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前理想汽车AI高管创立具身AI初创公司协悦智能

由前理想汽车首席科学家陈薇联合创立的协悦智能已获得数亿元天使轮融资,用于开发以家庭为中心的实体人工智能机器人和基础模型。

4 min readRead the linked source
Source-page capture accompanying Former Li Auto AI executive launches embodied AI startup Xieyue Intelligence
来源参考来源记录
出版商
autonews.gasgoo.com
来源链接
autonews.gasgoo.comhttps://autonews.gasgoo.com/articles/news/seeds-former-li-auto-ai-executive-launches-embodied-ai-startup-raises-rmb-hundreds-of-millions-2099739132007190528
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链接来源——主要来源状态尚未确定。
背景60 秒内了解这一点

从这里开始

关键术语

基础模型
一个大型的预训练模型,可以适应许多下游任务。
管道
预处理、模型步骤和后处理阶段的有序工作流程。
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发生了什么

Xieyue Intelligence, a startup co-founded by Chen Wei (former Li Auto chief scientist) and Zhang Xiao (former Li Auto product line president), has raised hundreds of millions of yuan in an Angel+ funding round. The capital, backed by investors including Linear Capital, PEAKVEST, Rhein Capital, and Hidden Hill Capital, will be used to train embodied foundation models, build infrastructure, and develop home robot hardware. This is the company's second funding round in seven months, following an initial Angel round led by Li Auto and Vision Plus Capital.

Gasgoo reports that Xieyue Intelligence has secured hundreds of millions of yuan in an Angel+ funding round. The investors include Linear Capital, PEAKVEST, Rhein Capital, and Hidden Hill Capital. The funds are designated for training embodied foundation models, building computing and data infrastructure, expanding the core team, and developing home robot hardware for scenario verification.

The startup was co-founded by Chen Wei, former chief scientist of AI and head of the department at Li Auto, and Zhang Xiao, the automaker's former product line president. The core team includes members from global tech, AI, robotics, and intelligent automotive firms. Gasgoo notes the team has experience training large models across 10,000 GPU cards and managing mass-production chains for consumer products.

Strategically, Xieyue Intelligence is positioning the home as the core training ground for its embodied foundation models, diverging from the industry's focus on industrial and logistics scenarios. The company is adopting a gradual strategy to prioritize semi-structured environments like hotels and nursing homes to prove model capabilities and unit economics before moving into household settings. Initial targets include high-frequency chores such as laundry, organizing, and cleaning.

The company is building a closed-loop ecosystem encompassing robot hardware, embodied foundation models, and home-based self-evolution. This system utilizes 'Duplex Reasoning' for the , a 'Human-centric' approach for data collection, and a 'Safety-first' framework. The hardware strategy involves a 'single body, full-stack closed-loop' approach to control variables initially before rolling out consumer products.

来源详情: autonews.gasgoo.com ↗

为什么这很重要

The launch signals a strategic shift in the embodied AI sector, with a high-profile team from the automotive industry pivoting to consumer home robotics. By focusing on 'Duplex Reasoning' and a 'verify first, enter home later' strategy, the company aims to address the complexity of household environments, which are considered critical testbeds for general embodied intelligence. This move highlights the growing convergence of automotive AI expertise and consumer robotics.

This funding round represents a significant entry into the embodied AI space by a team with deep expertise in automotive AI and large-scale model training. The shift from industrial to home-focused robotics addresses a complex, high-frequency physical environment that is considered a key touchstone for validating general embodied intelligence.

The company's technical approach, specifically 'Duplex Reasoning,' aims to maintain a two-way channel between the robot and human during perception, reasoning, and execution. This allows for dynamic adjustment of action goals and interruption of commands, which is critical for safe and effective operation in unstructured home environments.

By focusing on high-quality data and systematic infrastructure rather than just larger models, Xieyue Intelligence is attempting to differentiate itself in a crowded market. The company argues that core competitiveness in embodied intelligence lies in data quality and infrastructure capabilities, which are viewed as equally critical pillars to model size.

Interactive Mechanism

互动机制:它实际上是如何运作的

以交互方式探索这一发展背后的基础技术。

Thinking Budget (Test-Time Tokens):1,024 tokens
Complex Accuracy79%Math & Code Logic
Latency3.2sTime to first full output
Inference Cost$0.0092Per query estimated
Reasoning StyleStep VerificationInternal chain depth
Active Thinking Trace:
1Deconstruct user problem into formal constraints
2Propose candidate hypotheses & step-by-step calculation
3Self-correction: Backtrack and refute subtle edge cases
4Exhaustive consistency check & final output synthesis
Core takeaway: Test-time compute fundamentally changes AI economics. Instead of only scaling during pre-training, giving reasoning models more tokens at inference time allows them to systematically solve PhD-level STEM problems.
交互式概念检查+10 Points
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An agent must create a draft calendar event for Tuesday at 2 p.m. Which evidence would establish the requested result?

接下来看什么

Monitor the company's progress in semi-structured environments like hotels and nursing homes, the operational status of its data by 2026, and the eventual release of consumer-facing home robot products.

The company plans to have its full data —from collection, cleaning, and labeling to training—fully operational by 2026. Progress in this area will be a key indicator of its ability to scale its embodied foundation models.

Success in semi-structured environments like hotels and nursing homes will be a prerequisite for the company's entry into household settings. Monitoring the unit economics and model capabilities in these initial deployments will provide insight into the viability of its 'verify first, enter home later' strategy.

The development and release of consumer-facing home robot products will be the ultimate test of the company's 'single body, full-stack closed-loop' hardware strategy and its ability to manage the complexity of real-world home environments.

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