Neural Sequence Model

Neural sequence models are machine-learning systems that represent and predict ordered data, making them important for engineering tasks involving language, signals, sensor streams, and time-dependent measurements. They process inputs as sequences, using recurrent hidden states or attention mechanisms to retain relevant context and learn relationships between elements; during training, adjustable weights are optimized from example sequences, often by minimizing prediction error. In engineering, these models support speech and text processing, anomaly detection, forecasting, control, and interpretation of signals from connected devices. Their ability to model temporal dependencies can improve automation and decision-making, although performance depends on representative data, suitable architectures, and careful validation.

Neural Sequence Model - Related Videos

Research

JoVE Journal - Neuroscience

In Vitro Modeling of Cancerous Neural Invasion: The Dorsal Root Ganglion Model

0 Views •

Cited by 10 •

2016

This video article shows the use of the dorsal root ganglia (DRG)/cancer cell model in pancreatic ductal adenocarcinoma.

Education

JoVE Core - Electrical Engineering

Per-Unit Sequence Models

0 Views •

2024

An ideal Y-Y transformer, grounded through neutral impedances, displays per-unit sequence networks akin to those of a single-phase ideal transformer when subjected to balanced positive- or negative-sequence currents. These currents do not produce neutral currents, and their associated voltage drops. Zero-sequence currents, which are identical in magnitude and phase, generate a neutral current, resulting in voltage drops across the neutral impedance and the low-voltage winding. If the...

Research

JoVE Journal - Neuroscience
Free Sample

Enumeration of Neural Stem Cells Using Clonal Assays

0 Views •

Cited by 5 •

2016

Neural stem cells (NSCs) refer to cells which can self-renew and differentiate into the three neural lineages. Here, we describe a protocol to determine NSC frequency in a given cell population using neurosphere formation and differentiation under clonal conditions.

Engineered 3D Silk-collagen-based Model of Polarized Neural Tissue

0 Views •

Cited by 32 •

2015

Insight into the complex actions of the brain requires advanced research tools. Here we demonstrate a novel silk-collagen-based 3D engineered model of neural tissue resembling brain-like architecture. The model can be used to study neuronal network assembly, axonal guidance, cell-cell interactions and electrical activity.

Neural Plate Cell Manipulation Through In Utero Nanoinjection in an Embryonic Mouse Model

0 Views •

2025

Source: Mangold, K., H el. al., Murine Neural Plate Targeting by In Utero Nano-Injection (NEPTUNE) at Embryonic Day 7.5. J. Vis. Exp. (2022)This video demonstrates the in-utero nano-injection method for neural plate targeting in an embryonic mouse model. A high-titer lentiviral solution is injected into the amniotic cavity, where it integrates into neural plate cells, enabling stable gene manipulation for neurodevelopmental research and therapeutic applications.

View All Results

FAQs

Related Topics