美国恐怖故事
三年不敢去的青甘线,华住会给了我闭眼冲的勇气_我的网站

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Wu Hui, a research fellow at the School of Earth and Space Sciences of Peking University
Editor's Note: Ahead of the opening of the 2026 World AI Conference and High-Level Meeting on Global AI Governance, Chinese AI start-up Moonshot AI released its Kimi K3 large language model. As the world's largest open-source model by parameter count to date, this launch marks a significant step forward in the development of China's artificial intelligence models.
From the C919 airliner soaring into the skies to Unitree's humanoid robots stealing the show; from DeepSeek pushing the AI frontier to Moonshot AI's landmark unveiling of Kimi K3 - China's wave of homegrown innovations has dominated global headlines in recent years, delivering a steady stream of breakthroughs.
At a meeting in Beijing that brought together the national science and technology award conference, the general assemblies of the members of the Chinese Academy of Sciences (CAS) and the Chinese Academy of Engineering (CAE), and the 11th national congress of the China Association for Science and Technology in July, Chinese President Xi Jinping, also general secretary of the Communist Party of China (CPC) Central Committee and chairman of the Central Military Commission, stressed that the 15th Five-Year Plan period (2026-2030) is a critical phase for tackling tough challenges in building up the country's strength in science and technology.
"We must seize the historic opportunity, rise to the challenges of the times, accelerate efforts to achieve high-level self-reliance and strength in science and technology, and make steady progress toward the 2035 goal of becoming a leading country in science and technology," he said.
In the article "Strive for Greater Strength and Self-Reliance in Science and Technology" included in the fourth volume of
Xi Jinping: The Governance of China, Xi pointed out, "Through years of endeavor, our country's overall strength in science and technology has improved substantially. We therefore have a solid foundation, and are fully confident in our ability to seize the opportunities offered by the new revolution in science, technology and industry to achieve greater results." The article also mentioned that "We should participate to the full in global science and technology governance, contribute Chinese wisdom, and shape a philosophy of technology for good purposes, so that science and technology better serve human wellbeing, and enable China's science and technology industry to contribute more to building a global community of shared future."
In the 27th installment of the special series "Decoding the Book
Xi Jinping: The Governance of China," the Global Times, along with the People's Daily Overseas Edition, continues to invite Chinese and foreign scholars, translators of Xi's works, practitioners with firsthand experience, and international readers to focus on the theme of striving for greater strength and self-reliance in science and technology. Together, they share views on China's tech growth, governance principles, and global cooperation in science and technology.
In the 25th article of the "Scholars' Perspectives" column, Wu Hui, a research fellow at the School of Earth and Space Sciences of Peking University, shared his understanding of sci-tech strength and self-reliance through the perspective of a young scholar.
Global Times: Chinese President Xi Jinping delivered an important speech on July 8, emphasizing that the future of science lies in the youth, calling for improved mechanisms to integrate science and education in talent cultivation and for greater efforts to foster outstanding young sci-tech talent. He also urged greater support to be provided to researchers to help them overcome practical challenges.
As a young scholar, how do you view the encouragement from the Chinese leader? In recent years, what concrete measures have been taken to help young talents focus on research and develop their careers?
Wu: As a young scientific and technological worker who returned to China not long ago, I was greatly encouraged after listening to President Xi's important speech on site. The Chinese president's emphasis on greater efforts to foster outstanding young sci-tech talent and his call to avoid blindly following trends and curb involution-style competition allow us to devote ourselves to fundamental research with greater confidence and focus.
In my view, these remarks represent both encouragement and expectations. Every young scientific and technological worker should clearly understand the country's high expectations for young talent, closely align personal research directions with national needs, engage in solid fundamental research, and contribute to the country's scientific and technological development.
Some young researchers are working in an increasingly "overheated" research environment, where competing for projects, counting papers, applying for awards, and seeking prestigious titles have gradually taken priority over actual scientific inquiry. Many fear falling behind, creating a situation where scientific research has gradually deviated from its original purpose. It is necessary to reverse this "overheated" atmosphere, allowing young researchers to fully utilize their strengths, be willing to devote themselves to long-term and challenging work, and have the courage to pursue breakthroughs at the frontiers of science.
In recent years, the country has taken a series of comprehensive measures to remove concerns that hinder young scientific and technological workers and create a supportive environment for research. Various special programs and funding mechanisms for young talent have helped researchers launch their projects smoothly. Programs such as key national research and development projects for young scientists, including those focusing on less mainstream but strategically important fields, have enabled young researchers to pursue long-term breakthroughs in specific areas. Meanwhile, continuously improving scientific evaluation standards have helped young talents avoid blindly chasing publication numbers. These practical measures are gradually guiding young researchers to focus on conducting the scientific research that the country truly needs with greater dedication and confidence.
GT: President Xi also pointed out in the speech that efforts should be made to identify and nurture the teenagers' interests, specialties, scientific literacy and experimental skills, inspiring more promising youth to pursue careers in science and technology. Based on your personal experience and observations, could you elaborate on the importance of cultivating interests, talents, and scientific literacy in expanding the pool of scientific talent and enhancing the country's overall scientific and technological capabilities?
Wu: Every young person has their own interests and strengths. Many scientists who have made outstanding contributions in basic science often demonstrated unique talents and strong interests from an early age. Identifying and nurturing young people's interests and strengths is therefore crucial for cultivating future outstanding scientists and engineers.
Of course, not every young person's interests and strengths lie in scientific research, nor does every young person need to pursue a career in science and technology. Therefore, it is particularly important to identify and support young people who have an interest in basic sciences and applied disciplines, as well as those with related talents and potential. This serves as a foundation for cultivating future world-class scientists.
I have always believed that interests and hobbies can be cultivated. Many young people may not show remarkable talents or outstanding abilities at an early age, but with proper guidance and cultivation, they can also grow into experts in a particular field. This is crucial to expanding the country's pool of scientific and technological talent.
Taking myself as an example, when I was in junior and senior high school, I did not have a particularly strong interest in any specific subject, nor did I possess any special talents. I simply enjoyed solving mathematics problems. During my undergraduate and doctoral studies at Tsinghua University, through a series of opportunities and choices, I eventually chose geotechnical engineering and rock mechanics as my research field, and became a scientific and technological worker in this area, joining China's scientific research community.
If I had chosen civil engineering or environmental studies at that time, I might have become a researcher specializing in structural engineering or environmental remediation instead. Therefore, cultivating an interest, allowing it to develop into a strength, and eventually turning it into a career may be a pathway for many young people to pursue careers in science and technology.
President Xi's remarks on identifying and nurturing young people's interests and strengths deeply resonated with me.
For most applied fundamental disciplines, scientific researchers are required to possess strong overall capabilities and a broad vision. Looking back at the history of great scientists, we can see that they were often not merely experts in a single field. Leonardo da Vinci, for example, was not only a painter but also a civil engineer; Albert Einstein was an accomplished violinist; Richard Feynman conducted research across disciplines, including biology; and Qian Weichang had extensive knowledge of ancient Chinese literature.
Cultivating the comprehensive qualities of scientific talent is therefore essential. Insights from other fields can often provide inspiration and breakthroughs, and interdisciplinary integration frequently leads to unexpected discoveries.
During my time in the US, I encountered several scientists regarded as "geniuses." The reason they were able to achieve breakthroughs beyond what ordinary researchers could accomplish was closely related to their diverse backgrounds and learning experiences.
One of my colleagues, for example, led a team in developing a numerical simulation platform that was ahead of its time. At first, I thought such an achievement was something only a genius could accomplish. But after learning more about his background, I found that he had been an excellent programmer during his university years, while his academic specialty was rock mechanics. He was also a triathlon athlete. These seemingly unrelated experiences and knowledge accumulated over time helped him build the foundation necessary to develop advanced numerical programs. Of course, his strong physical fitness was also an important foundation for this process.
Therefore, it is essential to cultivate the all-round scientific literacy of researchers. Only by developing scientific talent with comprehensive abilities can we truly enhance the country's overall scientific and technological strength.
GT: In the article "Building China into a Sci-Tech Powerhouse" in Volume V of Xi Jinping: The Governance of China, Xi emphasized that "we should fully leverage the strengths of the new system for mobilizing resources nationwide and step up efforts to increase our country's strength and self -reliance in science and technology." He also pointed out that "the more complex the international environment, the more we should be open-minded and engage with the world. We should determine the right balance between opening up and security, and achieve greater strength and self-reliance in science and technology through international cooperation."
Can you talk, based on your work, about how you understand the dialectical relationship between "strength and self -reliance in science and technology" and "international cooperation"?
Wu: The "strength and self-reliance in science and technology" and "international cooperation" are not an either-or proposition. Instead, they form a dialectical unity: two sides of the same coin that empower each other. Open-door cooperation enables our sci-tech self-reliance and strength to build on a higher starting point, while sci-tech self-reliance and strength gives us greater confidence in engaging with the world.
As a researcher in deep‑earth energy development, the most frequently used research tools in everyday work are high‑temperature and high‑pressure experiments and high‑performance numerical simulation platforms. For high‑temperature and high‑pressure experiments, certain precision measuring sensors still rely on imported equipment. Some hydrochemistry and isotope tests also depend on facilities provided by foreign manufacturers. Open cooperation on such infrastructure has, to a certain extent, underpinned the progress of our scientific research.
Meanwhile, thanks to growing national investment in basic research and R&D of key equipment in recent years, we have gradually achieved "domestic substitution" for many measuring devices and experimental instruments. Cooperation with foreign manufacturers has also, to some extent, boosted the R&D of home‑grown instruments and equipment.
I once participated in the development of a large‑scale numerical‑computation program overseas designed for subsurface multi‑field coupling simulation. Since this program is open‑source, I continued to build upon it after returning to China and carried out relevant scientific research using this tool. Although China has home‑grown programs with similar functions and independent intellectual property rights, gaps remain in computing power and efficiency. While developing our new‑generation computation programs with intellectual property rights, we draw on certain general algorithms and techniques from foreign programs to enhance our computing capacity. This kind of open collaboration likewise contributes to China's sci‑tech self‑reliance and strength.
In my discipline, many scientific and technological challenges are not exclusive to Chinese scientists; they are shared by researchers across the globe. Isolated efforts will hardly deliver genuine high‑level achievements. "Strength and self-reliance in science and technology" means not only that we achieve sci‑tech leadership, but also that we can contribute Chinese wisdom to global sci‑tech progress and offer Chinese solutions to the world's challenges. That makes full‑fledged openness and cooperation in science and technology all the more necessary as we pursue self‑reliance and strength.
I am a member of the Chinese Society for Rock Mechanics & Engineering. Academician He Manchao, the society's president, often emphasizes to us the importance of open science. Citing dam construction and maintenance as an example, he has illustrated how Chinese solutions are making their way to the world. In the past, we learned theories and technologies from Western countries. Today, we have taken the lead in certain applied sectors of rock mechanics. As a major country, we should act with a sense of global responsibility and give back to the international community.
GT: At the opening ceremony of the 2026 World AI Conference, President Xi proposed to join hands to build a just and equitable system for global AI governance. How do you apply AI in your work? Drawing on your exchanges with international peers, could you elaborate, from the perspective of a young scholar, on the necessity and importance of strengthening global AI governance for this "future-oriented" field?
Wu: AI is frequently used in my daily scientific research, and its applications mainly fall into three categories. First, for my research project on the inversion of underground fracture networks, we adopt generative AI to realize low-dimensional parameterization of complex fracture networks, which greatly improves the accuracy and efficiency of fracture-network inversion. Second, we employ methods such as residual neural networks to build high-efficiency surrogate models for fracture seepage and heat transfer processes, enabling rapid reconstruction of fracture flow-field and temperature-field distributions. Lastly, we also leverage AI tools such as DeepSeek for knowledge retrieval and information lookup in routine research - tools that most scientific and technological workers use.
From my own experience of using AI, it is highly necessary and urgent to strengthen global AI governance. With the rapid advancement of AI tools today, they are exerting all‑round impacts on our work and daily lives across teaching, scientific research, knowledge acquisition and other spheres.
In teaching, students turn to AI for information, which reduces their in‑class focus and engagement and weakens their systematic absorption and understanding of knowledge. In scientific research, students also rely on AI to look up theories, formulas and methodologies. Yet they cannot guarantee the reliability of outputs. AI‑compiled theories and formulas frequently emerge, steering research onto wrong paths. In terms of knowledge access, AI model hallucinations are widely known. Some AI‑generated videos, images and stories online are so realistic that they can easily mislead the public and distort their understanding of policies and facts.
As AI undergoes rapid iteration and becomes ever‑more prevalent, stricter rules are required to govern its use. That is why we must boost global AI governance, draw up relevant development and usage standards, and keep AI‑related risks and harms to a minimum. As a major frontrunner in AI development and deployment, China ought to spearhead the creation and roll‑out of AI governance frameworks. Such efforts will protect national security and social stability, while delivering new paradigms for sci‑tech R&D in the AI age.
。 青甘大环线躺在我的「人生旅行清单」快三年了。每次刷到敦煌日落、张掖丹霞,都想立刻订机票,但真到了要出发的时候就犹豫了。西北的风沙、起早贪黑的自驾、不知道干不干净的住宿,甚至路上找个厕所都费劲,出发的心就又缩回去了。风景美是真美,但旅途苦也是真的苦。这种“想去又不敢去”的纠结,肯定不止我一个人。但最近,参加完华住会在上海举行的「华住会给你出行的勇气」第二季带你环游“青甘大环线”发车仪式,我又心动了,还没结束就在看机票了。 图注:发车仪式现场
仪式现场,一曲《幸福的牧马人》西北民乐直接把我“传送”到了大西北——盐湖、草原、奔跑的野马……自由的风似乎已经扑面而来。几位来自青海藏区的卓玛跳起欢快的藏族舞蹈,裙摆旋转之间,恍惚间我好像被拽到了青海湖畔。

B | 图注:发车仪式现场
“这房车能预订吗?”想必不只有我一个人想住进现场的三辆“样板间房车”。车身就是移动的酒店体验舱,全季、汉庭把房间直接搬进了车里,桔子还带来了我很爱的“桔子泰迪熊”和健康早餐区,那刻想跟着桔子泰迪去旅行的心达到了顶峰。 而现场“洗好澡”、“睡好觉”、“自助洗烘”等装置,瞬间治愈来我对青甘线的出行焦虑,人狠话不多,精准戳中了我路上最担心的痛点。 图注:发车仪式现场
然后我突然想通了:纠结了三年不就是怕去了之后住不好、睡不好、吃不好吗?
现在华住会直接把青甘线上那些让人发怵的痛点解决了,那还犹豫什么?、
1、最美的风景,藏着“最糟”的住宿?
网上一直有个说法挺火的——“去青甘线旅游的人嘴都太严了”。 意思是你刷朋友圈、小红书,去青甘大环线的人分享的都是天空之镜、鸣沙山星空,但没人告诉你那些风光大片背后:凌晨三点被硬床板硌醒、热水忽冷忽热的现实版“囧途”。 风景发出来了,苦自己咽下去了。 图注:网友分享
迈点发现,青甘线虽火,但沿线住宿还停留在比较初期的阶段。以敦煌为例,全市862家旅游住宿单位中,连锁品牌门店仅60余家,连锁化率约6%,远低于全国平均水平;张掖673家住宿单位中,连锁品牌约59家,连锁化率不足9%。 图注:网友分享
再加上西北地广人稀,城市之间动辄几百公里,住宿选择又有限,一到旺季,房源紧张,供需失衡下沿线酒店价格飙升,但服务却完全跟不上。 因此,花五星的钱住招待所,在青甘线的旺季并不夸张。 住宿一旦不确定了,整趟行程就更不确定了,能不能洗个靠谱的澡、睡个不被干到起皮的觉,这些不确定性叠加在一起,出发可太需要勇气了。 2、当最大的变量被解决,安全感就有了
旅行最劝退的从来不是路程远,而是全程充满未知。既然不确定性是最大的成本,那就把最大的变量先解决掉,华住会这次做的就是这样一件事。 三辆房车将从上海出发,一路开到西宁,全程4268公里,经停青海湖、敦煌、张掖、西宁。 图注:发车仪式现场
房车只是一个关注点,华住会真正想让我们知道的,是华住会的酒店已全线布局青甘,西宁、格尔木、大柴旦、德令哈、果洛玛、玉树、敦煌、张掖……你向往的大西北,都有华住会在。 海拔2800米以上的酒店配备供氧设备或弥散式供氧客房,24小时恒温恒压热水洗去旅途疲惫,客房加湿器对付西北的干,高品质早餐为早起赶路补能,24小时免费洗衣房解决换洗焦虑,大堂应急供水和卫生间为紧急时刻解忧。 图注:桔子酒店弥散式供氧客房
听起来都是小事。 但走过青甘线的人懂,在那样的环境里洗个稳定的热水澡、睡个不干到起皮的觉、吃上热乎营养的早饭,是真爽。 更关键的是,这套解法覆盖很广。 打开华住会APP搜沿线城市,全季格尔木江源路火车站酒店、桔子敦煌沙州夜市酒店、汉庭张掖西站酒店、西宁海湖新区城际酒店……华住会旗下30+品牌、13000+酒店已在全国织成一张密集的网,青甘大环线也被兜在里面。 沿线的每一个节点,都是熟悉的品牌,熟悉的客房,熟悉的味道。在陌生环境里,这份“熟悉感”本身就是安全感。 这里还有一个只有连锁酒店才讲得通的商业逻辑,在这条靠旺季吃饭的大环线上,单体酒店是孤岛,所以它们旺季涨价赚一笔,淡季硬扛,扛不住就降标准。 但华住会算的不是单店账,它需要的是当一个会员沿着青甘线一路走下来,每到一个城市,都有一家华住酒店在等着他。 图注:汉庭敦煌沙洲夜市敦湖花园酒店
华住会不是在“卖青甘线的房间”,是在“卖一趟趟确定性的旅程”,当确定性不再是承诺而是事实,旅行的心态就变了。 你不再需要为每一个“万一”提前焦虑内耗,而是只需要考虑“明天去哪里看日出日落”。 3、不只是一份“勇气”,是一整条出行链的“底气”
住宿解决了,但住宿只是出行链上的一个环节。 你怕住不好,同样也怕飞不到、怕没车开、怕路上没东西吃,这些不确定性叠加在一起,同样很劝退。 华住会显然很明白这件事。 它拉上了东方航空、滴滴、乐道汽车、一嗨租车联合打造“华住会给你出行的勇气福利嘉年华”为3亿+华住会会员送出旅程权益,包括机票立减券、充电满减券、租车车型升级券、滴滴福利礼包等。你飞过去的航班、前往酒店打的车、到了当地租的车、路上充电的新能源车……整条出行链上的关键节点,华住会都帮你兜住了。 看着是华住会这次把格局打开了——它意识到,阻止人们出发的从来不只是“住不好”,而是整条出行链上所有不确定性的叠加,所以它找来了能解决这些问题的伙伴,打包成了一套“出行确定性方案”。

C | 但背后相当于是把原来的酒店会员变成了“旅程会员”,让权益从一张床扩展到了一整段旅程,这是会员经济往深里走的一种打法,即住宿是入口,出行链是延伸,最后黏住的是用户整段旅程的消费决策。 对华住会来说,更能把会员价值做厚,而对3亿+会员来说,手里的会员卡从“订房打折”变成了“出行通行证”,则是权益结构的超级升级。 4、出发这件事,被重新定义了
一个人敢不敢出发,很大程度上取决于他对未知的容忍度有多高。

D | 有网友在网上发帖说,现在去边远地区旅行,有华住会就住华住会,有全季就住全季。

E | 网友留言问为啥,网友回复就两个字:安心。

F | 确实,青甘大环线很美,新疆西藏很美,最近交通部发文要把中国沿边沿海串联成的“黄金大外环”更美,环国自驾游直接从梦想照进现实。 图注:华住会给你出行的勇气现场房车
路是通了,人是去远方了,但远方最缺踏实觉,说走就走的冒险确实浪漫,但谁来为住宿兜底?
只有华住还在“织网”,它把酒店铺到了最需确定性的远方,无论是西北腹地还是边远地区,它也把稳定的服务带给了最需确定性的国民,有热水好觉等着,出发再不用权衡利弊。 这就是中国头部酒店集团应由的担当,让你知道,只要在中国地图所及之处,有了华住会给的出行勇气,都能直接出发。返回,查看更多。
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