Semantic embeddings for program behavior patterns
classification
💻 cs.CR
stat.ML
keywords
patternsprogramspacebehaviorautoencoderautomaticallycapturescomplex
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In this paper, we propose a new feature extraction technique for program execution logs. First, we automatically extract complex patterns from a program's behavior graph. Then, we embed these patterns into a continuous space by training an autoencoder. We evaluate the proposed features on a real-world malicious software detection task. We also find that the embedding space captures interpretable structures in the space of pattern parts.
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