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Best Natural Language Understanding (NLU) Software

Matthew Miller
MM
Researched and written by Matthew Miller

Natural language understanding (NLU), a form of natural language processing (NLP), allows users to better understand text through machine learning algorithms and statistical methods. These algorithms take language as an input and provide a variety of outputs based on the required task, including part-of-speech tagging, automatic summarization, Named Entity Recognition, sentiment analysis, emotion detection, parsing, tokenization, lemmatization, language detection, and more.

Some example use cases include chatbots, translation applications, and social media monitoring tools that scan Facebook and Twitter for mentions. NLU algorithms are an example of a deep learning algorithm and may be a prebuilt offering in an AI platform.

To qualify for inclusion in the Natural Language Understanding category, a product must:

Provide a deep learning algorithm specifically for human language interaction
Connect with language data pools to learn a specific solution or function
Consume the language as an input and provide an outputted solution

Best Natural Language Understanding (NLU) Software At A Glance

G2 takes pride in showing unbiased reviews on user satisfaction in our ratings and reports. We do not allow paid placements in any of our ratings, rankings, or reports. Learn about our scoring methodologies.

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47 Listings in Natural Language Understanding (NLU) Available
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Make your content and apps multilingual with fast, dynamic machine translation available in thousands of language pairs.

    Users
    • Software Engineer
    • Data Engineer
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 52% Small-Business
    • 24% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Google Cloud Translation API Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Translation Services
    153
    Ease of Use
    147
    Language Support
    97
    Multilingual Support
    94
    Accuracy
    88
    Cons
    Translation Accuracy
    83
    Accuracy Issues
    57
    Expensive
    56
    Limited Language Support
    39
    Translation Limitations
    37
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Google Cloud Translation API features and usability ratings that predict user satisfaction
    8.7
    Summarization
    Average: 8.9
    8.8
    Language Detection
    Average: 8.8
    8.8
    Part of Speech Tagging
    Average: 8.5
    8.5
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Google
    Year Founded
    1998
    HQ Location
    Mountain View, CA
    Twitter
    @google
    32,750,646 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    310,061 employees on LinkedIn®
    Ownership
    NASDAQ:GOOG
Product Description
How are these determined?Information
This description is provided by the seller.

Make your content and apps multilingual with fast, dynamic machine translation available in thousands of language pairs.

Users
  • Software Engineer
  • Data Engineer
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 52% Small-Business
  • 24% Enterprise
Google Cloud Translation API Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Translation Services
153
Ease of Use
147
Language Support
97
Multilingual Support
94
Accuracy
88
Cons
Translation Accuracy
83
Accuracy Issues
57
Expensive
56
Limited Language Support
39
Translation Limitations
37
Google Cloud Translation API features and usability ratings that predict user satisfaction
8.7
Summarization
Average: 8.9
8.8
Language Detection
Average: 8.8
8.8
Part of Speech Tagging
Average: 8.5
8.5
Quality of Support
Average: 8.4
Seller Details
Seller
Google
Year Founded
1998
HQ Location
Mountain View, CA
Twitter
@google
32,750,646 Twitter followers
LinkedIn® Page
www.linkedin.com
310,061 employees on LinkedIn®
Ownership
NASDAQ:GOOG
(112)4.3 out of 5
1st Easiest To Use in Natural Language Understanding (NLU) software
View top Consulting Services for Google Cloud Natural Language API
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Entry Level Price:Free
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Derive insights from unstructured text using Google machine learning.

    Users
    • Software Engineer
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 47% Small-Business
    • 19% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Google Cloud Natural Language API Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    NLP Capabilities
    30
    Ease of Use
    29
    Accuracy
    18
    Sentiment Analysis
    17
    Natural Language Processing
    16
    Cons
    Expensive
    10
    Limitations
    5
    Limited Language Support
    4
    Poor Documentation
    4
    Pricing Issues
    4
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Google Cloud Natural Language API features and usability ratings that predict user satisfaction
    8.6
    Summarization
    Average: 8.9
    8.8
    Language Detection
    Average: 8.8
    8.6
    Part of Speech Tagging
    Average: 8.5
    8.6
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Google
    Year Founded
    1998
    HQ Location
    Mountain View, CA
    Twitter
    @google
    32,750,646 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    310,061 employees on LinkedIn®
    Ownership
    NASDAQ:GOOG
Product Description
How are these determined?Information
This description is provided by the seller.

Derive insights from unstructured text using Google machine learning.

Users
  • Software Engineer
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 47% Small-Business
  • 19% Enterprise
Google Cloud Natural Language API Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
NLP Capabilities
30
Ease of Use
29
Accuracy
18
Sentiment Analysis
17
Natural Language Processing
16
Cons
Expensive
10
Limitations
5
Limited Language Support
4
Poor Documentation
4
Pricing Issues
4
Google Cloud Natural Language API features and usability ratings that predict user satisfaction
8.6
Summarization
Average: 8.9
8.8
Language Detection
Average: 8.8
8.6
Part of Speech Tagging
Average: 8.5
8.6
Quality of Support
Average: 8.4
Seller Details
Seller
Google
Year Founded
1998
HQ Location
Mountain View, CA
Twitter
@google
32,750,646 Twitter followers
LinkedIn® Page
www.linkedin.com
310,061 employees on LinkedIn®
Ownership
NASDAQ:GOOG

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(147)4.3 out of 5
2nd Easiest To Use in Natural Language Understanding (NLU) software
View top Consulting Services for Meta Llama 3
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Experience the state-of-the-art performance of Llama 3, an openly accessible model that excels at language nuances, contextual understanding, and complex tasks like translation and dialogue generation

    Users
    • Software Engineer
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 57% Small-Business
    • 24% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Meta Llama 3 Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Accuracy
    35
    Ease of Use
    31
    Speed
    30
    Open-Source
    26
    Helpful
    24
    Cons
    Limitations
    26
    Slow Performance
    18
    Poor Response Quality
    16
    Inaccuracy
    13
    Limited Understanding
    11
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Meta Llama 3 features and usability ratings that predict user satisfaction
    8.7
    Summarization
    Average: 8.9
    8.4
    Language Detection
    Average: 8.8
    7.6
    Part of Speech Tagging
    Average: 8.5
    7.1
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2008
    HQ Location
    Menlo Park, CA
    Twitter
    @Meta
    13,563,890 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    126,735 employees on LinkedIn®
    Ownership
    NASDAQ: META
Product Description
How are these determined?Information
This description is provided by the seller.

Experience the state-of-the-art performance of Llama 3, an openly accessible model that excels at language nuances, contextual understanding, and complex tasks like translation and dialogue generation

Users
  • Software Engineer
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 57% Small-Business
  • 24% Mid-Market
Meta Llama 3 Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Accuracy
35
Ease of Use
31
Speed
30
Open-Source
26
Helpful
24
Cons
Limitations
26
Slow Performance
18
Poor Response Quality
16
Inaccuracy
13
Limited Understanding
11
Meta Llama 3 features and usability ratings that predict user satisfaction
8.7
Summarization
Average: 8.9
8.4
Language Detection
Average: 8.8
7.6
Part of Speech Tagging
Average: 8.5
7.1
Quality of Support
Average: 8.4
Seller Details
Year Founded
2008
HQ Location
Menlo Park, CA
Twitter
@Meta
13,563,890 Twitter followers
LinkedIn® Page
www.linkedin.com
126,735 employees on LinkedIn®
Ownership
NASDAQ: META
(77)4.3 out of 5
3rd Easiest To Use in Natural Language Understanding (NLU) software
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Azure AI Language is a managed service for developing natural language processing applications. Identify key terms and phrases, analyze sentiment, summarize text, and build conversational interfaces.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 42% Small-Business
    • 32% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Azure AI Language Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Understanding
    2
    Accuracy
    1
    Experience Satisfaction
    1
    Natural Language Processing
    1
    Response Accuracy
    1
    Cons
    This product has not yet received any negative sentiments.
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Azure AI Language features and usability ratings that predict user satisfaction
    8.2
    Summarization
    Average: 8.9
    8.5
    Language Detection
    Average: 8.8
    8.1
    Part of Speech Tagging
    Average: 8.5
    8.4
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Microsoft
    Year Founded
    1975
    HQ Location
    Redmond, Washington
    Twitter
    @microsoft
    14,002,464 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    237,523 employees on LinkedIn®
    Ownership
    MSFT
Product Description
How are these determined?Information
This description is provided by the seller.

Azure AI Language is a managed service for developing natural language processing applications. Identify key terms and phrases, analyze sentiment, summarize text, and build conversational interfaces.

Users
No information available
Industries
No information available
Market Segment
  • 42% Small-Business
  • 32% Enterprise
Azure AI Language Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Understanding
2
Accuracy
1
Experience Satisfaction
1
Natural Language Processing
1
Response Accuracy
1
Cons
This product has not yet received any negative sentiments.
Azure AI Language features and usability ratings that predict user satisfaction
8.2
Summarization
Average: 8.9
8.5
Language Detection
Average: 8.8
8.1
Part of Speech Tagging
Average: 8.5
8.4
Quality of Support
Average: 8.4
Seller Details
Seller
Microsoft
Year Founded
1975
HQ Location
Redmond, Washington
Twitter
@microsoft
14,002,464 Twitter followers
LinkedIn® Page
www.linkedin.com
237,523 employees on LinkedIn®
Ownership
MSFT
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Amazon Comprehend is a natural language processing (NLP) service that uses machine learning to find insights and relationships in text. Amazon Comprehend identifies the language of the text; extracts

    Users
    No information available
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 39% Mid-Market
    • 38% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Amazon Comprehend features and usability ratings that predict user satisfaction
    8.6
    Summarization
    Average: 8.9
    8.3
    Language Detection
    Average: 8.8
    8.7
    Part of Speech Tagging
    Average: 8.5
    8.4
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2006
    HQ Location
    Seattle, WA
    Twitter
    @awscloud
    2,229,471 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    143,150 employees on LinkedIn®
    Ownership
    NASDAQ: AMZN
Product Description
How are these determined?Information
This description is provided by the seller.

Amazon Comprehend is a natural language processing (NLP) service that uses machine learning to find insights and relationships in text. Amazon Comprehend identifies the language of the text; extracts

Users
No information available
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 39% Mid-Market
  • 38% Small-Business
Amazon Comprehend features and usability ratings that predict user satisfaction
8.6
Summarization
Average: 8.9
8.3
Language Detection
Average: 8.8
8.7
Part of Speech Tagging
Average: 8.5
8.4
Quality of Support
Average: 8.4
Seller Details
Year Founded
2006
HQ Location
Seattle, WA
Twitter
@awscloud
2,229,471 Twitter followers
LinkedIn® Page
www.linkedin.com
143,150 employees on LinkedIn®
Ownership
NASDAQ: AMZN
(15)4.5 out of 5
View top Consulting Services for Google Cloud AutoML Natural Language
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    The powerful pre-trained models of the Natural Language API let developers work with natural language understanding features including sentiment analysis, entity analysis, entity sentiment analysis, c

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 53% Small-Business
    • 27% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Google Cloud AutoML Natural Language features and usability ratings that predict user satisfaction
    9.4
    Summarization
    Average: 8.9
    8.3
    Language Detection
    Average: 8.8
    8.6
    Part of Speech Tagging
    Average: 8.5
    8.5
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Google
    Year Founded
    1998
    HQ Location
    Mountain View, CA
    Twitter
    @google
    32,750,646 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    310,061 employees on LinkedIn®
    Ownership
    NASDAQ:GOOG
Product Description
How are these determined?Information
This description is provided by the seller.

The powerful pre-trained models of the Natural Language API let developers work with natural language understanding features including sentiment analysis, entity analysis, entity sentiment analysis, c

Users
No information available
Industries
No information available
Market Segment
  • 53% Small-Business
  • 27% Enterprise
Google Cloud AutoML Natural Language features and usability ratings that predict user satisfaction
9.4
Summarization
Average: 8.9
8.3
Language Detection
Average: 8.8
8.6
Part of Speech Tagging
Average: 8.5
8.5
Quality of Support
Average: 8.4
Seller Details
Seller
Google
Year Founded
1998
HQ Location
Mountain View, CA
Twitter
@google
32,750,646 Twitter followers
LinkedIn® Page
www.linkedin.com
310,061 employees on LinkedIn®
Ownership
NASDAQ:GOOG
(319)4.7 out of 5
5th Easiest To Use in Natural Language Understanding (NLU) software
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    InMoment, the leader in improving experiences and the highest recommended CX platform and services company in the world is renowned for helping clients collect and integrate customer experience data t

    Users
    • Product Manager
    • Customer Success Manager
    Industries
    • Computer Software
    • Information Technology and Services
    Market Segment
    • 47% Small-Business
    • 39% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • InMoment Experience Improvement (XI) Platform Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Customer Feedback
    5
    Feedback Management
    5
    Helpful
    4
    Data Management
    3
    Ease of Use
    3
    Cons
    Filtering Issues
    3
    Difficult Reporting
    2
    Expensive
    2
    Limitations
    2
    Limited Customization
    2
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • InMoment Experience Improvement (XI) Platform features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    9.0
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    InMoment
    Year Founded
    2002
    HQ Location
    Salt Lake City, UT
    Twitter
    @WeAreInMoment
    1,899 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    741 employees on LinkedIn®
    Phone
    905-542-9001
Product Description
How are these determined?Information
This description is provided by the seller.

InMoment, the leader in improving experiences and the highest recommended CX platform and services company in the world is renowned for helping clients collect and integrate customer experience data t

Users
  • Product Manager
  • Customer Success Manager
Industries
  • Computer Software
  • Information Technology and Services
Market Segment
  • 47% Small-Business
  • 39% Mid-Market
InMoment Experience Improvement (XI) Platform Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Customer Feedback
5
Feedback Management
5
Helpful
4
Data Management
3
Ease of Use
3
Cons
Filtering Issues
3
Difficult Reporting
2
Expensive
2
Limitations
2
Limited Customization
2
InMoment Experience Improvement (XI) Platform features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
9.0
Quality of Support
Average: 8.4
Seller Details
Seller
InMoment
Year Founded
2002
HQ Location
Salt Lake City, UT
Twitter
@WeAreInMoment
1,899 Twitter followers
LinkedIn® Page
www.linkedin.com
741 employees on LinkedIn®
Phone
905-542-9001
(10)4.3 out of 5
4th Easiest To Use in Natural Language Understanding (NLU) software
Save to My Lists
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Stanford CoreNLP provides a set of natural language analysis tools that can give the base forms of words, their parts of speech, whether they are names of companies, people, etc., normalize dates, tim

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 60% Small-Business
    • 20% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Stanford CoreNLP features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    6.7
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    HQ Location
    Stanford, CA
    Twitter
    @stanfordnlp
    167,474 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Stanford CoreNLP provides a set of natural language analysis tools that can give the base forms of words, their parts of speech, whether they are names of companies, people, etc., normalize dates, tim

Users
No information available
Industries
No information available
Market Segment
  • 60% Small-Business
  • 20% Enterprise
Stanford CoreNLP features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
6.7
Quality of Support
Average: 8.4
Seller Details
HQ Location
Stanford, CA
Twitter
@stanfordnlp
167,474 Twitter followers
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Gensim is a Python library that analyze plain-text documents for semantic structure and retrieve semantically similar document.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 53% Small-Business
    • 27% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Gensim features and usability ratings that predict user satisfaction
    7.6
    Summarization
    Average: 8.9
    7.6
    Language Detection
    Average: 8.8
    8.0
    Part of Speech Tagging
    Average: 8.5
    9.1
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    HQ Location
    N/A
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Gensim is a Python library that analyze plain-text documents for semantic structure and retrieve semantically similar document.

Users
No information available
Industries
No information available
Market Segment
  • 53% Small-Business
  • 27% Enterprise
Gensim features and usability ratings that predict user satisfaction
7.6
Summarization
Average: 8.9
7.6
Language Detection
Average: 8.8
8.0
Part of Speech Tagging
Average: 8.5
9.1
Quality of Support
Average: 8.4
Seller Details
HQ Location
N/A
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    The Industry’s Only Low‑Code, Integrated, End‑to‑End Intelligent Automation Solution Tungsten TotalAgility is a powerful all-in-one solution that combines document and process intelligence using the

    Users
    No information available
    Industries
    • Banking
    • Information Technology and Services
    Market Segment
    • 53% Enterprise
    • 31% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Tungsten TotalAgility Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Data Extraction
    3
    Ease of Use
    3
    Automation
    2
    Low Code
    2
    Process Automation
    2
    Cons
    App Limitations
    1
    Cloud Integration
    1
    Compatibility Issues
    1
    Complexity
    1
    Complex Pricing
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Tungsten TotalAgility features and usability ratings that predict user satisfaction
    10.0
    Summarization
    Average: 8.9
    10.0
    Language Detection
    Average: 8.8
    10.0
    Part of Speech Tagging
    Average: 8.5
    8.3
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    1985
    HQ Location
    Irvine, California
    Twitter
    @TungstenAI
    6,452 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    1,163 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

The Industry’s Only Low‑Code, Integrated, End‑to‑End Intelligent Automation Solution Tungsten TotalAgility is a powerful all-in-one solution that combines document and process intelligence using the

Users
No information available
Industries
  • Banking
  • Information Technology and Services
Market Segment
  • 53% Enterprise
  • 31% Mid-Market
Tungsten TotalAgility Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Data Extraction
3
Ease of Use
3
Automation
2
Low Code
2
Process Automation
2
Cons
App Limitations
1
Cloud Integration
1
Compatibility Issues
1
Complexity
1
Complex Pricing
1
Tungsten TotalAgility features and usability ratings that predict user satisfaction
10.0
Summarization
Average: 8.9
10.0
Language Detection
Average: 8.8
10.0
Part of Speech Tagging
Average: 8.5
8.3
Quality of Support
Average: 8.4
Seller Details
Year Founded
1985
HQ Location
Irvine, California
Twitter
@TungstenAI
6,452 Twitter followers
LinkedIn® Page
www.linkedin.com
1,163 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    MITIE: MIT Information Extraction is a tool that include performing named entity extraction and binary relation detection for training custom extractors and relation detectors.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 42% Enterprise
    • 33% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • MITIE: MIT Information Extraction features and usability ratings that predict user satisfaction
    8.3
    Summarization
    Average: 8.9
    8.3
    Language Detection
    Average: 8.8
    8.9
    Part of Speech Tagging
    Average: 8.5
    9.4
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    MITIE
    Year Founded
    1987
    HQ Location
    London, UK
    LinkedIn® Page
    www.linkedin.com
    17,460 employees on LinkedIn®
    Ownership
    LON: MTO
Product Description
How are these determined?Information
This description is provided by the seller.

MITIE: MIT Information Extraction is a tool that include performing named entity extraction and binary relation detection for training custom extractors and relation detectors.

Users
No information available
Industries
No information available
Market Segment
  • 42% Enterprise
  • 33% Small-Business
MITIE: MIT Information Extraction features and usability ratings that predict user satisfaction
8.3
Summarization
Average: 8.9
8.3
Language Detection
Average: 8.8
8.9
Part of Speech Tagging
Average: 8.5
9.4
Quality of Support
Average: 8.4
Seller Details
Seller
MITIE
Year Founded
1987
HQ Location
London, UK
LinkedIn® Page
www.linkedin.com
17,460 employees on LinkedIn®
Ownership
LON: MTO
(162)4.6 out of 5
Optimized for quick response
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Level AI develops advanced AI technologies to revolutionize the customer experience. Our state-of-the-art AI-native solutions are designed to drive efficiency, productivity, scale, and excellence

    Users
    • Supervisor
    Industries
    • Consumer Services
    • Printing
    Market Segment
    • 57% Mid-Market
    • 30% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Level AI Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    43
    Helpful
    36
    Efficiency
    26
    Accuracy
    24
    User Interface
    17
    Cons
    AI Inaccuracy
    12
    Inaccuracy
    12
    Accuracy Issues
    11
    Slow Performance
    10
    Call Issues
    9
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Level AI features and usability ratings that predict user satisfaction
    9.7
    Summarization
    Average: 8.9
    8.9
    Language Detection
    Average: 8.8
    9.2
    Part of Speech Tagging
    Average: 8.5
    9.0
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Level AI
    Company Website
    Year Founded
    2018
    HQ Location
    Mountain View, US
    Twitter
    @TheLevelAI
    199 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    193 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Level AI develops advanced AI technologies to revolutionize the customer experience. Our state-of-the-art AI-native solutions are designed to drive efficiency, productivity, scale, and excellence

Users
  • Supervisor
Industries
  • Consumer Services
  • Printing
Market Segment
  • 57% Mid-Market
  • 30% Enterprise
Level AI Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
43
Helpful
36
Efficiency
26
Accuracy
24
User Interface
17
Cons
AI Inaccuracy
12
Inaccuracy
12
Accuracy Issues
11
Slow Performance
10
Call Issues
9
Level AI features and usability ratings that predict user satisfaction
9.7
Summarization
Average: 8.9
8.9
Language Detection
Average: 8.8
9.2
Part of Speech Tagging
Average: 8.5
9.0
Quality of Support
Average: 8.4
Seller Details
Seller
Level AI
Company Website
Year Founded
2018
HQ Location
Mountain View, US
Twitter
@TheLevelAI
199 Twitter followers
LinkedIn® Page
www.linkedin.com
193 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    NLTK is a platform for building Python programs to work with human language data that provides interfaces to corpora and lexical resources such as WordNet, along with a suite of text processing librar

    Users
    • Data Scientist
    • Software Engineer
    Industries
    • Information Technology and Services
    • Computer Software
    Market Segment
    • 52% Small-Business
    • 29% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • NLTK features and usability ratings that predict user satisfaction
    7.4
    Summarization
    Average: 8.9
    7.0
    Language Detection
    Average: 8.8
    7.4
    Part of Speech Tagging
    Average: 8.5
    8.2
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    HQ Location
    N/A
    Twitter
    @NLTK_org
    2,351 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

NLTK is a platform for building Python programs to work with human language data that provides interfaces to corpora and lexical resources such as WordNet, along with a suite of text processing librar

Users
  • Data Scientist
  • Software Engineer
Industries
  • Information Technology and Services
  • Computer Software
Market Segment
  • 52% Small-Business
  • 29% Enterprise
NLTK features and usability ratings that predict user satisfaction
7.4
Summarization
Average: 8.9
7.0
Language Detection
Average: 8.8
7.4
Part of Speech Tagging
Average: 8.5
8.2
Quality of Support
Average: 8.4
Seller Details
HQ Location
N/A
Twitter
@NLTK_org
2,351 Twitter followers
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Apache OpenNLP library is a machine learning based toolkit for the processing of natural language text that supports the common NLP tasks, such as tokenization, sentence segmentation, part-of-speech t

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 64% Small-Business
    • 18% Mid-Market
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • openNLP features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    7.0
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    1999
    HQ Location
    Wakefield, MA
    Twitter
    @TheASF
    65,927 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    2,298 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Apache OpenNLP library is a machine learning based toolkit for the processing of natural language text that supports the common NLP tasks, such as tokenization, sentence segmentation, part-of-speech t

Users
No information available
Industries
No information available
Market Segment
  • 64% Small-Business
  • 18% Mid-Market
openNLP features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
7.0
Quality of Support
Average: 8.4
Seller Details
Year Founded
1999
HQ Location
Wakefield, MA
Twitter
@TheASF
65,927 Twitter followers
LinkedIn® Page
www.linkedin.com
2,298 employees on LinkedIn®
(56)4.4 out of 5
View top Consulting Services for Claude
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Claude is AI for all of us. Whether you're brainstorming alone or building with a team of thousands, Claude is here to help.

    Users
    No information available
    Industries
    • Marketing and Advertising
    • Computer Software
    Market Segment
    • 71% Small-Business
    • 20% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Claude Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Useful
    24
    Ease of Use
    17
    Helpful
    17
    Accuracy
    9
    Communication
    9
    Cons
    Usage Limitations
    19
    AI Limitations
    10
    Inaccurate Recognition
    8
    Accuracy Issues
    5
    Context Understanding
    5
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Claude features and usability ratings that predict user satisfaction
    10.0
    Summarization
    Average: 8.9
    9.4
    Language Detection
    Average: 8.8
    8.9
    Part of Speech Tagging
    Average: 8.5
    7.6
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Anthropic
    HQ Location
    San Francisco, California
    Twitter
    @AnthropicAI
    574,848 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    1,574 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Claude is AI for all of us. Whether you're brainstorming alone or building with a team of thousands, Claude is here to help.

Users
No information available
Industries
  • Marketing and Advertising
  • Computer Software
Market Segment
  • 71% Small-Business
  • 20% Mid-Market
Claude Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Useful
24
Ease of Use
17
Helpful
17
Accuracy
9
Communication
9
Cons
Usage Limitations
19
AI Limitations
10
Inaccurate Recognition
8
Accuracy Issues
5
Context Understanding
5
Claude features and usability ratings that predict user satisfaction
10.0
Summarization
Average: 8.9
9.4
Language Detection
Average: 8.8
8.9
Part of Speech Tagging
Average: 8.5
7.6
Quality of Support
Average: 8.4
Seller Details
Seller
Anthropic
HQ Location
San Francisco, California
Twitter
@AnthropicAI
574,848 Twitter followers
LinkedIn® Page
www.linkedin.com
1,574 employees on LinkedIn®
  • Overview
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  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    scite is an award-winning research tool that helps users better discover, understand, and evaluate research through Smart Citations. Smart Citations display the context of the citation and describe wh

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Small-Business
    • 38% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • scite.ai Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Useful
    6
    Ease of Use
    4
    Helpful
    3
    Customization
    2
    Efficiency
    2
    Cons
    AI Limitations
    4
    Accuracy Issues
    1
    Inaccuracy
    1
    Limitations
    1
    Recording Issues
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • scite.ai features and usability ratings that predict user satisfaction
    8.9
    Summarization
    Average: 8.9
    8.3
    Language Detection
    Average: 8.8
    6.7
    Part of Speech Tagging
    Average: 8.5
    9.7
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    scite.ai
    Year Founded
    2018
    HQ Location
    New York, US
    LinkedIn® Page
    www.linkedin.com
    5 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

scite is an award-winning research tool that helps users better discover, understand, and evaluate research through Smart Citations. Smart Citations display the context of the citation and describe wh

Users
No information available
Industries
No information available
Market Segment
  • 50% Small-Business
  • 38% Enterprise
scite.ai Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Useful
6
Ease of Use
4
Helpful
3
Customization
2
Efficiency
2
Cons
AI Limitations
4
Accuracy Issues
1
Inaccuracy
1
Limitations
1
Recording Issues
1
scite.ai features and usability ratings that predict user satisfaction
8.9
Summarization
Average: 8.9
8.3
Language Detection
Average: 8.8
6.7
Part of Speech Tagging
Average: 8.5
9.7
Quality of Support
Average: 8.4
Seller Details
Seller
scite.ai
Year Founded
2018
HQ Location
New York, US
LinkedIn® Page
www.linkedin.com
5 employees on LinkedIn®
(169)4.5 out of 5
Optimized for quick response
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  • Overview
    Expand/Collapse Overview
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Seller Details
    Expand/Collapse Seller Details
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Marvin processes structured data for software development, enhancing your software development process.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Small-Business
    • 33% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Marvin AI Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    9
    AI Technology
    3
    Intuitive
    3
    Model Variety
    3
    Open-Source
    3
    Cons
    Usage Limitations
    3
    AI Limitations
    2
    Limitations
    2
    Complex Implementation
    1
    Complex Setup
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Marvin AI features and usability ratings that predict user satisfaction
    7.5
    Summarization
    Average: 8.9
    8.3
    Language Detection
    Average: 8.8
    6.7
    Part of Speech Tagging
    Average: 8.5
    8.0
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    HQ Location
    N/A
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Marvin processes structured data for software development, enhancing your software development process.

Users
No information available
Industries
No information available
Market Segment
  • 50% Small-Business
  • 33% Mid-Market
Marvin AI Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
9
AI Technology
3
Intuitive
3
Model Variety
3
Open-Source
3
Cons
Usage Limitations
3
AI Limitations
2
Limitations
2
Complex Implementation
1
Complex Setup
1
Marvin AI features and usability ratings that predict user satisfaction
7.5
Summarization
Average: 8.9
8.3
Language Detection
Average: 8.8
6.7
Part of Speech Tagging
Average: 8.5
8.0
Quality of Support
Average: 8.4
Seller Details
HQ Location
N/A
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    The ultimate tool for understanding the information that matters most to you, built with Gemini 2.0

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Small-Business
    • 50% Enterprise
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Google NotebookLM features and usability ratings that predict user satisfaction
    10.0
    Summarization
    Average: 8.9
    10.0
    Language Detection
    Average: 8.8
    8.3
    Part of Speech Tagging
    Average: 8.5
    10.0
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Google
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

The ultimate tool for understanding the information that matters most to you, built with Gemini 2.0

Users
No information available
Industries
No information available
Market Segment
  • 50% Small-Business
  • 50% Enterprise
Google NotebookLM features and usability ratings that predict user satisfaction
10.0
Summarization
Average: 8.9
10.0
Language Detection
Average: 8.8
8.3
Part of Speech Tagging
Average: 8.5
10.0
Quality of Support
Average: 8.4
Seller Details
Seller
Google
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    All the talk about qualitative data analysis is for naught if you can’t understand language as it is spoken. That is what Natural Language Processing (NLP) is all about. NewSci NLP brings this power t

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Mid-Market
    • 50% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • NewSci AI-Readines Services Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Accuracy
    1
    AI Insights
    1
    Data Analysis
    1
    Efficiency
    1
    Helpful
    1
    Cons
    Inefficiency
    1
    Slow Performance
    1
    Slow Processing
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • NewSci AI-Readines Services features and usability ratings that predict user satisfaction
    10.0
    Summarization
    Average: 8.9
    10.0
    Language Detection
    Average: 8.8
    10.0
    Part of Speech Tagging
    Average: 8.5
    7.5
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    NewSci
    Year Founded
    2013
    HQ Location
    Tampa, US
    Twitter
    @New_Sci
    70 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    2 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

All the talk about qualitative data analysis is for naught if you can’t understand language as it is spoken. That is what Natural Language Processing (NLP) is all about. NewSci NLP brings this power t

Users
No information available
Industries
No information available
Market Segment
  • 50% Mid-Market
  • 50% Small-Business
NewSci AI-Readines Services Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Accuracy
1
AI Insights
1
Data Analysis
1
Efficiency
1
Helpful
1
Cons
Inefficiency
1
Slow Performance
1
Slow Processing
1
NewSci AI-Readines Services features and usability ratings that predict user satisfaction
10.0
Summarization
Average: 8.9
10.0
Language Detection
Average: 8.8
10.0
Part of Speech Tagging
Average: 8.5
7.5
Quality of Support
Average: 8.4
Seller Details
Seller
NewSci
Year Founded
2013
HQ Location
Tampa, US
Twitter
@New_Sci
70 Twitter followers
LinkedIn® Page
www.linkedin.com
2 employees on LinkedIn®
(2)3.8 out of 5
View top Consulting Services for NLP Studio
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  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    SparkCognition has developed a solution that automates workflows of unstructured data within organizations so humans can focus on high value business decisions. DeepNLP uses advanced machine learning

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Enterprise
    • 50% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • NLP Studio Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Implementation
    1
    Cons
    Inaccuracy
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • NLP Studio features and usability ratings that predict user satisfaction
    8.3
    Summarization
    Average: 8.9
    8.3
    Language Detection
    Average: 8.8
    8.3
    Part of Speech Tagging
    Average: 8.5
    8.3
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Avathon
    Year Founded
    2013
    HQ Location
    Austin, Texas
    LinkedIn® Page
    www.linkedin.com
    312 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

SparkCognition has developed a solution that automates workflows of unstructured data within organizations so humans can focus on high value business decisions. DeepNLP uses advanced machine learning

Users
No information available
Industries
No information available
Market Segment
  • 50% Enterprise
  • 50% Small-Business
NLP Studio Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Implementation
1
Cons
Inaccuracy
1
NLP Studio features and usability ratings that predict user satisfaction
8.3
Summarization
Average: 8.9
8.3
Language Detection
Average: 8.8
8.3
Part of Speech Tagging
Average: 8.5
8.3
Quality of Support
Average: 8.4
Seller Details
Seller
Avathon
Year Founded
2013
HQ Location
Austin, Texas
LinkedIn® Page
www.linkedin.com
312 employees on LinkedIn®
Entry Level Price:Starting at $15.00
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Tinq.ai is a simple, yet powerful natural language processing tool. It helps you easily implement text analysis within your projects.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 50% Enterprise
    • 50% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Tinq.ai Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    2
    Natural Language Processing
    1
    User Interface
    1
    Cons
    Subscription Cost
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Tinq.ai features and usability ratings that predict user satisfaction
    9.2
    Summarization
    Average: 8.9
    8.3
    Language Detection
    Average: 8.8
    8.3
    Part of Speech Tagging
    Average: 8.5
    9.2
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Tinq.ai
    HQ Location
    N/A
    LinkedIn® Page
    www.linkedin.com
    1 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Tinq.ai is a simple, yet powerful natural language processing tool. It helps you easily implement text analysis within your projects.

Users
No information available
Industries
No information available
Market Segment
  • 50% Enterprise
  • 50% Small-Business
Tinq.ai Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
2
Natural Language Processing
1
User Interface
1
Cons
Subscription Cost
1
Tinq.ai features and usability ratings that predict user satisfaction
9.2
Summarization
Average: 8.9
8.3
Language Detection
Average: 8.8
8.3
Part of Speech Tagging
Average: 8.5
9.2
Quality of Support
Average: 8.4
Seller Details
Seller
Tinq.ai
HQ Location
N/A
LinkedIn® Page
www.linkedin.com
1 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Enable your characters with human-like conversation capabilities in games and virtual world applications.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Convai Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Chatbot Communication
    1
    Customization
    1
    Setup Ease
    1
    Cons
    This product has not yet received any negative sentiments.
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Convai features and usability ratings that predict user satisfaction
    10.0
    Summarization
    Average: 8.9
    10.0
    Language Detection
    Average: 8.8
    10.0
    Part of Speech Tagging
    Average: 8.5
    10.0
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Convai
    HQ Location
    Melbourne , NZ
    LinkedIn® Page
    www.linkedin.com
    17 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Enable your characters with human-like conversation capabilities in games and virtual world applications.

Users
No information available
Industries
No information available
Market Segment
  • 100% Mid-Market
Convai Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Chatbot Communication
1
Customization
1
Setup Ease
1
Cons
This product has not yet received any negative sentiments.
Convai features and usability ratings that predict user satisfaction
10.0
Summarization
Average: 8.9
10.0
Language Detection
Average: 8.8
10.0
Part of Speech Tagging
Average: 8.5
10.0
Quality of Support
Average: 8.4
Seller Details
Seller
Convai
HQ Location
Melbourne , NZ
LinkedIn® Page
www.linkedin.com
17 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Expert.ai Studio is a fully integrated, low-code development environment for building and deploying custom AI-based text models to address any linguistic challenge. Our solution helps organizations an

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Enterprise
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Expert.ai Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    1
    Cons
    Lacking Features
    1
    Limited Features
    1
    Poor Customer Support
    1
    Poor Interface Design
    1
    UX Improvement
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Expert.ai features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Expert.ai
    HQ Location
    Rockville, MD
    LinkedIn® Page
    www.linkedin.com
    266 employees on LinkedIn®
    Ownership
    BIT:EXSY
    Total Revenue (USD mm)
    $31
Product Description
How are these determined?Information
This description is provided by the seller.

Expert.ai Studio is a fully integrated, low-code development environment for building and deploying custom AI-based text models to address any linguistic challenge. Our solution helps organizations an

Users
No information available
Industries
No information available
Market Segment
  • 100% Enterprise
Expert.ai Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
1
Cons
Lacking Features
1
Limited Features
1
Poor Customer Support
1
Poor Interface Design
1
UX Improvement
1
Expert.ai features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
0.0
No information available
Seller Details
Seller
Expert.ai
HQ Location
Rockville, MD
LinkedIn® Page
www.linkedin.com
266 employees on LinkedIn®
Ownership
BIT:EXSY
Total Revenue (USD mm)
$31
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Natural Text uses Machine Learning algorithms to identify similar phrases/lines between patent descriptions.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • NaturalText features and usability ratings that predict user satisfaction
    10.0
    Summarization
    Average: 8.9
    10.0
    Language Detection
    Average: 8.8
    10.0
    Part of Speech Tagging
    Average: 8.5
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2015
    HQ Location
    Ellicott City, US
    Twitter
    @naturaltext
    40 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    4 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Natural Text uses Machine Learning algorithms to identify similar phrases/lines between patent descriptions.

Users
No information available
Industries
No information available
Market Segment
  • 100% Small-Business
NaturalText features and usability ratings that predict user satisfaction
10.0
Summarization
Average: 8.9
10.0
Language Detection
Average: 8.8
10.0
Part of Speech Tagging
Average: 8.5
0.0
No information available
Seller Details
Year Founded
2015
HQ Location
Ellicott City, US
Twitter
@naturaltext
40 Twitter followers
LinkedIn® Page
www.linkedin.com
4 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    We're making better natural language understandingopen and accessible through simple APIs.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Small-Business
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Plasticity features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2016
    HQ Location
    McLean, US
    LinkedIn® Page
    www.linkedin.com
    4 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

We're making better natural language understandingopen and accessible through simple APIs.

Users
No information available
Industries
No information available
Market Segment
  • 100% Small-Business
Plasticity features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
0.0
No information available
Seller Details
Year Founded
2016
HQ Location
McLean, US
LinkedIn® Page
www.linkedin.com
4 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Spitch is a Swiss provider of solutions based on Automatic Speech Recognition (ASR) and voice biometrics, Voice User Interfaces (VUI), and natural language voice data analytics.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Spitch Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Artificial Intelligence
    1
    Customer Support
    1
    Language Support
    1
    Cons
    Accuracy Issues
    1
    Inaccurate Data Analysis
    1
    Integration Issues
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Spitch features and usability ratings that predict user satisfaction
    10.0
    Summarization
    Average: 8.9
    10.0
    Language Detection
    Average: 8.8
    10.0
    Part of Speech Tagging
    Average: 8.5
    10.0
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Spitch
    Year Founded
    2014
    HQ Location
    Stadtkreis 2, CH
    Twitter
    @Spitch_AG
    114 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    82 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Spitch is a Swiss provider of solutions based on Automatic Speech Recognition (ASR) and voice biometrics, Voice User Interfaces (VUI), and natural language voice data analytics.

Users
No information available
Industries
No information available
Market Segment
  • 100% Small-Business
Spitch Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Artificial Intelligence
1
Customer Support
1
Language Support
1
Cons
Accuracy Issues
1
Inaccurate Data Analysis
1
Integration Issues
1
Spitch features and usability ratings that predict user satisfaction
10.0
Summarization
Average: 8.9
10.0
Language Detection
Average: 8.8
10.0
Part of Speech Tagging
Average: 8.5
10.0
Quality of Support
Average: 8.4
Seller Details
Seller
Spitch
Year Founded
2014
HQ Location
Stadtkreis 2, CH
Twitter
@Spitch_AG
114 Twitter followers
LinkedIn® Page
www.linkedin.com
82 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    SQL Ease transforms natural language input into SQL queries effortlessly, making database management more accessible.

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 67% Small-Business
    • 33% Mid-Market
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • SQL Ease Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    3
    Time Management
    2
    Time-saving
    2
    User Interface
    2
    Customer Support
    1
    Cons
    Slow Performance
    2
    Accuracy Issues
    1
    Complex Setup
    1
    Improvement Needed
    1
    Insufficient Training
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • SQL Ease features and usability ratings that predict user satisfaction
    8.3
    Summarization
    Average: 8.9
    8.3
    Language Detection
    Average: 8.8
    8.3
    Part of Speech Tagging
    Average: 8.5
    5.6
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    HQ Location
    Ernamkulam, IN
    LinkedIn® Page
    www.linkedin.com
    2 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

SQL Ease transforms natural language input into SQL queries effortlessly, making database management more accessible.

Users
No information available
Industries
No information available
Market Segment
  • 67% Small-Business
  • 33% Mid-Market
SQL Ease Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
3
Time Management
2
Time-saving
2
User Interface
2
Customer Support
1
Cons
Slow Performance
2
Accuracy Issues
1
Complex Setup
1
Improvement Needed
1
Insufficient Training
1
SQL Ease features and usability ratings that predict user satisfaction
8.3
Summarization
Average: 8.9
8.3
Language Detection
Average: 8.8
8.3
Part of Speech Tagging
Average: 8.5
5.6
Quality of Support
Average: 8.4
Seller Details
HQ Location
Ernamkulam, IN
LinkedIn® Page
www.linkedin.com
2 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Symbl.ai is a Conversation Intelligence (CI) platform for developers to build and extend applications capable of understanding natural human conversations at scale. Our comprehensive suite of products

    Users
    No information available
    Industries
    No information available
    Market Segment
    • 100% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Symbl.ai Nebula Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    AI Summary
    1
    Features
    1
    Feature Variety
    1
    Language Diversity
    1
    Real-time Transcription
    1
    Cons
    Cost
    1
    Expensive
    1
    Pricing Issues
    1
    Subscription Cost
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Symbl.ai Nebula features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    9.4
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Symbl.ai
    Year Founded
    2018
    HQ Location
    Seattle, US
    LinkedIn® Page
    www.linkedin.com
    48 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Symbl.ai is a Conversation Intelligence (CI) platform for developers to build and extend applications capable of understanding natural human conversations at scale. Our comprehensive suite of products

Users
No information available
Industries
No information available
Market Segment
  • 100% Small-Business
Symbl.ai Nebula Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
AI Summary
1
Features
1
Feature Variety
1
Language Diversity
1
Real-time Transcription
1
Cons
Cost
1
Expensive
1
Pricing Issues
1
Subscription Cost
1
Symbl.ai Nebula features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
9.4
Quality of Support
Average: 8.4
Seller Details
Seller
Symbl.ai
Year Founded
2018
HQ Location
Seattle, US
LinkedIn® Page
www.linkedin.com
48 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Abacus.AI is the world’s first AI platform where AI, not humans, build Applied AI agents and systems at scale. Using generative AI and other novel neural net techniques, AI can build LLM apps, gen AI

    Users
    No information available
    Industries
    • Computer Software
    Market Segment
    • 55% Mid-Market
    • 36% Small-Business
  • Pros and Cons
    Expand/Collapse Pros and Cons
  • Abacus.ai Pros and Cons
    How are these determined?Information
    Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
    Pros
    Ease of Use
    2
    Affordable
    1
    Artificial Intelligence
    1
    Automation
    1
    Easy Integrations
    1
    Cons
    Expensive
    2
    Filtering Issues
    1
    Limitations
    1
    Limited Customization
    1
    Limited Features
    1
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Abacus.ai features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    8.3
    Quality of Support
    Average: 8.4
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Abacus
    HQ Location
    United States
    Twitter
    @abacusai
    89,899 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    981 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Abacus.AI is the world’s first AI platform where AI, not humans, build Applied AI agents and systems at scale. Using generative AI and other novel neural net techniques, AI can build LLM apps, gen AI

Users
No information available
Industries
  • Computer Software
Market Segment
  • 55% Mid-Market
  • 36% Small-Business
Abacus.ai Pros and Cons
How are these determined?Information
Pros and Cons are compiled from review feedback and grouped into themes to provide an easy-to-understand summary of user reviews.
Pros
Ease of Use
2
Affordable
1
Artificial Intelligence
1
Automation
1
Easy Integrations
1
Cons
Expensive
2
Filtering Issues
1
Limitations
1
Limited Customization
1
Limited Features
1
Abacus.ai features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
8.3
Quality of Support
Average: 8.4
Seller Details
Seller
Abacus
HQ Location
United States
Twitter
@abacusai
89,899 Twitter followers
LinkedIn® Page
www.linkedin.com
981 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Build Contextual Intelligence In Your Application! Use core NLP engine with easy REST APIs to extract knowledge from unstructured text. Gain Contextual Intelligence to improve your search, discovery a

    We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
    Industries
    No information available
    Market Segment
    No information available
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • AmplifyReach Core NLP features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2016
    HQ Location
    Pune, IN
    Twitter
    @Amplify_Reach
    93 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    9 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Build Contextual Intelligence In Your Application! Use core NLP engine with easy REST APIs to extract knowledge from unstructured text. Gain Contextual Intelligence to improve your search, discovery a

We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
Industries
No information available
Market Segment
No information available
AmplifyReach Core NLP features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
0.0
No information available
Seller Details
Year Founded
2016
HQ Location
Pune, IN
Twitter
@Amplify_Reach
93 Twitter followers
LinkedIn® Page
www.linkedin.com
9 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Welltested generates thoughtful test cases for your code in just 10 minutes.

    We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
    Industries
    No information available
    Market Segment
    No information available
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • CommandDash features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    HQ Location
    Ahmedabad, IN
    LinkedIn® Page
    linkedin.com
    5 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Welltested generates thoughtful test cases for your code in just 10 minutes.

We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
Industries
No information available
Market Segment
No information available
CommandDash features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
0.0
No information available
Seller Details
HQ Location
Ahmedabad, IN
LinkedIn® Page
linkedin.com
5 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Databorg.ai runs custom Question Answering Bots on any website, enhancing your ability to access information efficiently.

    We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
    Industries
    No information available
    Market Segment
    No information available
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Databorg AI features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Year Founded
    2020
    LinkedIn® Page
    www.linkedin.com
    3 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Databorg.ai runs custom Question Answering Bots on any website, enhancing your ability to access information efficiently.

We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
Industries
No information available
Market Segment
No information available
Databorg AI features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
0.0
No information available
Seller Details
Year Founded
2020
LinkedIn® Page
www.linkedin.com
3 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Build incredible products with world-class language AI Cohere’s large language models unleash powerful capabilities, like content generation, summarization, and search — all at massive scale.

    We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
    Industries
    No information available
    Market Segment
    No information available
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • Embed 3 features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    Cohere
    Year Founded
    2019
    HQ Location
    Toronto, Ontario
    LinkedIn® Page
    www.linkedin.com
    38 employees on LinkedIn®
Product Description
How are these determined?Information
This description is provided by the seller.

Build incredible products with world-class language AI Cohere’s large language models unleash powerful capabilities, like content generation, summarization, and search — all at massive scale.

We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
Industries
No information available
Market Segment
No information available
Embed 3 features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
0.0
No information available
Seller Details
Seller
Cohere
Year Founded
2019
HQ Location
Toronto, Ontario
LinkedIn® Page
www.linkedin.com
38 employees on LinkedIn®
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    Introducing IBM Watson NLP Library for Embed, a containerized library designed to empower IBM partners with greater flexibility to infuse powerful natural language AI into their solutions. It combines

    We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
    Industries
    No information available
    Market Segment
    No information available
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • IBM Watson NLP Library for Embed features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
  • Seller Details
    Expand/Collapse Seller Details
  • Seller Details
    Seller
    IBM
    Year Founded
    1911
    HQ Location
    Armonk, NY
    Twitter
    @IBM
    709,764 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    331,391 employees on LinkedIn®
    Ownership
    SWX:IBM
Product Description
How are these determined?Information
This description is provided by the seller.

Introducing IBM Watson NLP Library for Embed, a containerized library designed to empower IBM partners with greater flexibility to infuse powerful natural language AI into their solutions. It combines

We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
Industries
No information available
Market Segment
No information available
IBM Watson NLP Library for Embed features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
0.0
No information available
Seller Details
Seller
IBM
Year Founded
1911
HQ Location
Armonk, NY
Twitter
@IBM
709,764 Twitter followers
LinkedIn® Page
www.linkedin.com
331,391 employees on LinkedIn®
Ownership
SWX:IBM
  • Overview
    Expand/Collapse Overview
  • Product Description
    How are these determined?Information
    This description is provided by the seller.

    A platform that can "think for itself" providing integrated handling of all service processes. Documents, e-mails, web and mobile apps: AI Platform is the intelligent core of the ITyX portfolio. It an

    We don't have enough data from reviews to share who uses this product. Write a review to contribute, or learn more about review generation.
    Industries
    No information available
    Market Segment
    No information available
  • User Satisfaction
    Expand/Collapse User Satisfaction
  • ITyX AI Platform features and usability ratings that predict user satisfaction
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
    0.0
    No information available
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A platform that can "think for itself" providing integrated handling of all service processes. Documents, e-mails, web and mobile apps: AI Platform is the intelligent core of the ITyX portfolio. It an

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    Loyae optimizes websites for better rankings & organic traffic, enhancing your online presence.

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    Loyae
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    2019
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Loyae optimizes websites for better rankings & organic traffic, enhancing your online presence.

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Loyae
Year Founded
2019
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    Msgmate generates images for an enhanced chat experience in messaging apps.

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Msgmate generates images for an enhanced chat experience in messaging apps.

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    Gain deeper insight and understanding of the Indonesian audiences by utilizing the power of Artificial Intelligence crafted by local experts

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    Prosa.ai
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    2018
    HQ Location
    Bandung, ID
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Gain deeper insight and understanding of the Indonesian audiences by utilizing the power of Artificial Intelligence crafted by local experts

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Prosa.ai
Year Founded
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    Protection Guard integrates advanced predictions into your developer apps, enhancing their capabilities.

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Protection Guard integrates advanced predictions into your developer apps, enhancing their capabilities.

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    Semantic Kernel allows you to seamlessly implement advanced LLM technology into your applications, upgrading your coding capabilities.

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    Microsoft
    Year Founded
    1975
    HQ Location
    Redmond, Washington
    Twitter
    @microsoft
    14,002,464 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    237,523 employees on LinkedIn®
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    MSFT
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Semantic Kernel allows you to seamlessly implement advanced LLM technology into your applications, upgrading your coding capabilities.

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Microsoft
Year Founded
1975
HQ Location
Redmond, Washington
Twitter
@microsoft
14,002,464 Twitter followers
LinkedIn® Page
www.linkedin.com
237,523 employees on LinkedIn®
Ownership
MSFT
Entry Level Price:Free
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    John Snow Labs' Spark NLP is an open source text processing library for Python, Java, and Scala. It provides production-grade, scalable, and trainable versions of the latest research in natural langua

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    Year Founded
    2015
    HQ Location
    Lewes, US
    Twitter
    @JohnSnowLabs
    43,442 Twitter followers
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    91 employees on LinkedIn®
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John Snow Labs' Spark NLP is an open source text processing library for Python, Java, and Scala. It provides production-grade, scalable, and trainable versions of the latest research in natural langua

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    We're a powerful platform of open source libraries and robust services to make your software fully voice-enabled including: - Automatic Speech Recognition - Voice Activity Detection - Wakeword - Text-

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    Pros
    Accuracy
    1
    Ease of Use
    1
    Efficiency
    1
    Speed
    1
    Cons
    Slow Performance
    1
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    8.3
    Quality of Support
    Average: 8.4
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    Year Founded
    2019
    HQ Location
    Proudly distributed , OO
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    www.linkedin.com
    1 employees on LinkedIn®
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We're a powerful platform of open source libraries and robust services to make your software fully voice-enabled including: - Automatic Speech Recognition - Voice Activity Detection - Wakeword - Text-

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Market Segment
  • 100% Small-Business
Spokestack Pros and Cons
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Pros
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1
Ease of Use
1
Efficiency
1
Speed
1
Cons
Slow Performance
1
Spokestack features and usability ratings that predict user satisfaction
0.0
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0.0
No information available
0.0
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8.3
Quality of Support
Average: 8.4
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2019
HQ Location
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    Textalytic is a online-based text analysis and natural language processing software that handles pre-processing, analyzing, and visualization.

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Textalytic is a online-based text analysis and natural language processing software that handles pre-processing, analyzing, and visualization.

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    Textraction harnesses AI to extract entities from free text with unparalleled flexibility.

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Textraction harnesses AI to extract entities from free text with unparalleled flexibility.

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    TrulyNatural is a voice control technology with mobile and automotive capabilities. that recognizes, analyzes and responds to keywords.

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    Quality of Support
    Average: 8.4
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    Sensory
    Year Founded
    1994
    LinkedIn® Page
    www.linkedin.com
    50 employees on LinkedIn®
Product Description
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TrulyNatural is a voice control technology with mobile and automotive capabilities. that recognizes, analyzes and responds to keywords.

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No information available
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No information available
Market Segment
  • 100% Small-Business
TrulyNatural features and usability ratings that predict user satisfaction
0.0
No information available
0.0
No information available
0.0
No information available
8.3
Quality of Support
Average: 8.4
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Sensory
Year Founded
1994
LinkedIn® Page
www.linkedin.com
50 employees on LinkedIn®
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    Wluper is an advanced voice-based conversational AI platform that allows workforces to leverage advanced natural language capabilities to create meaningful experiences. With a layer of unique languag

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    Wluper
    HQ Location
    London, United Kingdom
    Twitter
    @wluper_
    336 Twitter followers
    LinkedIn® Page
    www.linkedin.com
    14 employees on LinkedIn®
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Wluper is an advanced voice-based conversational AI platform that allows workforces to leverage advanced natural language capabilities to create meaningful experiences. With a layer of unique languag

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Wluper
HQ Location
London, United Kingdom
Twitter
@wluper_
336 Twitter followers
LinkedIn® Page
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14 employees on LinkedIn®

Learn More About Natural Language Understanding (NLU) Software

What is Natural Language Understanding Software?

Natural language understanding, a subset of natural language processing (NLP), makes predictions or decisions based on text data. These learning algorithms can be embedded within applications to provide automated artificial intelligence (AI) features. A connection to a data source is necessary for the algorithm to learn and adapt over time. 

Pulling out actionable insights from numerical data housed in ERP systems, CRM software, or accounting software is one thing, but gaining insights from unstructured data sources is invaluable. Without dedicated software for this task, businesses must spend significant time and resources building natural language understanding models or haphazardly investigating the data.

These algorithms may be developed with supervised learning or unsupervised learning. Supervised learning involves training an algorithm to determine a pattern of inference by feeding it consistent data to produce a repeated, general output. Human training is necessary for this type of learning. Unsupervised algorithms independently reach an output and are a feature of deep learning algorithms. Reinforcement learning is the final form of machine learning, which consists of algorithms that understand how to react based on their situation or environment.

End users of intelligent applications may not be aware that an everyday software tool utilizes a machine learning algorithm to provide automation of some kind. Additionally, machine learning solutions for businesses may come in a machine learning as a service (MLaaS) model.

What Does NLU Stand For?

NLU stands for Natural Language Understanding, which is a subset of natural language processing (NLP).

What Types of Natural Language Understanding Software Exist?

Natural language understanding, at its core, allows machines to understand human language in spoken or written form. There are two key methods this can be accomplished.

Machine learning-based systems

Machine learning algorithms use statistical methods. They learn to perform tasks based on training data they are fed and adjust their methods as more data is processed. Using a combination of machine learning, deep learning, and neural networks, natural language processing algorithms hone their own rules through repeated processing and learning.

Rules-based systems

This system uses carefully designed linguistic rules. This approach was used early in the development of natural language processing and is still used.

What are the Common Features of Natural Language Understanding Software?

The following are some core features within natural language understanding software that can help users better understand text data:

Part-of-speech (POS) tagging: With POS tagging, users can parse text by parts of speech. This can help break down sentences into component parts to understand them.

Named entity recognition (NER): Sentences are comprised of various entities, from street names to surnames, places, and more. With NER, one can extract these entities. These extracted entities can then be fed into other systems automatically.

Sentiment analysis: Language can be positive, negative, or neutral. Using sentiment analysis techniques, one can input text and be given the sentiment (positive or negative) of that text.

Emotion detection: Similar to sentiment analysis, emotion detection can detect the emotion of human language, whether written or spoken. Despite the research supporting it, this method has come under scrutiny, and its veracity has been challenged.

What are the Benefits of Natural Language Understanding Software?

Natural language understanding is useful in many different contexts and industries.

Application development: NLU drives the development of AI applications that streamline processes, identify risks, and improve effectiveness.

Efficiency: NLU-powered applications are constantly improving because of the recognition of their value and the need to stay competitive in the industries in which they are used. They also increase the efficiency of repeatable tasks. A prime example of this can be seen in eDiscovery, where machine learning has created massive leaps in the efficiency with which legal documents are looked through, and relevant ones are identified.

Scalability: Humans are great at analysis, but their analysis skills can break down when the amount of data is vast and when they need to produce results in record time. NLU-powered technology does not get stressed, pressured, or tired. It can analyze a (relatively) small amount of data or a large text corpus with ease, speed, and accuracy. This can be scaled across a business’ text datasets and various use cases.

Discovering trends: NLU can do a great job at finding trends and patterns in text data. Through word clouds, graphs and charts, and more, NLU can provide users with deep insight into what is happening beneath the surface.

Empowering non-technical users: Much NLU technology in the market is no-code or low-code, which allows non-technical users to benefit from the technology. Gone are the days when one needed to go to a data scientist or IT professional to understand language data.

Who Uses Natural Language Understanding Software?

NLU has applications across nearly every industry. Some industries that benefit from NLU applications include financial services, cybersecurity, recruiting, customer service, energy, and regulation.

Marketing: NLU-powered marketing applications help marketers identify content trends, shape content strategy, and personalize marketing content. 

Finance: Financial services institutions are increasing their use of NLU-powered applications to stay competitive with others in the industry who are doing the same. Some examples may include trawling through thousands of insurance claims and identifying ones with a high potential to be fraudulent. The process is similar, and the machine learning algorithm can digest the data to achieve the desired outcome quicker.

Human resources: Resumes are long and filled with words. As such, natural language understanding technology can help recruiters comb through large amounts of resumes and other text data to better understand candidates.

What are the Alternatives to Natural Language Understanding Software?

Alternatives to natural language understanding software can replace this type of software, either partially or completely:

Machine learning software: Natural language understanding (NLU) software is specifically connected to and used for text data. If one is looking for more general-use machine learning algorithms, machine learning software would be a good category to pursue.

Text analysis software: NLU software is geared toward incorporating NLU capabilities into other applications or systems. Text analysis software, however, is an all-purpose solution built to analyze any text data. Businesses looking to focus on analyzing their text data, such as from surveys, review sites, social media, and customer service tools, can leverage text analysis software to achieve this goal. This software enables businesses to consolidate and analyze their text data within a single platform. 

Software Related to Natural Language Understanding Software

Related solutions that can be used together with natural language understanding software include:

Chatbots software: Businesses looking for an off-the-shelf conservational AI solution can leverage chatbots. Tools specifically geared toward chatbot creation helps companies use chatbots off the shelf, with little to no development or coding experience necessary.

Bot platforms software: Companies looking to build their own chatbot can benefit from bot platforms, which are tools used to build and deploy interactive chatbots. These platforms provide development tools such as frameworks and API toolsets for customizable bot creation.

Intelligent virtual assistants (IVAs): Businesses that want conversational AI with strong natural language understanding capabilities should consider IVAs. IVAs understand a range of different intents from a singular utterance and can even understand responses they are not explicitly programmed to using natural language processing (NLP). With the use of machine learning and deep learning, IVAs can grow intelligently and understand a wider vocabulary and colloquial language, as well as provide more precise and correct responses to requests.

Challenges with Natural Language Understanding Software

Software solutions can come with their own set of challenges. 

Data preparation: A potential concern is preparing the data to be ingested by the NLU tool. The data needs to be stored properly, whether that is in a database or data warehouse. Users may require IT or a dedicated admin to ensure the text analytics tool can consume the data.

Automation pushback: One of the biggest potential issues with machine learning-powered applications, such as NLU, lies in removing humans from processes. This is particularly problematic when looking at emerging technologies like self-driving cars. By completely removing humans from the product development lifecycle, machines are given the power to decide in life-or-death situations.

Data security: Companies must consider security options to ensure the correct users see the correct data. They must also have security options that allow administrators to assign verified users different levels of access to the platform.

Which Companies Should Buy Natural Language Understanding Software?

Pattern recognition can help businesses across industries. Effective and efficient predictions can help these businesses make data-informed decisions, such as dynamic pricing based upon a range of data points.

Retail: An e-commerce site can leverage an NLU application programming interface (API) to create rich, personalized experiences for every user.

Entertainment: Media organizations can leverage NLU to comb through their scripts and other content to catalog and categorize their material.

Finance: Financial institutions can analyze contracts and conduct sentiment analysis and named entity recognition to better understand these documents and to scale operations.

How to Buy Natural Language Understanding Software

Requirements Gathering (RFI/RFP) for Natural Language Understanding Software

If a company is just starting out and looking to purchase their first NLU software, wherever they are in the buying process, g2.com can help select the best machine learning software for them.

Taking a holistic overview of the business and identifying pain points can help the team create a checklist of criteria. The checklist serves as a detailed guide that includes both necessary and nice-to-have features, including budget, features, number of users, integrations, security requirements, cloud or on-premises solutions, and more. Depending on the scope of the deployment, it might be helpful to produce an RFI, a one-page list with a few bullet points describing what is needed from a machine learning platform.

Compare Natural Language Understanding Software Products

Create a long list

From meeting the business functionality needs to implementation, vendor evaluations are an essential part of the software buying process. For ease of comparison, after the demos are complete, it helps to prepare a consistent list of questions regarding specific needs and concerns to ask each vendor.

Create a short list

From the long list of vendors, it is advisable to narrow down the list of vendors and come up with a shorter list of contenders, preferably no more than three to five. With this list in hand, businesses can produce a matrix to compare the features and pricing of the various solutions.

Conduct demos

To ensure the comparison is thoroughgoing, the user should demo each solution on the shortlist with the same use case and datasets. This will allow the business to evaluate like for like and see how each vendor stacks up against the competition.

Selection of Natural Language Understanding Software

Choose a selection team

Before getting started, it's crucial to create a winning team that will work together throughout the entire process, from identifying pain points to implementation. The software selection team should consist of members of the organization who have the right interest, skills, and time to participate in this process. A good starting point is to aim for three to five people who fill roles such as the main decision maker, project manager, process owner, system owner, or staffing subject matter expert, as well as a technical lead, IT administrator, or security administrator. In smaller companies, the vendor selection team may be smaller, with fewer participants multitasking and taking on more responsibilities.

Negotiation

Prices on a company's pricing page are not always fixed (although some companies will not budge). It is imperative to open up a conversation regarding pricing and licensing. For example, the vendor may be willing to give a discount for multi-year contracts or for recommending the product to others.

Final decision

After this stage, and before going all in, it is recommended to roll out a test run or pilot program to test adoption with a small sample size of users. If the tool is well used and well received, the buyer can be confident that the selection was correct. If not, it might be time to go back to the drawing board.

What Does Natural Language Understanding Software Cost?

NLU software is generally available in different tiers, with the more entry-level solutions costing less than the enterprise-scale ones. The former will usually lack features and may have caps on usage. Vendors may have tiered pricing, in which the price is tailored to the users’ company size, the number of users, or both. This pricing strategy may come with some degree of support, either unlimited or capped at a certain number of hours per billing cycle.

Once set up, they do not often require significant maintenance costs, especially if deployed in the cloud. As these platforms often come with many additional features, businesses looking to maximize the value of their software can contract third-party consultants to help them derive insights from their data and get the most out of the software.

Return on Investment (ROI)

Businesses decide to deploy machine learning software with the goal of deriving some degree of ROI. As they are looking to recoup the losses that they spent on the software, it is critical to understand the costs associated with it. As mentioned above, these platforms typically are billed per user, which is sometimes tiered depending on the company size. 

More users will naturally translate into more licenses, which means more money. Users must consider how much is spent and compare that to what is gained, both in terms of efficiency as well as revenue. Therefore, businesses can compare processes between pre- and post-deployment of the software to better understand how processes have been improved and how much time has been saved. They can even produce a case study (either for internal or external purposes) to demonstrate the gains they have seen from their use of the platform.