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Exploring Semantic Search Capability of Graph Convolutions Over a Knowledge Graph Built Using Earth Science Corpora
Traditional knowledge graphs tend to be too generic, and often perform poorly on complex scientific queries. Often times, precedence is given to pop culture over scientific knowledge for queries. This is predominantly due to the use of internet sources for building the knowledge graph. With this work, we aim to explore the effectiveness of combining a knowledge graph generated from earth science corpora with a language model and graph convolutions for the purpose of surfacing latent and related sentences given a natural language query. In this model, sentences are conceptualized in the graph as nodes which are connected through entities—words and phrases of interest found in the text—extracted using Google Cloud’s entity extraction model. The language model we used for this is Bidirectional Encoder Representations from Transformers (BERT).The sentences are given a numeric representation by the BERT model. Graph convolutions are then applied to sentence embeddings in order to obtain a vector representation of the sentence as well as the surrounding graph structure, thereby leveraging the power of adjacency inherently encoded in graph structures. With this presentation, we demonstrate the ability of graph convolutions and their improved ability to surface relevant, latent information based on the subject of the input query.
Language Model for Earth Science for Semantic Search
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Mind the Gap: On Bridging the Semantic Gap between Machine Learning and Information Security.
Abstract not provided.
MalGen: On Bridging the Semantic Gap between Machine Learning and Malware Analysis.
Abstract not provided.
Towards Semantic Search in Building Sensor Data
This paper presents a search engine system for sensor time series data and metadata in the context of building management. It takes natural language queries as input, retrieves sensor time series data, ranks them with respect to their relevance to a given query, and visualizes the time series as search results. In addition, the system allows users to interact with the search results: they can define events of interest in the visualized results and search across sensor data for similar events, i.e., the search by example scheme. Quantitative evaluations and user studies demonstrate the value of this system for managing building sensor data.
One Weird Trick to Improve Your Semi-Weakly Supervised Semantic Segmentation Model
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System and method for identifying and comparing code by semantic abstractions
Certain embodiments of the present invention are configured to facilitate analyzing computer code more efficiently. For example, by conducting a first level abstraction (e.g., symbolic interpretation and algebraic simplification) and a second level abstraction (e.g., generalization) of the computer code, the analysis may more accurately account for variations in the code that may occur as a result of register renaming, instruction reordering, choice of instructions, etc. while minimizing the cost of computations required to perform the analysis.
Automatically Recognizing Semantics of List-based Data Structures in Source Code
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Generative Embeddings Network-based Semantic Inference and Search (GENESIS)
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Concept Lens: Visually Analyzing the Consistency of Semantic Manipulation in GANs
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Knowledge Transfer from LLMs to Provenance Analysis: A Semantic-Augmented Method for APT Detection
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