arithmancer | Logarithmic Market Scoring Rule Prediction Market | Predictive Analytics library

 by   google Python Version: Current License: Apache-2.0

kandi X-RAY | arithmancer Summary

kandi X-RAY | arithmancer Summary

arithmancer is a Python library typically used in Analytics, Predictive Analytics applications. arithmancer has no bugs, it has no vulnerabilities, it has build file available, it has a Permissive License and it has low support. You can download it from GitHub.

Arithmancer is a prediction market application. Users can make trades on predictions, betting on how likely an event is to occur. Each prediction is an individual market with a market maker system modeled on Robin Hanson's logarithmic market scoring rules. This was designed and tested as an internal corporate decision market. Using outside of an organization as a general application will likely require additional features (ex. ACLs, better form validation and security, etc.). Note: This is not an official Google product.
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            kandi-support Support

              arithmancer has a low active ecosystem.
              It has 55 star(s) with 25 fork(s). There are 11 watchers for this library.
              OutlinedDot
              It had no major release in the last 6 months.
              arithmancer has no issues reported. There are 1 open pull requests and 0 closed requests.
              It has a neutral sentiment in the developer community.
              The latest version of arithmancer is current.

            kandi-Quality Quality

              arithmancer has 0 bugs and 0 code smells.

            kandi-Security Security

              arithmancer has no vulnerabilities reported, and its dependent libraries have no vulnerabilities reported.
              arithmancer code analysis shows 0 unresolved vulnerabilities.
              There are 0 security hotspots that need review.

            kandi-License License

              arithmancer is licensed under the Apache-2.0 License. This license is Permissive.
              Permissive licenses have the least restrictions, and you can use them in most projects.

            kandi-Reuse Reuse

              arithmancer releases are not available. You will need to build from source code and install.
              Build file is available. You can build the component from source.
              Installation instructions are available. Examples and code snippets are not available.

            Top functions reviewed by kandi - BETA

            kandi has reviewed arithmancer and discovered the below as its top functions. This is intended to give you an instant insight into arithmancer implemented functionality, and help decide if they suit your requirements.
            • Generate a URL for a given endpoint
            • URL quote
            • Handle URL build errors
            • Inject url defaults
            • Run a WSGI application
            • Create a WSGIServer
            • Log a message
            • Serve forever
            • Extract the URI info from the given path
            • Run an action
            • Generate an eastereg
            • Run the development server
            • Dispatch a view
            • Validate args and kwargs
            • Return a list of source lines
            • Pop the path info from the environment
            • Parse form data into a form data
            • Generate url map
            • Return a secure filename
            • Import a module
            • Generate the traceback output
            • Reload sys modules
            • Decorator for registering an error handler
            • Returns a JSON response
            • Decorate a teardown request function
            • Load a module
            Get all kandi verified functions for this library.

            arithmancer Key Features

            No Key Features are available at this moment for arithmancer.

            arithmancer Examples and Code Snippets

            No Code Snippets are available at this moment for arithmancer.

            Community Discussions

            QUESTION

            will TensorFlow utilize GPU for predictive Analysis?
            Asked 2020-Nov-21 at 21:35

            GPU is good for parallel computing but the problem is some machine learning libraries don't utilize the GPU, unless that machine learning based on image processing or some sort of graphics processing, what if I am using machine learning for predictive Analytics? do libraries like TensorFlow utilize the GPU? or they use only CPU? or can I choose which processing unit to use? whats the deal here?

            note: predictive Analysis requires no graphics processing.

            ...

            ANSWER

            Answered 2020-Nov-21 at 21:35
            The short answer: yes, it will! The slightly longer answer:

            The computation that happens in the GPU in any of the machine learning frameworks that support GPUs is not limited to graphical processing. For instance, if your model is a simple logistic regression, a framework such as TensorFlow will run it on the GPU if properly configured.

            The advantage of GPUs for machine learning is that training big neural networks benefits greatly from the high level of parallelism that the GPUs offer.

            If you want to know more about this, I'd recommend you start here or here.

            some things to consider:
            • how much a model will benefit from running in the GPU will depend on how much it will benefit from parallel computation in general.
            • Deep Learning models can be applied to predictive analytics, as well as more classical machine learning models. Bear in mind that neural nets are possibly the category of models that will benefit inherently from the GPU (see links above).
            • Even though running models using GPUs (or even more specialised hardware) can bring benefits, I would suggest that you don't choose a framework and, especially, don't choose an algorithm based solely on the fact that it will benefit from parallelism, but rather look at how appropriate a given algorithm is for the data you have.

            Source https://stackoverflow.com/questions/64948197

            QUESTION

            Restructuring Pandas Dataframe for large number of columns
            Asked 2020-Nov-01 at 19:39

            I have a pandas dataframe which is a large number of answers given by users in response to a survey and I need to re-structure it. There are up to 105 questions asked each year, but I only need maybe 20 of them.

            The current structure is as below.

            What I want to do is re-structure it so that the row values become column names and the answer given by the user is then the value in that column. In a picture (from Excel), what I want is the below (I know I'll need to re-name my columns, but that's fine once I can create the structure in the first place):

            Is it possible to re-structure my dataframe this way? The outcome of this is to use some predictive analytics to predict a target variable, so I need to re-strcture before I can use Random Forest, kNN, and so on.

            ...

            ANSWER

            Answered 2020-Nov-01 at 19:39

            You might want try pivoting your table:

            Source https://stackoverflow.com/questions/64630691

            QUESTION

            Display data from two json files in react native
            Asked 2020-May-17 at 23:55

            I have js files Dashboard and Adverts. I managed to get Dashboard to list the information in one json file (advertisers), but when clicking on an advertiser I want it to navigate to a separate page that will display some data (Say title and text) from the second json file (productadverts). I can't get it to work. Below is the code for the Dashboard and next for Adverts. Then the json files

            ...

            ANSWER

            Answered 2020-May-17 at 23:55

            The new object to get params in React Navigation 5 is:

            Source https://stackoverflow.com/questions/61859411

            Community Discussions, Code Snippets contain sources that include Stack Exchange Network

            Vulnerabilities

            No vulnerabilities reported

            Install arithmancer

            pip install -r requirements.txt. Download and install the Google Cloud SDK, and use dev_appserver.py to run a local server for development. Create your first prediction by going to "/predictions/create".

            Support

            Please read CONTRIBUTING.md for details on contributing.
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          • HTTPS

            https://github.com/google/arithmancer.git

          • CLI

            gh repo clone google/arithmancer

          • sshUrl

            git@github.com:google/arithmancer.git

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