1,397 results for Semantic · 0.086s

arxiv.org/abs/2401.09789v1

A Semantic Approach for Big Data Exploration in Industry 4.0

The growing trends in automation, Internet of Things, big data and cloud computing technologies have led to the fourth industrial revolution (Industry 4.0), where it is possible to visualize and identify patterns and insights, which results in a bett...

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arxiv.org/abs/2305.09898v1

Balancing Lexical and Semantic Quality in Abstractive Summarization

An important problem of the sequence-to-sequence neural models widely used in abstractive summarization is exposure bias. To alleviate this problem, re-ranking systems have been applied in recent years. Despite some performance improvements, this app...

arxiv.org/abs/1807.09207v3

Face Mask Extraction in Video Sequence

Inspired by the recent development of deep network-based methods in semantic image segmentation, we introduce an end-to-end trainable model for face mask extraction in video sequence. Comparing to landmark-based sparse face shape representation, our...

arxiv.org/abs/2512.20156v4

Fun-Audio-Chat Technical Report

Recent advancements in joint speech-text models show great potential for seamless voice interactions. However, existing models face critical challenges: temporal resolution mismatch between speech tokens (25Hz) and text tokens (~3Hz) dilutes semantic...

en.wikipedia.org/wiki/Graph_database

Graph database - Wikipedia

A graph database (GDB) is a database that uses graph structures for semantic queries with nodes, edges, and properties to represent and store data. A key

arxiv.org/abs/1807.02081v6

Rule Formats for Nominal Process Calculi

The nominal transition systems (NTSs) of Parrow et al. describe the operational semantics of nominal process calculi. We study NTSs in terms of the nominal residual transition systems (NRTSs) that we introduce. We provide rule formats for the specifi...

arxiv.org/abs/2203.09652v1

Revisiting the Dunn-Belnap logic

In the present work I introduce a semantics based on the cognitive attitudes of acception and rejection entertained by a given society of agents for logics inspired on Dunn and Belnap's First Degree Entailment ($\mathbf{E}$). In contrast to the epist...

arxiv.org/abs/1803.08691v1

Deep learning and its application to medical image segmentation

One of the most common tasks in medical imaging is semantic segmentation. Achieving this segmentation automatically has been an active area of research, but the task has been proven very challenging due to the large variation of anatomy across differ...

arxiv.org/abs/2509.24288v1

ASIA: Adaptive 3D Segmentation using Few Image Annotations

We introduce ASIA (Adaptive 3D Segmentation using few Image Annotations), a novel framework that enables segmentation of possibly non-semantic and non-text-describable "parts" in 3D. Our segmentation is controllable through a few user-annotated in-th...

github.com/jknack/handlebars.java

jknack/handlebars.java

Logic-less and semantic Mustache templates with Java (⭐ 1544)

arxiv.org/abs/cs/0003015v2

On the semantics of merging

Intelligent agents are often faced with the problem of trying to merge possibly conflicting pieces of information obtained from different sources into a consistent view of the world. We propose a framework for the modelling of such merging operatio...

github.com/isaacphi/mcp-language-server

isaacphi/mcp-language-server

mcp-language-server gives MCP enabled clients access semantic tools like get definition, references, rename, and diagnostics. (⭐ 1455)

arxiv.org/abs/1806.11322v1

Bias in Semantic and Discourse Interpretation

In this paper, we show how game-theoretic work on conversation combined with a theory of discourse structure provides a framework for studying interpretive bias. Interpretive bias is an essential feature of learning and understanding but also somethi...

arxiv.org/abs/1704.03080v1

Representing operational semantics with enriched Lawvere theories

Many term calculi, like lambda calculus or pi calculus, involve binders for names, and the mathematics of bound variable names is subtle. Schoenfinkel introduced the SKI combinator calculus in 1924 to clarify the role of quantified variables in intui...

arxiv.org/abs/cs/0412098v3

The Google Similarity Distance

Words and phrases acquire meaning from the way they are used in society, from their relative semantics to other words and phrases. For computers the equivalent of `society' is `database,' and the equivalent of `use' is `way to search the database.'...

arxiv.org/abs/2404.18708v2

The Spatial Semantics of Iconic Gesture

The current multimodal turn in linguistic theory leaves a crucial question unanswered: what is the meaning of iconic gestures, and how does it compose with speech meaning? We argue for a separation of linguistic and visual levels of meaning and intro...

arxiv.org/abs/2411.10173v1

Semantics and Spatiality of Emergent Communication

When artificial agents are jointly trained to perform collaborative tasks using a communication channel, they develop opaque goal-oriented communication protocols. Good task performance is often considered sufficient evidence that meaningful communic...

en.wikipedia.org/wiki/Semantic_Scholar

Semantic Scholar - Wikipedia

and influential elements of a paper. The AI technology is designed to identify hidden connections and links between research topics. Like the previously

github.com/Azure/pixel_level_land_classification

Azure/pixel_level_land_classification

Tutorial demonstrating how to create a semantic segmentation (pixel-level classification) model to predict land cover from aerial imagery. This model can be used to identify newly developed or flooded land. Uses ground-truth labels and processed NAIP imagery provided by the Chesa…

stackoverflow.com/questions/40480839/nltk-relation-extraction-returns-nothing

NLTK relation extraction returns nothing

Tags: python, nltk, semantics, relation, knowledge-base-population | Score: 6 | Answered: Yes

www.cs.ubc.ca/spider/poole/ci.html

Computational Intelligence: A Logical Approach

Computational Intelligence: a Logical Approach is a new textbook on artificial intelligence (AI). It covers logic, reasoning, representation, learning, probability, robotics, search, abduction, Prolog.

arize.com/docs/phoenix/tracing/integrations-tracing/haystack

Haystack - Phoenix

Haystack is an open-source framework for building scalable semantic search and QA pipelines with document indexing, retrieval, and reader components

ignite.microsoft.com/en-US/sessions/BRK197?source=sessions

AI powered automation & multi-agent orchestration in Microsoft Foundry

Build multi?agent systems the right way with Microsoft Foundry. Go from single?agent prototypes to fleet?level orchestration using the Foundry Agent Framework (Semantic Kernel + AutoGen), shared state, Human in the loop, OpenTel, MCP toolchains, A2A, and the Activity Protocol. Br…

arxiv.org/abs/2404.03592

[2404.03592] ReFT: Representation Finetuning for Language Models

Parameter-efficient finetuning (PEFT) methods seek to adapt large neural models via updates to a small number of weights. However, much prior interpretability work has shown that representations encode rich semantic information, suggesting that editing representations might be a…

www.microsoft.com/en/customers/story/1701944358715641785-perplexity-ai-azure-partner-professional-services-usa

Trailblazing AI answer engine Perplexity.AI doubles throughput, cuts cost with Azure AI St…

Perplexity.AI is the creator of Perplexity Ask, a revolutionary AI-based conversational answer engine that combines large language models with a robust semantic search engine. As a typical startup—with a lean staff and a leaner budget—the company needed a platform for Perplexity…