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  1. Stackups
  2. AI
  3. Text & Language Models
  4. NLP Sentiment Analysis
  5. Google Cloud Natural Language API vs Semantria

Google Cloud Natural Language API vs Semantria

OverviewComparisonAlternatives

Overview

Semantria
Semantria
Stacks1
Followers11
Votes0
Google Cloud Natural Language API
Google Cloud Natural Language API
Stacks46
Followers131
Votes0

Google Cloud Natural Language API vs Semantria: What are the differences?

# Differences between Google Cloud Natural Language API and Semantria

Google Cloud Natural Language API and Semantria both offer natural language processing capabilities but have key differences that differentiate them. 

1. **Language Support**: Google Cloud Natural Language API supports a wide range of languages, including English, Spanish, Chinese, and Japanese, while Semantria primarily focuses on English language support, limiting its multilingual capabilities.
2. **Text Analysis Features**: Google Cloud Natural Language API provides sentiment analysis, entity recognition, and syntax analysis, whereas Semantria offers advanced text analysis features such as theme extraction, categorization, and concept analysis.
3. **Customization Options**: Google Cloud Natural Language API allows users to train custom models using AutoML, enabling tailored solutions for specific use cases, while Semantria offers predefined models without extensive customization options.
4. **Deployment Options**: Google Cloud Natural Language API is offered as a cloud service with scalable deployment options, while Semantria provides on-premises deployment for users who require data privacy and control.
5. **Pricing Structure**: Google Cloud Natural Language API follows a pay-as-you-go pricing model with usage-based charges, while Semantria offers various subscription plans based on volume and usage needs, catering to different budget requirements.
6. **Integration Capabilities**: Google Cloud Natural Language API seamlessly integrates with other Google Cloud services such as BigQuery and Dataflow, whereas Semantria offers integration options with third-party tools and platforms for a more versatile ecosystem.

In Summary, Google Cloud Natural Language API and Semantria differ in language support, text analysis features, customization options, deployment options, pricing structure, and integration capabilities, catering to diverse user preferences and requirements. 

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Detailed Comparison

Semantria
Semantria
Google Cloud Natural Language API
Google Cloud Natural Language API

Semantria applies Text and Sentiment Analysis to tweets, facebook posts, surveys, reviews or enterprise content.

You can use it to extract information about people, places, events and much more, mentioned in text documents, news articles or blog posts. You can use it to understand sentiment about your product on social media or parse intent from customer conversations happening in a call center or a messaging app. You can analyze text uploaded in your request or integrate with your document storage on Google Cloud Storage.

Supports C++, Java, .Net, PHP, Python, Ruby, Javascript;Excel add-in installs and runs directly in your Microsoft Excel;Concept Matrix and Deep Learning;Content Discovery;Named Entity Extraction;Theme Extraction;Text Summarization;Query Categorization;Facets and Attributes;Crawling and Automatic Text Extraction;Wikipedia-based categorization technology
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Statistics
Stacks
1
Stacks
46
Followers
11
Followers
131
Votes
0
Votes
0
Pros & Cons
No community feedback yet
Cons
  • 2
    Multi-lingual
Integrations
Zapier
Zapier
Diffbot
Diffbot
import.io
import.io
No integrations available

What are some alternatives to Semantria, Google Cloud Natural Language API?

rasa NLU

rasa NLU

rasa NLU (Natural Language Understanding) is a tool for intent classification and entity extraction. You can think of rasa NLU as a set of high level APIs for building your own language parser using existing NLP and ML libraries.

SpaCy

SpaCy

It is a library for advanced Natural Language Processing in Python and Cython. It's built on the very latest research, and was designed from day one to be used in real products. It comes with pre-trained statistical models and word vectors, and currently supports tokenization for 49+ languages.

Speechly

Speechly

It can be used to complement any regular touch user interface with a real time voice user interface. It offers real time feedback for faster and more intuitive experience that enables end user to recover from possible errors quickly and with no interruptions.

MonkeyLearn

MonkeyLearn

Turn emails, tweets, surveys or any text into actionable data. Automate business workflows and saveExtract and classify information from text. Integrate with your App within minutes. Get started for free.

Jina

Jina

It is geared towards building search systems for any kind of data, including text, images, audio, video and many more. With the modular design & multi-layer abstraction, you can leverage the efficient patterns to build the system by parts, or chaining them into a Flow for an end-to-end experience.

Sentence Transformers

Sentence Transformers

It provides an easy method to compute dense vector representations for sentences, paragraphs, and images. The models are based on transformer networks like BERT / RoBERTa / XLM-RoBERTa etc. and achieve state-of-the-art performance in various tasks.

FastText

FastText

It is an open-source, free, lightweight library that allows users to learn text representations and text classifiers. It works on standard, generic hardware. Models can later be reduced in size to even fit on mobile devices.

CoreNLP

CoreNLP

It provides a set of natural language analysis tools written in Java. It can take raw human language text input and give the base forms of words, their parts of speech, whether they are names of companies, people, etc., normalize and interpret dates, times, and numeric quantities, mark up the structure of sentences in terms of phrases or word dependencies, and indicate which noun phrases refer to the same entities.

Flair

Flair

Flair allows you to apply our state-of-the-art natural language processing (NLP) models to your text, such as named entity recognition (NER), part-of-speech tagging (PoS), sense disambiguation and classification.

Transformers

Transformers

It provides general-purpose architectures (BERT, GPT-2, RoBERTa, XLM, DistilBert, XLNet…) for Natural Language Understanding (NLU) and Natural Language Generation (NLG) with over 32+ pretrained models in 100+ languages and deep interoperability between TensorFlow 2.0 and PyTorch.

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