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What is Zebra by Mipsology?

Mipsology's Zebra serves as an ideal computing engine for Deep Learning, specifically tailored for the inference of neural networks. By efficiently substituting or augmenting current CPUs and GPUs, it facilitates quicker computations while minimizing power usage and expenses. The implementation of Zebra is straightforward and rapid, necessitating no advanced understanding of the hardware, special compilation tools, or alterations to the neural networks, training methodologies, frameworks, or applications involved. With its remarkable ability to perform neural network computations at impressive speeds, Zebra sets a new standard for industry performance. Its adaptability allows it to operate seamlessly on both high-throughput boards and compact devices. This scalability guarantees adequate throughput in various settings, whether situated in data centers, on the edge, or within cloud environments. Moreover, Zebra boosts the efficiency of any neural network, including user-defined models, while preserving the accuracy achieved with CPU or GPU-based training, all without the need for modifications. This impressive flexibility further enables a wide array of applications across different industries, emphasizing its role as a premier solution in the realm of deep learning technology. As a result, organizations can leverage Zebra to enhance their AI capabilities and drive innovation forward.

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.

What is ConvNetJS?

ConvNetJS is a JavaScript library crafted for the purpose of training deep learning models, particularly neural networks, right within your web browser. You can initiate the training process with just a simple tab open, eliminating the need for any software installations, compilers, or GPU resources, making it incredibly user-friendly. The library empowers users to construct and deploy neural networks utilizing JavaScript and was originally created by @karpathy; however, it has been significantly improved thanks to contributions from the community, which are highly welcomed. For those seeking a straightforward method to access the library without diving into development intricacies, a minified version can be downloaded via the link to convnet-min.js. Alternatively, users have the option to acquire the latest iteration from GitHub, where you would typically look for the file build/convnet-min.js, which comprises the entire library. To kick things off, you just need to set up a basic index.html file in a chosen folder and ensure that build/convnet-min.js is placed in the same directory, allowing you to start exploring deep learning within your browser seamlessly. This easy-to-follow approach opens the door for anyone, regardless of their level of technical expertise, to interact with neural networks with minimal effort and maximum enjoyment.

Media

Media

Media

Integrations Supported

Amazon Web Services (AWS)
Caffe
Qwen3-Omni
TensorFlow

Integrations Supported

Amazon Web Services (AWS)
Caffe
Qwen3-Omni
TensorFlow

Integrations Supported

Amazon Web Services (AWS)
Caffe
Qwen3-Omni
TensorFlow

API Availability

Has API

API Availability

Has API

API Availability

Has API

Pricing Information

Pricing not provided.
Free Trial Offered?
Free Version

Pricing Information

$0.90 per hour
Free Trial Offered?
Free Version

Pricing Information

Pricing not provided.
Free Trial Offered?
Free Version

Supported Platforms

SaaS
Android
iPhone
iPad
Windows
Mac
On-Prem
Chromebook
Linux

Supported Platforms

SaaS
Android
iPhone
iPad
Windows
Mac
On-Prem
Chromebook
Linux

Supported Platforms

SaaS
Android
iPhone
iPad
Windows
Mac
On-Prem
Chromebook
Linux

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Training Options

Documentation Hub
Webinars
Online Training
On-Site Training

Company Facts

Organization Name

Mipsology

Company Location

United States

Company Website

mipsology.com

Company Facts

Organization Name

DeePhi Quantization Tool

Company Website

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

Company Facts

Organization Name

ConvNetJS

Company Website

cs.stanford.edu/people/karpathy/convnetjs/

Categories and Features

Deep Learning

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

Categories and Features

Categories and Features

Deep Learning

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

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