Context Engineering 2.0: The Context of Context Engineering

Fuente: arXiv
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Auteurs principaux: Hua, Qishuo, Ye, Lyumanshan, Fu, Dayuan, Xiao, Yang, Cai, Xiaojie, Wu, Yunze, Lin, Jifan, Wang, Junfei, Liu, Pengfei
Format: Preprint
Publié: 2025
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_version_ 1866915586946105344
author Hua, Qishuo
Ye, Lyumanshan
Fu, Dayuan
Xiao, Yang
Cai, Xiaojie
Wu, Yunze
Lin, Jifan
Wang, Junfei
Liu, Pengfei
author_facet Hua, Qishuo
Ye, Lyumanshan
Fu, Dayuan
Xiao, Yang
Cai, Xiaojie
Wu, Yunze
Lin, Jifan
Wang, Junfei
Liu, Pengfei
contents Karl Marx once wrote that ``the human essence is the ensemble of social relations'', suggesting that individuals are not isolated entities but are fundamentally shaped by their interactions with other entities, within which contexts play a constitutive and essential role. With the advent of computers and artificial intelligence, these contexts are no longer limited to purely human--human interactions: human--machine interactions are included as well. Then a central question emerges: How can machines better understand our situations and purposes? To address this challenge, researchers have recently introduced the concept of context engineering. Although it is often regarded as a recent innovation of the agent era, we argue that related practices can be traced back more than twenty years. Since the early 1990s, the field has evolved through distinct historical phases, each shaped by the intelligence level of machines: from early human--computer interaction frameworks built around primitive computers, to today's human--agent interaction paradigms driven by intelligent agents, and potentially to human--level or superhuman intelligence in the future. In this paper, we situate context engineering, provide a systematic definition, outline its historical and conceptual landscape, and examine key design considerations for practice. By addressing these questions, we aim to offer a conceptual foundation for context engineering and sketch its promising future. This paper is a stepping stone for a broader community effort toward systematic context engineering in AI systems.
format Preprint
id arxiv_https___arxiv_org_abs_2510_26493
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Context Engineering 2.0: The Context of Context Engineering
Hua, Qishuo
Ye, Lyumanshan
Fu, Dayuan
Xiao, Yang
Cai, Xiaojie
Wu, Yunze
Lin, Jifan
Wang, Junfei
Liu, Pengfei
Artificial Intelligence
Computation and Language
Karl Marx once wrote that ``the human essence is the ensemble of social relations'', suggesting that individuals are not isolated entities but are fundamentally shaped by their interactions with other entities, within which contexts play a constitutive and essential role. With the advent of computers and artificial intelligence, these contexts are no longer limited to purely human--human interactions: human--machine interactions are included as well. Then a central question emerges: How can machines better understand our situations and purposes? To address this challenge, researchers have recently introduced the concept of context engineering. Although it is often regarded as a recent innovation of the agent era, we argue that related practices can be traced back more than twenty years. Since the early 1990s, the field has evolved through distinct historical phases, each shaped by the intelligence level of machines: from early human--computer interaction frameworks built around primitive computers, to today's human--agent interaction paradigms driven by intelligent agents, and potentially to human--level or superhuman intelligence in the future. In this paper, we situate context engineering, provide a systematic definition, outline its historical and conceptual landscape, and examine key design considerations for practice. By addressing these questions, we aim to offer a conceptual foundation for context engineering and sketch its promising future. This paper is a stepping stone for a broader community effort toward systematic context engineering in AI systems.
title Context Engineering 2.0: The Context of Context Engineering
topic Artificial Intelligence
Computation and Language
url https://arxiv.org/abs/2510.26493