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  5. Rekognition API vs TensorFlow vs Yottaa

Rekognition API vs TensorFlow vs Yottaa

OverviewDecisionsComparisonAlternatives

Overview

Yottaa
Yottaa
Stacks18
Followers27
Votes0
Rekognition API
Rekognition API
Stacks5
Followers25
Votes0
TensorFlow
TensorFlow
Stacks3.9K
Followers3.5K
Votes106
GitHub Stars192.3K
Forks74.9K

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Advice on Yottaa, Rekognition API, TensorFlow

Xi
Xi

Developer at DCSIL

Oct 11, 2020

Decided

For data analysis, we choose a Python-based framework because of Python's simplicity as well as its large community and available supporting tools. We choose PyTorch over TensorFlow for our machine learning library because it has a flatter learning curve and it is easy to debug, in addition to the fact that our team has some existing experience with PyTorch. Numpy is used for data processing because of its user-friendliness, efficiency, and integration with other tools we have chosen. Finally, we decide to include Anaconda in our dev process because of its simple setup process to provide sufficient data science environment for our purposes. The trained model then gets deployed to the back end as a pickle.

99.4k views99.4k
Comments
Adithya
Adithya

Student at PES UNIVERSITY

May 11, 2020

Needs advice

I have just started learning some basic machine learning concepts. So which of the following frameworks is better to use: Keras / TensorFlow/PyTorch. I have prior knowledge in python(and even pandas), java, js and C. It would be nice if something could point out the advantages of one over the other especially in terms of resources, documentation and flexibility. Also, could someone tell me where to find the right resources or tutorials for the above frameworks? Thanks in advance, hope you are doing well!!

107k views107k
Comments
philippe
philippe

Research & Technology & Innovation | Software & Data & Cloud | Professor in Computer Science

Sep 13, 2020

Review

Hello Amina, You need first to clearly identify the input data type (e.g. temporal data or not? seasonality or not?) and the analysis type (e.g., time series?, categories?, etc.). If you can answer these questions, that would be easier to help you identify the right tools (or Python libraries). If time series and Python, you have choice between Pendas/Statsmodels/Serima(x) (if seasonality) or deep learning techniques with Keras.

Good work, Philippe

4.65k views4.65k
Comments

Detailed Comparison

Yottaa
Yottaa
Rekognition API
Rekognition API
TensorFlow
TensorFlow

Yottaa optimizes, protects and monitors websites and web applications, delivering speed, scale, security and actionable insight. Yottaa customers benefit from websites with better user experience, improved SEO and higher conversions.

ReKognition API offers services for detecting, recognizing, tagging and searching faces and concepts as well as categorizing scenes in any photo, through a RESTFUL API. We process and analyze photos from anywhere, so you can mix and match photo sources with user IDs, which can enable you to, say, recognize objects in Facebook and Flickr photos.

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.

Front End Optimization: Automatically reduce asset size, minimize server requests, and facilitate parallel delivery of assets and execution of scripts.;Accelerated Dynamic, Mobile and Secure Content: Automatically apply device- and browser-specific optimization techniques and accelerate HTTPS (SSL) traffic.;Testing, Analysis and Optimization: Identify key bottlenecks, define custom rules for handling page assets, and visualize the impact on site performance and content rendering.;Content Caching and Edge Delivery: Accelerate page load times and reduce load on your infrastructure by serving content from Yottaa’s network of 20+ globally-distributed data centers.;Integration with Any CDN: Integrate seamlessly with your current configuration. Extend or replace Yottaa’s CDN with another content delivery network, based on your infrastructure and market requirements, in seconds.;IP Anycast Routing: Reduce network latency by redirecting requests and serving content from the closest geographic server.;Malicious Traffic Blocking: Shield your site from a variety of threats, including network attacks and denial of service attacks.;Content Protection: Throttle (or block) page scrapers to protect site content, and minimize contention for data center resources with “good” traffic.;HTTPS/SSL Acceleration: Accelerate and protect SSL traffic by leveraging Yottaa’s proprietary SSL termination software, and the thousands of servers in Yottaa’s global cloud network.;Traffic Analytics: Track every request going to your site, and carry out interactive analysis that provides real-time intelligence into ALL your site traffic (including traffic invisible to web analytics services such as Google Analytics).;High Performance DNS Service: Resolve DNS requests closest to your web visitor’s geographic location using Yottaa’s globally distributed DNS network.;Elimination of DNS as a Single Point of Failure: Now you no longer need to settle for the typical single-location server offered by most commodity DNS registrars and/or hosting providers.;DNS Attack Protection: Guard your domain records and shield your origin records. Prevent malicious DNS exploits, protect your infrastructure and visitor experience by letting the Yottaa network absorb and block DNS attacks.;24/7 Detection and Alerts: Ensure your site’s availability and minimize service disruptions. Real-time alerts keep your team apprised of any potential issues.;Real Browser Testing: Analyze user experience around the world to you see what your visitors see. Define performance criteria, monitor key performance metrics for your site and benchmark against your competitors.;Actionable Intelligence: Diagnose problems using Site Monitor’s interactive data analysis and visualizations.;Real-world Testing: Using Yottaa’s global monitoring and testing network, you can test your web application via real browsers located at many locations around the world, using various last mile network connectivities to measure the end user experience.;Insightful Performance Tuning: Explore every asset’s impact on performance, identify bottlenecks using Yottaa’s interactive waterfall chart, and animate the page loading sequence to see what your users see.;Sampling Errors Eliminated: Schedule an unlimited number of tests to rigorously measure performance across the myriad of permutations that impact your online business.
Detect and recognize faces; Detect face with age, race, glasses, gender, mouth, eye information. Recognize objects, scenes, landmarks and more
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Statistics
GitHub Stars
-
GitHub Stars
-
GitHub Stars
192.3K
GitHub Forks
-
GitHub Forks
-
GitHub Forks
74.9K
Stacks
18
Stacks
5
Stacks
3.9K
Followers
27
Followers
25
Followers
3.5K
Votes
0
Votes
0
Votes
106
Pros & Cons
No community feedback yet
No community feedback yet
Pros
  • 32
    High Performance
  • 19
    Connect Research and Production
  • 16
    Deep Flexibility
  • 12
    Auto-Differentiation
  • 11
    True Portability
Cons
  • 9
    Hard
  • 6
    Hard to debug
  • 2
    Documentation not very helpful
Integrations
No integrations availableNo integrations available
JavaScript
JavaScript

What are some alternatives to Yottaa, Rekognition API, TensorFlow?

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.

Keras

Keras

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

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

Polyaxon

Polyaxon

An enterprise-grade open source platform for building, training, and monitoring large scale deep learning applications.

Streamlit

Streamlit

It is the app framework specifically for Machine Learning and Data Science teams. You can rapidly build the tools you need. Build apps in a dozen lines of Python with a simple API.

MLflow

MLflow

MLflow is an open source platform for managing the end-to-end machine learning lifecycle.

H2O

H2O

H2O.ai is the maker behind H2O, the leading open source machine learning platform for smarter applications and data products. H2O operationalizes data science by developing and deploying algorithms and models for R, Python and the Sparkling Water API for Spark.

PredictionIO

PredictionIO

PredictionIO is an open source machine learning server for software developers to create predictive features, such as personalization, recommendation and content discovery.

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