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Sustainable Fractal Design: Maximizing ChatGPT and BIM Energy Analysis

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Join us for an exciting presentation on the intersection of ChatGPT and building information modeling (BIM) energy analysis in sustainable fractal design through the use of fractal patterns and structures in the design of buildings. Fractal architecture aims to create a functional connection between the built environment and the natural world, promoting a more sustainable and harmonious relationship between buildings and the earth's complex ecological systems. In this talk, we'll explore how machine-learning algorithms like ChatGPT can be integrated into fractal design to optimize building design for maximum energy efficiency and sustainability. We'll also discuss the potential that sustainable fractal design has to reduce a building's carbon footprint and improve indoor air quality. You'll leave with a practical understanding of how to capitalize on these innovative tools and approaches for your own building design projects

主要学习内容

  • Learn about the key principles of sustainable fractal design and how it can be applied to building design projects.
  • Learn about the capabilities of ChatGPT and BIM energy analysis tools and how they can be integrated to optimize building design.
  • Discover the potential benefits of sustainable fractal design for reducing a building's carbon footprint.
  • Learn practical tips and strategies for integrating ChatGPT and BIM energy analysis tools into your own building design project.

讲师

  • Daniel Breul
    Daniel Breul Structural BIM Technician at Gannett Fleming with 10 years of BIM modeling experience.
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Transcript

DANIEL BREUL: Hello, everyone. Today I am talking about sustainable fractal design and maximizing ChatGPT and BIM Energy analysis. My name is Daniel Breul, and I am a structural technician at Gannett Fleming.

So to start, we'll talk about what is sustainable fractal design. Fractal design, by definition is architecture-- is an approach to building design that integrates the principles of fractal geometry and complex systems theory to create buildings that are responsive to dynamic patterns and processes and various different ecosystems.

It's essentially based on earthship design. The earthships that are in Taos, New Mexico use various design principles of solar heating and cooling as well as different reactive systems to water capturing and using planters and recycling. So it's loosely based off that, but it's a concept that brings it forward a little bit.

So the fractals that we're talking about and the fractals that people are normally used to is geometric fractals. These geometric fractals occur in what's called third-dimensional phase space. A phase space is where a complex system has every single possible outcome from its initial onset.

We're mainly concerned with fourth-dimensional phase space, so that would be geometric patterns but using mathematical patterns. Instead of getting 3D geometric patterns and third-dimensional phase space, it uses time as the coefficient to drive design changes that would occur over time. So the buildings are essentially reactive buildings.

And that right there at the bottom is a earthship diagram that shows the heating and cooling effect that it uses passively. So chaos theory-- the main part of fractal design uses chaos theory. And chaos theory, you might have noticed, in our daily day-to-day lives isn't something that you would think of very much, but it is something that is in the background.

So one good example is every hurricane season we get those spaghetti models. What those spaghetti models essentially are are using chaotic systems to determine where each hurricane would go, and because a hurricane is such a complex system, it is difficult to predict, which is why your weather patterns and your daily forecasts might be completely incorrect, and it's because these mathematical models are extremely difficult to calculate.

And our current ability, as you've seen in the graph below, shows that we have very little idea of what a complex dynamic system will do. And right now, chaos theory is the best way we have of trying to predict these systems, and it's predicted through the use of initial conditions, which brings me to chaotic attractors.

So a chaotic attractor, similar to the spaghetti model, are what is used to create these predictive systems. And these predictive systems can then be used to predict an environment like a complex ecology, and what fractal design does is it uses these chaotic attractors to understand any given environment.

So right here is a bifurcation sequence, and what the bifurcation sequence does is it allows you to calculate complex things. So right here is an example of it modeling a population growth of any given area, and what the R-value is is the rate of change that occurs.

So right here you see a system going from a state of simplicity to infinite complexity, and that is what we consider chaos when it gets to the part that looks like it's complex. That part-- the system becomes a chaotic system, and it's hard to understand where that pattern would go. But a bifurcation sequence is a good way of mapping that if you have initial conditions and an emphasis on initial conditions.

The better understood the initial condition of a system is, the better you can predict it down the line. And a lot of times, these graphs-- you can chart that specific picture right there of bifurcation. You can chart that down the line and put that on an actual graph that's easy to understand.

So speaking of chaotic attractors, complex dynamic systems-- so the purpose of these attractors is to understand complex ecology, and right now, when we build a building or any built environment, very little of the complex system that is being built in is taken into account. So what this system-- what this new type of architecture does is it uses system impact and building integration and then uses complex attractors and understanding of dynamic systems to predict what impact the building will have.

And when you put a building into a new system, it's hard to tell what will happen, so what we try to do is we try to design the initial conditions in such a way that we could help predict the outcome of what impact it will have, basically making the building into a new ecological paradigm within whatever ecology it's built in.

Right here are some examples of models that have been created to understand the different changes in an environment. So the one to the left right here gives you wind force, and the wind force is charted with the amount of time that a high wind is in any given area. And that will be deterministic of what kind of trees fall, and then when you look at those patterns of how many trees fall due to wind, you can start to model a predictive algorithm that gives you an idea and modeling of what the future environment will look like.

So how does this all fit in with ChatGPT? Well, what is ChatGPT? Well, it is a generative pre-trained transformer. ChatGPT is a natural language processor model developed by a company called OpenAI. What happened with this and why it's different than other AI is it is a chat interface, so unlike other AI models that we interact with, this one is something we are able to actively type in and chat with, hence the name, ChatGPT.

And ChatGPT is able to use machine learning to understand complex human speech in, essentially, texting. So it uses its interaction with humans to be able to learn what humans are doing, what their patterns are like, and thus it is able to learn from us to become a better helper to us.

That being said, there are some dos and don'ts of using AI, especially in a professional workplace, that I feel like needs to be said. One problem with it-- and a lot of people who have maybe tried it in the workplace might know-- is it can be sometimes unreliable. There is a case where a lawyer tried to use it for coming up with different case study cases to bring to his case, and they were made-up ones that ChatGPT came up with.

So it is always wise to double-check whatever you're doing, especially when you're using it in the context of BIM and engineering. It's always good to double check whatever work you've had to do, made sure you check it with either someone else, peer review, or double-check it with a factual database.

Another problem is confirmation bias. So after you chat, like I said before, it has machine learning, so it starts to learn your style. And it starts to predict what kind of answers you would desire apart from the answers that it would just give otherwise, and that could be a problem with confirmation bias because then you can start having a feedback loop with ChatGPT where you just continually confirm a narrative that you have in your head about something.

And this is super easy to do with engineering and architecture when you already have some sort of bias about a new design you're working on or a way of doing something. So in my opinion, it should be used as an assistant only.

Another problem is copyright issues. Sometimes it has a way of taking from somebody else's work that is otherwise copyright and spits it out to you without you knowing that to be true. Another really good way to use ChatGPT to get the best answers you can is be very specific with your questions. The longer and more specific the question, the better the response ChatGPT will be able to give you.

Here is an example of-- I asked it what kind of mistakes it made and, very similar to what I was saying, generate incorrect information, sensitive to the input-- that's why you want to be very specific with how you put your question to it-- and biases is a major part of ChatGPT.

So how did ChatGPT help me to develop this concept of fractal architecture? Well, one of the ways it helped-- it was a great learning tool. I knew what objective I wanted to accomplish with fractal architecture, but I was unclear on some of the ways to go about developing.

It was a great learning tool of opening up ways that I could develop my concept, and as I developed it further, ChatGPT better understood what kind of concept I was going for and that I wanted to use fractals in not a geometric sense that have been used in the past but in a fourth-dimensional sense.

And it was great at being able to adapt to what I wanted to do, and it was perfect for writing Python scripts, which-- a lot of what reactive design needs as it relates to Revit and BIM is a lot of Python scripts that you can import into Dynamo or that you can use to open the Revit API. One of the things that introduced me to combining the learning part with the Revit API is it introduced me to Visual Studio by Microsoft, which is a good way to be able to open up Revit API and write Python scripts.

It's also a fantastic brainstorming tool. Whenever I got stumped on a topic or something that I wanted to develop as part of fractal architecture, it was always a good way of bouncing ideas back and forth with it because it's able to understand the concept I want, and it is able to understand that I want to bounce ideas back and forth with it.

So why use AI? Well, AI is really good at machine learning. It's really good at adapting to your specific workflow and work style. ChatGPT can also remember past conversations, which is why I said before it was great at brainstorming.

Right here is a picture of a Waymo self-driving car, and similar to ChatGPT, the Waymo self-driving car uses interactions with its environment to machine learn about different variables that could occur in it. One time I saw a pedestrian going, and they waved the car forward. And the car learned that that was something-- that it can go ahead and make the turn.

That showed me that it had advanced machine learning, and from experience, like a human, from driving after time, it's able to get better and better, which is why they've been driving these with humans in them for so long while the machine learning was able to build a complete back repertoire of experiences from its environment. So similar to that, ChatGPT is able to learn from using it in the workplace.

So here are some of the Pythons that-- Python scripts that I got from it. So right here I was using it to try to have a solar analysis program in Revit and have an add-in which allows ChatGPT to interact with the solar analysis that I was running. And right here it gives you kind of an over idea of what you need, so it gives you lists. ChatGPT likes to give you lists when you have it do something complex, and these lists will be very superficial and very surface level.

But what you can do is you can use that to start getting deeper into what ChatGPT can do to help you. And so right here I asked it to help me with a specific step, and then we're able to drill down and get more specific with what we want the operation to do. And you can see right here eventually I asked it to write a Python script about a specific part of running the energy analysis.

So speaking of using BIM energy analysis, ChatGPT helped me put together a few generative design scripts where I could run iterative design on whatever I was working on. So right here is a building that I was running solar analysis on, and right below you can see the picture. That's the Revit Solar Analysis program being run.

And what I did is I used it to create a real-time reactive design. So what I was able to do is I was able to run this, take the data from the solar analysis, and run it into an external program. So I won't go over the external program too much since it's not an Autodesk product. But Revit is, and that is where the data and information is being collected from ChatGPT to be able to help drive the design of what I'm doing in real time.

So I have a parametric roof, and I'm able to change the shape of the roof depending on how much sun shines through and what the surface area of the sun is. And then I'm able to use ChatGPT and the other program to calculate the BTUs of that specific unit.

And what I have down there is a condo unit, and I can look at every specific one, and depending on the angle that the sun hits it, I'm able to change that in real time with generative design because ChatGPT enabled me to export the data to an external program and then re-import it and then in real-time change that design.

So like I was saying earlier, it drives parametric design with analysis feedback. That is real-time feedback, and it's not something you have to wait for because you can run it, get the data back immediately, and then run it again if it's not to your desired amount. And yeah, it adapts to what you do. So after you've done this a few times, ChatGPT gets better at understanding what you want to do and is able to streamline the process easier of having it go from Revit to another program to back into Revit.

Another way that I've used it with energy analysis isn't the analysis that is in Revit, but I used it to calculate tree and plant dispersion. So this is a good example of a fourth-dimensional phase space as far as it relates to fractal architecture, and what that does is it allows you to decide where would be the most beneficial place to place your building and how to orient it with what the given flora and fauna of any given ecology is.

And it does that by using the machine learning and advanced algorithms, and ChatGPT is really good at running these calculations as an AI and using them in other open source AI programs. And crunching those numbers, you're able to have a predictive model and a predictive system to where you're building will have the least amount of impact.

So when AI learning model meets sustainability-- these two are two things that are starting to be widely used in the sustainable communities one of the reasons is it creates a new ecological paradigm, a new system, so to speak. Our current cities and developments are made not with any sort of different paradigm, and the effect is that they end up being a detriment to that system instead of a help to that system.

What combining AI with is able to do is you're able to minimize ecological impact of these buildings, and you're able to encourage inhabitants to live within an ecological system. And one of the reasons is because when you have a reactive building that's dependent on it, it incentivizes people to live with that building and thus living with any ecological environment and its systems.

So what is the future of AI? Right now we're only seeing the beginnings of it. We're starting to see OpenAI like ChatGPT, and we're only going to start seeing it more as these things start to develop.

I was using ChatGPT-3. Right now ChatGPT-4 is the most cutting-edge as far as OpenAI is concerned, and there will only be more programs like that. And as these programs become more and more advanced, they are able to learn more and more off the previous programs, so every single iteration of these is an exponential advancement.

And another good thing about AI is that people can start using them as learning opportunities. They're good ways for you to learn, and they're really great for interacting with since it's not just a medium in which you're getting information in. You're also giving information out. It's an interaction that you're having. So it can almost be like a personal tutor for yourself as it is something that can chat back with you.

I see it as something that will be more and more integrated as far as BIM is concerned. Right there at the bottom, you see that ChatGPT plus pyRevit is something that is already being developed, and I could see that as being an extreme help, especially if you're a Revit user like me and you use pyRevit a lot, which we use quite a bit in our line of work. And it's quite helpful program, and so having an add-in of ChatGPT within Revit and Python along with pyRevit has been an extreme help, and I can only see that being advanced further in the future.

That is it. Thank you for listening.

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Google Optimize
我们通过 Google Optimize 测试站点上的新功能并自定义您对这些功能的体验。为此,我们将收集与您在站点中的活动相关的数据。此数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID、您的 Autodesk ID 等。根据功能测试,您可能会体验不同版本的站点;或者,根据访问者属性,您可能会查看个性化内容。. Google Optimize 隐私政策
ClickTale
我们通过 ClickTale 更好地了解您可能会在站点的哪些方面遇到困难。我们通过会话记录来帮助了解您与站点的交互方式,包括页面上的各种元素。将隐藏可能会识别个人身份的信息,而不会收集此信息。. ClickTale 隐私政策
OneSignal
我们通过 OneSignal 在 OneSignal 提供支持的站点上投放数字广告。根据 OneSignal 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 OneSignal 收集的与您相关的数据相整合。我们利用发送给 OneSignal 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. OneSignal 隐私政策
Optimizely
我们通过 Optimizely 测试站点上的新功能并自定义您对这些功能的体验。为此,我们将收集与您在站点中的活动相关的数据。此数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID、您的 Autodesk ID 等。根据功能测试,您可能会体验不同版本的站点;或者,根据访问者属性,您可能会查看个性化内容。. Optimizely 隐私政策
Amplitude
我们通过 Amplitude 测试站点上的新功能并自定义您对这些功能的体验。为此,我们将收集与您在站点中的活动相关的数据。此数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID、您的 Autodesk ID 等。根据功能测试,您可能会体验不同版本的站点;或者,根据访问者属性,您可能会查看个性化内容。. Amplitude 隐私政策
Snowplow
我们通过 Snowplow 收集与您在我们站点中的活动相关的数据。这可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID、您的 Autodesk ID。我们使用此数据来衡量我们站点的性能并评估联机体验的难易程度,以便我们改进相关功能。此外,我们还将使用高级分析方法来优化电子邮件体验、客户支持体验和销售体验。. Snowplow 隐私政策
UserVoice
我们通过 UserVoice 收集与您在我们站点中的活动相关的数据。这可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID、您的 Autodesk ID。我们使用此数据来衡量我们站点的性能并评估联机体验的难易程度,以便我们改进相关功能。此外,我们还将使用高级分析方法来优化电子邮件体验、客户支持体验和销售体验。. UserVoice 隐私政策
Clearbit
Clearbit 允许实时数据扩充,为客户提供个性化且相关的体验。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。Clearbit 隐私政策
YouTube
YouTube 是一个视频共享平台,允许用户在我们的网站上查看和共享嵌入视频。YouTube 提供关于视频性能的观看指标。 YouTube 隐私政策

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定制您的广告 – 允许我们为您提供针对性的广告

Adobe Analytics
我们通过 Adobe Analytics 收集与您在我们站点中的活动相关的数据。这可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID、您的 Autodesk ID。我们使用此数据来衡量我们站点的性能并评估联机体验的难易程度,以便我们改进相关功能。此外,我们还将使用高级分析方法来优化电子邮件体验、客户支持体验和销售体验。. Adobe Analytics 隐私政策
Google Analytics (Web Analytics)
我们通过 Google Analytics (Web Analytics) 收集与您在我们站点中的活动相关的数据。这可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。我们使用此数据来衡量我们站点的性能并评估联机体验的难易程度,以便我们改进相关功能。此外,我们还将使用高级分析方法来优化电子邮件体验、客户支持体验和销售体验。. Google Analytics (Web Analytics) 隐私政策
AdWords
我们通过 AdWords 在 AdWords 提供支持的站点上投放数字广告。根据 AdWords 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 AdWords 收集的与您相关的数据相整合。我们利用发送给 AdWords 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. AdWords 隐私政策
Marketo
我们通过 Marketo 更及时地向您发送相关电子邮件内容。为此,我们收集与以下各项相关的数据:您的网络活动,您对我们所发送电子邮件的响应。收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID、电子邮件打开率、单击的链接等。我们可能会将此数据与从其他信息源收集的数据相整合,以根据高级分析处理方法向您提供改进的销售体验或客户服务体验以及更相关的内容。. Marketo 隐私政策
Doubleclick
我们通过 Doubleclick 在 Doubleclick 提供支持的站点上投放数字广告。根据 Doubleclick 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Doubleclick 收集的与您相关的数据相整合。我们利用发送给 Doubleclick 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Doubleclick 隐私政策
HubSpot
我们通过 HubSpot 更及时地向您发送相关电子邮件内容。为此,我们收集与以下各项相关的数据:您的网络活动,您对我们所发送电子邮件的响应。收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID、电子邮件打开率、单击的链接等。. HubSpot 隐私政策
Twitter
我们通过 Twitter 在 Twitter 提供支持的站点上投放数字广告。根据 Twitter 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Twitter 收集的与您相关的数据相整合。我们利用发送给 Twitter 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Twitter 隐私政策
Facebook
我们通过 Facebook 在 Facebook 提供支持的站点上投放数字广告。根据 Facebook 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Facebook 收集的与您相关的数据相整合。我们利用发送给 Facebook 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Facebook 隐私政策
LinkedIn
我们通过 LinkedIn 在 LinkedIn 提供支持的站点上投放数字广告。根据 LinkedIn 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 LinkedIn 收集的与您相关的数据相整合。我们利用发送给 LinkedIn 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. LinkedIn 隐私政策
Yahoo! Japan
我们通过 Yahoo! Japan 在 Yahoo! Japan 提供支持的站点上投放数字广告。根据 Yahoo! Japan 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Yahoo! Japan 收集的与您相关的数据相整合。我们利用发送给 Yahoo! Japan 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Yahoo! Japan 隐私政策
Naver
我们通过 Naver 在 Naver 提供支持的站点上投放数字广告。根据 Naver 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Naver 收集的与您相关的数据相整合。我们利用发送给 Naver 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Naver 隐私政策
Quantcast
我们通过 Quantcast 在 Quantcast 提供支持的站点上投放数字广告。根据 Quantcast 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Quantcast 收集的与您相关的数据相整合。我们利用发送给 Quantcast 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Quantcast 隐私政策
Call Tracking
我们通过 Call Tracking 为推广活动提供专属的电话号码。从而,使您可以更快地联系我们的支持人员并帮助我们更精确地评估我们的表现。我们可能会通过提供的电话号码收集与您在站点中的活动相关的数据。. Call Tracking 隐私政策
Wunderkind
我们通过 Wunderkind 在 Wunderkind 提供支持的站点上投放数字广告。根据 Wunderkind 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Wunderkind 收集的与您相关的数据相整合。我们利用发送给 Wunderkind 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Wunderkind 隐私政策
ADC Media
我们通过 ADC Media 在 ADC Media 提供支持的站点上投放数字广告。根据 ADC Media 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 ADC Media 收集的与您相关的数据相整合。我们利用发送给 ADC Media 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. ADC Media 隐私政策
AgrantSEM
我们通过 AgrantSEM 在 AgrantSEM 提供支持的站点上投放数字广告。根据 AgrantSEM 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 AgrantSEM 收集的与您相关的数据相整合。我们利用发送给 AgrantSEM 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. AgrantSEM 隐私政策
Bidtellect
我们通过 Bidtellect 在 Bidtellect 提供支持的站点上投放数字广告。根据 Bidtellect 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Bidtellect 收集的与您相关的数据相整合。我们利用发送给 Bidtellect 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Bidtellect 隐私政策
Bing
我们通过 Bing 在 Bing 提供支持的站点上投放数字广告。根据 Bing 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Bing 收集的与您相关的数据相整合。我们利用发送给 Bing 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Bing 隐私政策
G2Crowd
我们通过 G2Crowd 在 G2Crowd 提供支持的站点上投放数字广告。根据 G2Crowd 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 G2Crowd 收集的与您相关的数据相整合。我们利用发送给 G2Crowd 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. G2Crowd 隐私政策
NMPI Display
我们通过 NMPI Display 在 NMPI Display 提供支持的站点上投放数字广告。根据 NMPI Display 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 NMPI Display 收集的与您相关的数据相整合。我们利用发送给 NMPI Display 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. NMPI Display 隐私政策
VK
我们通过 VK 在 VK 提供支持的站点上投放数字广告。根据 VK 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 VK 收集的与您相关的数据相整合。我们利用发送给 VK 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. VK 隐私政策
Adobe Target
我们通过 Adobe Target 测试站点上的新功能并自定义您对这些功能的体验。为此,我们将收集与您在站点中的活动相关的数据。此数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID、您的 Autodesk ID 等。根据功能测试,您可能会体验不同版本的站点;或者,根据访问者属性,您可能会查看个性化内容。. Adobe Target 隐私政策
Google Analytics (Advertising)
我们通过 Google Analytics (Advertising) 在 Google Analytics (Advertising) 提供支持的站点上投放数字广告。根据 Google Analytics (Advertising) 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Google Analytics (Advertising) 收集的与您相关的数据相整合。我们利用发送给 Google Analytics (Advertising) 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Google Analytics (Advertising) 隐私政策
Trendkite
我们通过 Trendkite 在 Trendkite 提供支持的站点上投放数字广告。根据 Trendkite 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Trendkite 收集的与您相关的数据相整合。我们利用发送给 Trendkite 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Trendkite 隐私政策
Hotjar
我们通过 Hotjar 在 Hotjar 提供支持的站点上投放数字广告。根据 Hotjar 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Hotjar 收集的与您相关的数据相整合。我们利用发送给 Hotjar 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Hotjar 隐私政策
6 Sense
我们通过 6 Sense 在 6 Sense 提供支持的站点上投放数字广告。根据 6 Sense 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 6 Sense 收集的与您相关的数据相整合。我们利用发送给 6 Sense 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. 6 Sense 隐私政策
Terminus
我们通过 Terminus 在 Terminus 提供支持的站点上投放数字广告。根据 Terminus 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 Terminus 收集的与您相关的数据相整合。我们利用发送给 Terminus 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. Terminus 隐私政策
StackAdapt
我们通过 StackAdapt 在 StackAdapt 提供支持的站点上投放数字广告。根据 StackAdapt 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 StackAdapt 收集的与您相关的数据相整合。我们利用发送给 StackAdapt 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. StackAdapt 隐私政策
The Trade Desk
我们通过 The Trade Desk 在 The Trade Desk 提供支持的站点上投放数字广告。根据 The Trade Desk 数据以及我们收集的与您在站点中的活动相关的数据,有针对性地提供广告。我们收集的数据可能包含您访问的页面、您启动的试用版、您播放的视频、您购买的东西、您的 IP 地址或设备 ID。可能会将此信息与 The Trade Desk 收集的与您相关的数据相整合。我们利用发送给 The Trade Desk 的数据为您提供更具个性化的数字广告体验并向您展现相关性更强的广告。. The Trade Desk 隐私政策
RollWorks
We use RollWorks to deploy digital advertising on sites supported by RollWorks. Ads are based on both RollWorks data and behavioral data that we collect while you’re on our sites. The data we collect may include pages you’ve visited, trials you’ve initiated, videos you’ve played, purchases you’ve made, and your IP address or device ID. This information may be combined with data that RollWorks has collected from you. We use the data that we provide to RollWorks to better customize your digital advertising experience and present you with more relevant ads. RollWorks Privacy Policy

是否确定要简化联机体验?

我们希望您能够从我们这里获得良好体验。对于上一屏幕中的类别,如果选择“是”,我们将收集并使用您的数据以自定义您的体验并为您构建更好的应用程序。您可以访问我们的“隐私声明”,根据需要更改您的设置。

个性化您的体验,选择由您来做。

我们重视隐私权。我们收集的数据可以帮助我们了解您对我们产品的使用情况、您可能感兴趣的信息以及我们可以在哪些方面做出改善以使您与 Autodesk 的沟通更为顺畅。

我们是否可以收集并使用您的数据,从而为您打造个性化的体验?

通过管理您在此站点的隐私设置来了解个性化体验的好处,或访问我们的隐私声明详细了解您的可用选项。