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DLAC
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Deep Learning Anti-Cheat For CSGO
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DLAC
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# Deep Learning Anti-Cheat For CSGO Input the directory with your .dem files and the model outputs predictions for every shot during the game. ```python from DLAC import Model model = Model("./path_to_demos/") model.predict_to_terminal(threshold=0.95) # You can manually specify threshold, 0.95 by default ``` ## Installation Windows should be as easy as: ```python pip install DLAC ``` Linux users will need to build the .so file. This requres GO. ``` git clone https://github.com/LaihoE/DLAC cd DLAC python3 setup.py install cd DLAC go build -o parser.so -buildmode=c-shared ``` ## You can choose between a bigger and a smaller model ```python from DLAC import Model model = Model("./path_to_demos/", model_type='big') model.predict_to_terminal(threshold=0.99) # 0.99 is recommended with the bigger model ``` The bigger model is slower with slightly better accuracy Other ways to output predictions model.predict_to_csv() model.predict_to_list() ## Example output from one shot ```CSV Name, Confidence of cheating, SteamId, File PeskyCheater22, 0.9601634, 123456789, exampledemo.dem ``` ## Special thank you to Demoinfocs-golang is the underlying parser used for parsing the demos, found at: https://github.com/markus-wa/demoinfocs-golang. 87andrewh has written the majority of the specific parser used, found at: https://github.com/87andrewh/DeepAimDetector/blob/master/parser/to_csv.go