地管理多個子任務的能力。 處理動態、不均勻的界面:該項目引入了代理-計算機界面(ACI),這是一種創新的解決方案,增強了代理和用戶之間的互動。利用多模態大型語言模型(MLLMs),Agent S能夠無縫導航和操作各種圖形用戶界面。 通過這些開創性特徵,Agent S提供了一個強大的框架,解決了自動化人機互動中涉及的複雜性,為AI及其他領域的無數應用奠定了基礎。 誰是Agent S的創建者? 儘管Agent S的概念根本上是創新的,但有關其創建者的具體信息仍然難以捉摸。創建者目前尚不清楚,這突顯了該項目的初期階段或戰略選擇將創始成員保密。無論是否匿名,重點仍然在於框架的能力和潛力。 誰是Agent S的投資者? 由於Agent S在加密生態系統中相對較新,關於其投資者和財務支持者的詳細信息並未明確記錄。缺乏對支持該項目的投資基礎或組織的公開見解,引發了對其資金結構和發展路線圖的質疑。了解其支持背景對於評估該項目的可持續性和潛在市場影響至關重要。 Agent S如何運作? Agent S的核心是尖端技術,使其能夠在多種環境中有效運作。其運營模型圍繞幾個關鍵特徵構建: 類人計算機互動:該框架提供先進的AI規劃,力求使與計算機的互動更加直觀。通過模仿人類在任務執行中的行為,承諾提升用戶體驗。 敘事記憶:用於利用高級經驗,Agent S利用敘事記憶來跟蹤任務歷史,從而增強其決策過程。 情節記憶:此特徵為用戶提供逐步指導,使框架能夠在任務展開時提供上下文支持。 支持OpenACI:Agent S能夠在本地運行,使用戶能夠控制其互動和工作流程,與Web3的去中心化理念相一致。 與外部API的輕鬆集成:其多功能性和與各種AI平台的兼容性確保了Agent S能夠無縫融入現有技術生態系統,成為開發者和組織的理想選擇。 這些功能共同促成了Agent S在加密領域的獨特地位,因為它以最小的人類干預自動化複雜的多步任務。隨著項目的發展,其在Web3中的潛在應用可能重新定義數字互動的展開方式。 Agent S的時間線 Agent S的發展和里程碑可以用一個時間線來概括,突顯其重要事件: 2024年9月27日:Agent S的概念在一篇名為《一個像人類一樣使用計算機的開放代理框架》的綜合研究論文中推出,展示了該項目的基礎工作。 2024年10月10日:該研究論文在arXiv上公開,提供了對框架及其基於OSWorld基準的性能評估的深入探索。 2024年10月12日:發布了一個視頻演示,提供了對Agent S能力和特徵的視覺洞察,進一步吸引潛在用戶和投資者。 這些時間線上的標記不僅展示了Agent S的進展,還表明了其對透明度和社區參與的承諾。 有關Agent S的要點 隨著Agent S框架的持續演變,幾個關鍵特徵脫穎而出,強調其創新性和潛力: 創新框架:旨在提供類似人類互動的直觀計算機使用,Agent S為任務自動化帶來了新穎的方法。 自主互動:通過GUI自主與計算機互動的能力標誌著向更智能和高效的計算解決方案邁進了一步。 複雜任務自動化:憑藉其強大的方法論,能夠自動化複雜的多步任務,使過程更快且更少出錯。 持續改進:學習機制使Agent S能夠從過去的經驗中改進,不斷提升其性能和效率。 多功能性:其在OSWorld和WindowsAgentArena等不同操作環境中的適應性確保了它能夠服務於廣泛的應用。 隨著Agent S在Web3和加密領域中的定位,其增強互動能力和自動化過程的潛力標誌著AI技術的一次重大進步。通過其創新框架,Agent S展現了數字互動的未來,為各行各業的用戶承諾提供更無縫和高效的體驗。 結論 Agent S代表了AI與Web3結合的一次大膽飛躍,具有重新定義我們與技術互動方式的能力。儘管仍處於早期階段,但其應用的可能性廣泛且引人入勝。通過其全面的框架解決關鍵挑戰,Agent S旨在將自主互動帶到數字體驗的最前沿。隨著我們深入加密貨幣和去中心化的領域,像Agent S這樣的項目無疑將在塑造技術和人機協作的未來中發揮關鍵作用。

860 人學過發佈於 2025.01.14更新於 2025.01.14

什麼是 AGENT S

如何購買S

歡迎來到HTX.com!在這裡,購買Sonic (S)變得簡單而便捷。跟隨我們的逐步指南,放心開始您的加密貨幣之旅。第一步:創建您的HTX帳戶使用您的 Email、手機號碼在HTX註冊一個免費帳戶。體驗無憂的註冊過程並解鎖所有平台功能。立即註冊第二步:前往買幣頁面,選擇您的支付方式信用卡/金融卡購買:使用您的Visa或Mastercard即時購買Sonic (S)。餘額購買:使用您HTX帳戶餘額中的資金進行無縫交易。第三方購買:探索諸如Google Pay或Apple Pay等流行支付方式以增加便利性。C2C購買:在HTX平台上直接與其他用戶交易。HTX 場外交易 (OTC) 購買:為大量交易者提供個性化服務和競爭性匯率。第三步:存儲您的Sonic (S)購買Sonic (S)後,將其存儲在您的HTX帳戶中。您也可以透過區塊鏈轉帳將其發送到其他地址或者用於交易其他加密貨幣。第四步:交易Sonic (S)在HTX的現貨市場輕鬆交易Sonic (S)。前往您的帳戶,選擇交易對,執行交易,並即時監控。HTX為初學者和經驗豐富的交易者提供了友好的用戶體驗。

1.8k 人學過發佈於 2025.01.15更新於 2026.06.02

如何購買S

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