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  4. Machine Learning As A Service
  5. Inferrd vs Replicate

Inferrd vs Replicate

OverviewComparisonAlternatives

Overview

Inferrd
Inferrd
Stacks2
Followers11
Votes10
Replicate
Replicate
Stacks53
Followers12
Votes0

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Help developers discover the tools you use. Get visibility for your team's tech choices and contribute to the community's knowledge.

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Detailed Comparison

Inferrd
Inferrd
Replicate
Replicate

It is the easiest way to deploy Machine Learning models. Start deploying Tensorflow, Scikit, Keras and spaCy straight from your notebook with just one extra line.

It lets you run machine learning models with a few lines of code, without needing to understand how machine learning works.

Machine Learning practioners don't need to wait for engineering to deploy their models anymore; No need to invest in expensive infrastructure and tooling. Inferrd starts at $14, batteries included; Built with security in mind. Your models are protected using state-of-the-art encryption at rest.
Thousands of models, ready to use; Automatic API; Automatic scale; Pay by the second
Statistics
Stacks
2
Stacks
53
Followers
11
Followers
12
Votes
10
Votes
0
Pros & Cons
Pros
  • 3
    Easy to use
  • 2
    Very quick response time
  • 2
    Fast
  • 2
    Secure
  • 1
    Fair pricing
No community feedback yet
Integrations
TensorFlow
TensorFlow
SpaCy
SpaCy
Keras
Keras
scikit-learn
scikit-learn
Python
Python
Cog
Cog
Next.js
Next.js
JavaScript
JavaScript
Vercel
Vercel
CUDA
CUDA

What are some alternatives to Inferrd, Replicate?

Git

Git

Git is a free and open source distributed version control system designed to handle everything from small to very large projects with speed and efficiency.

TensorFlow

TensorFlow

TensorFlow is an open source software library for numerical computation using data flow graphs. Nodes in the graph represent mathematical operations, while the graph edges represent the multidimensional data arrays (tensors) communicated between them. The flexible architecture allows you to deploy computation to one or more CPUs or GPUs in a desktop, server, or mobile device with a single API.

Mercurial

Mercurial

Mercurial is dedicated to speed and efficiency with a sane user interface. It is written in Python. Mercurial's implementation and data structures are designed to be fast. You can generate diffs between revisions, or jump back in time within seconds.

scikit-learn

scikit-learn

scikit-learn is a Python module for machine learning built on top of SciPy and distributed under the 3-Clause BSD license.

PyTorch

PyTorch

PyTorch is not a Python binding into a monolothic C++ framework. It is built to be deeply integrated into Python. You can use it naturally like you would use numpy / scipy / scikit-learn etc.

SVN (Subversion)

SVN (Subversion)

Subversion exists to be universally recognized and adopted as an open-source, centralized version control system characterized by its reliability as a safe haven for valuable data; the simplicity of its model and usage; and its ability to support the needs of a wide variety of users and projects, from individuals to large-scale enterprise operations.

Keras

Keras

Deep Learning library for Python. Convnets, recurrent neural networks, and more. Runs on TensorFlow or Theano. https://keras.io/

NanoNets

NanoNets

Build a custom machine learning model without expertise or large amount of data. Just go to nanonets, upload images, wait for few minutes and integrate nanonets API to your application.

Kubeflow

Kubeflow

The Kubeflow project is dedicated to making Machine Learning on Kubernetes easy, portable and scalable by providing a straightforward way for spinning up best of breed OSS solutions.

TensorFlow.js

TensorFlow.js

Use flexible and intuitive APIs to build and train models from scratch using the low-level JavaScript linear algebra library or the high-level layers API

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