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What is Microsoft Cognitive Toolkit?

The Microsoft Cognitive Toolkit (CNTK) is an open-source framework that facilitates high-performance distributed deep learning applications. It models neural networks using a series of computational operations structured in a directed graph format. Developers can easily implement and combine numerous well-known model architectures such as feed-forward deep neural networks (DNNs), convolutional neural networks (CNNs), and recurrent neural networks (RNNs/LSTMs). By employing stochastic gradient descent (SGD) and error backpropagation learning, CNTK supports automatic differentiation and allows for parallel processing across multiple GPUs and server environments. The toolkit can function as a library within Python, C#, or C++ applications, or it can be used as a standalone machine-learning tool that utilizes its own model description language, BrainScript. Furthermore, CNTK's model evaluation features can be accessed from Java applications, enhancing its versatility. It is compatible with 64-bit Linux and 64-bit Windows operating systems. Users have the flexibility to either download pre-compiled binary packages or build the toolkit from the source code available on GitHub, depending on their preferences and technical expertise. This broad compatibility and adaptability make CNTK an invaluable resource for developers aiming to implement deep learning in their projects, ensuring that they can tailor their tools to meet specific needs effectively.

What is DeePhi Quantization Tool?

This cutting-edge tool is crafted for the quantization of convolutional neural networks (CNNs), enabling the conversion of weights, biases, and activations from 32-bit floating-point (FP32) to 8-bit integer (INT8) format, as well as other bit depths. By utilizing this tool, users can significantly boost inference performance and efficiency while maintaining high accuracy. It supports a variety of common neural network layer types, including convolution, pooling, fully-connected layers, and batch normalization, among others. Notably, the quantization procedure does not necessitate retraining the network or the use of labeled datasets; a single batch of images suffices for the process. Depending on the size of the neural network, this quantization can be achieved in just seconds or extend to several minutes, allowing for rapid model updates. Additionally, the tool is specifically designed to work seamlessly with DeePhi DPU, generating the necessary INT8 format model files for DNNC integration. By simplifying the quantization process, this tool empowers developers to create models that are not only efficient but also resilient across different applications. Ultimately, it represents a significant advancement in optimizing neural networks for real-world deployment.

Media

Media

Integrations Supported

AI Skills Navigator
Alteryx
AssurX
AuraQuantic
Azure Data Science Virtual Machines
Azure Database for MariaDB
Microsoft Dynamics 365 Finance
Microsoft Dynamics Supply Chain Management
Microsoft Power Platform

Integrations Supported

API Availability

Has API

API Availability

Pricing Information

Pricing not provided

Pricing Information

$0.90 per hour

Supported Platforms

SaaS
Windows

Supported Platforms

SaaS

Customer Service / Support

Web-Based Support

Customer Service / Support

Web-Based Support

Training Options

Documentation Hub

Training Options

Documentation Hub

Company Facts

Organization Name

Microsoft

Date Founded

1975

Company Location

United States

Company Website

docs.microsoft.com/en-us/cognitive-toolkit/

Company Facts

Organization Name

DeePhi Quantization Tool

Company Website

aws.amazon.com/marketplace/pp/prodview-bwtx6kzwg3gva

Categories and Features

Deep Learning

Convolutional Neural Networks

Neural Network

Not specified

Categories and Features

AI Inference

Not specified

Neural Network

Not specified

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