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Description

FeedStock employs advanced multilingual deep learning technology to capture, recognize, and extract crucial information from your communication channels, transforming it into valuable actionable insights. The complexity of B2B buying has significantly evolved, as evidenced by the increase in necessary contacts for making purchasing decisions, which rose from 17 in 2019 to 27 by 2021. With fewer face-to-face interactions and increasing challenges in outbound growth, our fully automated intelligent assistance is designed to enhance revenue generation for relationship-focused sales teams. By analyzing client interactions directly from your inbox, we unlock hidden growth potential through previously unnoticed insights. You can expect immediate value without the burden of expensive, lengthy adoption processes; when you activate FeedStock, it is fully operational. We capture and categorize ten times more relationships, extract millions of topics, and provide unmatched proprietary insights that drive your business growth, ensuring you stay ahead in a rapidly changing market landscape. This streamlined approach empowers your teams to focus on what really matters: building stronger connections and driving sales.

Description

The VLFeat open source library offers a range of well-known algorithms focused on computer vision, particularly for tasks such as image comprehension and the extraction and matching of local features. Among its various algorithms are Fisher Vector, VLAD, SIFT, MSER, k-means, hierarchical k-means, the agglomerative information bottleneck, SLIC superpixels, quick shift superpixels, and large scale SVM training, among many others. Developed in C to ensure high performance and broad compatibility, it also has MATLAB interfaces that enhance user accessibility, complemented by thorough documentation. This library is compatible with operating systems including Windows, Mac OS X, and Linux, making it widely usable across different platforms. Additionally, MatConvNet serves as a MATLAB toolbox designed specifically for implementing Convolutional Neural Networks (CNNs) tailored for various computer vision applications. Known for its simplicity and efficiency, MatConvNet is capable of running and training cutting-edge CNNs, with numerous pre-trained models available for tasks such as image classification, segmentation, face detection, and text recognition. The combination of these tools provides a robust framework for researchers and developers in the field of computer vision.

API Access

Has API

API Access

Has API

Screenshots View All

Screenshots View All

Integrations

No details available.

Integrations

No details available.

Pricing Details

No price information available.
Free Trial
Free Version

Pricing Details

No price information available.
Free Trial
Free Version

Deployment

Web-Based
On-Premises
iPhone App
iPad App
Android App
Windows
Mac
Linux
Chromebook

Deployment

Web-Based
On-Premises
iPhone App
iPad App
Android App
Windows
Mac
Linux
Chromebook

Customer Support

Business Hours
Live Rep (24/7)
Online Support

Customer Support

Business Hours
Live Rep (24/7)
Online Support

Types of Training

Training Docs
Webinars
Live Training (Online)
In Person

Types of Training

Training Docs
Webinars
Live Training (Online)
In Person

Vendor Details

Company Name

FeedStock

Founded

2015

Country

United Kingdom

Website

feedstock.com/products/synapse/

Vendor Details

Company Name

VLFeat

Country

United States

Website

www.vlfeat.org/matconvnet/

Product Features

Deep Learning

Convolutional Neural Networks
Document Classification
Image Segmentation
ML Algorithm Library
Model Training
Neural Network Modeling
Self-Learning
Visualization

Product Features

Deep Learning

Convolutional Neural Networks
Document Classification
Image Segmentation
ML Algorithm Library
Model Training
Neural Network Modeling
Self-Learning
Visualization

Alternatives

Alternatives

LiveLink for MATLAB Reviews

LiveLink for MATLAB

Comsol Group
MATLAB Reviews

MATLAB

The MathWorks
DataMelt Reviews

DataMelt

jWork.ORG