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Mphasis

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40 reviews
  • 98 profiles
  • 9 categories
Average star rating
4.4
Serving customers since
2007

Featured Products

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PCB Defect Detector

3 reviews

The PCB Defect Detector is an advanced machine learning application designed to identify and classify defects in printed circuit boards (PCBs during the manufacturing process. By leveraging computer vision and artificial intelligence, it automates the inspection of PCBs, ensuring high-quality standards and reducing reliance on manual inspections. Key Features and Functionality: - Automated Defect Detection: Utilizes machine learning models to detect various PCB defects, including missing components, soldering issues, and surface anomalies. - High Accuracy: Employs advanced algorithms to achieve precise identification of defects, minimizing false positives and negatives. - Scalability: Capable of handling high volumes of PCB inspections, making it suitable for large-scale manufacturing operations. - User-Friendly Interface: Features an intuitive interface that allows operators with minimal technical knowledge to effectively use the system. - Integration with AWS Services: Seamlessly integrates with AWS services such as Amazon SageMaker and AWS Lambda for model training, deployment, and inference. Primary Value and Problem Solved: The PCB Defect Detector addresses the challenges of manual PCB inspections, which are often time-consuming and prone to human error. By automating the defect detection process, it enhances inspection accuracy, reduces operational costs, and accelerates production cycles. This leads to improved product quality and increased customer satisfaction, while also allowing manufacturers to allocate human resources to more complex tasks.

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Financial Transactions Fraud Detection

0 reviews

This solution is a deep learning-based approach to learn and understand the patterns in financial transaction data. It aims at learning the normal behavior patterns of the transactions during the training process using a Restricted Boltzmann Machine algorithm. Once trained, the model can identify abnormal patterns of transactions, thereby classifying them as anomalous.

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Newspaper Customer Churn Prediction

0 reviews

Customer churn refers to the loss of existing clients or customers. This solution identifies newspaper customers who are more likely to discontinue their current subscription. During the training stage, the solution automatically conducts feature interaction on the training data and selects a subset of features based on feature importance. It then trains multiple models and identifies the best performing model. This model is then selected for prediction on new data.

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Restaurant Reviews Topic Extraction

0 reviews

This solution identifies the various aspects a reviewer is mentioning when providing a review for any restaurant business. This can help businesses easily identify which are its most prominent aspects (e.g. price, ambience, taste, quality etc.) which are getting reviewed and what are the associated opinions about them. They can then improve on these aspects to provide a superior customer experience.

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Cloud Network Cost Forecasting

0 reviews

Cloud Network Cost Forecasting generates 24 hours forward forecast of network cost using historical data. This solution will help businesses to better optimize their on-cloud network infrastructure and foresee their cost fluctuations. It uses ensemble ML algorithms with automatic model selection algorithms. This solution provides consistent and better results due to its ensemble learning approach. This solution performs automated model selection to apply the right model based on the input data.

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Topic Extraction from Mobile App Reviews

0 reviews

The solution categorizes mobile application reviews into four prominent categories based on user reviews: User Experience, Safety and Security, Functional stability, and Ease of use. Deep learning based simple transformer learners are used to classify the review into one of the above categories.

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Active Learning for Text Classification

0 reviews

Active Learning for Text Classification trains a text classification model using a small corpus of training data and provides the most appropriate samples from a huge corpus of unlabeled data to be annotated in order to improve the model accuracy significantly. Using Active Learning this algorithm helps in identifying the most effective data sample to be tagged first thus reducing the time and effort to build a usable Machine learning model.

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Broadband Customer Churn Prediction

0 reviews

Customer churn refers to the loss of existing clients or customers. This solution identifies broadband customers who are more likely to discontinue their current broadband service provider. During the training stage, the solution automatically conducts feature interaction on the training data and selects a subset of features based on feature importance. It then trains multiple models and identifies the best performing model. This model is then selected for prediction on new data

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Customer Complaint Ticket Classification

0 reviews

A high frequency of issues can generate an overwhelming number of customer complaint tickets and incorrect delegation to teams to handle them. This leads to a spike in MTTR (mean time taken to resolve) and a dip in FCR (First Call Resolution). The solution mitigates these issues by training a multi-factor ML model that considers factors like ticket impact, urgency, priority, issue description and other features to predict the most relevant group to resolve a ticket. A pool of models is run through data to select the most generalizable model for the ticket classification task.

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Airline Tweets Sentiment Analyzer

0 reviews

This solution classifies tweets mentioning airline travel into positive, neutral and negative sentiments. It uses text analysis, natural language processing, machine learning techniques to predict sentiment classes for tweets. It automates the manual effort to analyze airline travel related tweets and helps generate faster actionable insights around airline services.

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Mphasis Reviews

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Star Rating
28
11
0
0
1
NS
Naman S.
04/13/2023
Validated Reviewer
Review source: G2 invite
Incentivized Review

Perfect AI technology for text analysing

An incredible platform for unifying and classifying the text and data in documents and files inserted in this platform. Enables the users to use AI tools for automation over the data for text analysis and classification. It also helps to creat unique and hyperparameter data text from the sketch of data. One of the best features is that it reduces human errors in the data as everything is automated and done with ML or AI tools for high data production. You can use it to process and run the ongoing project; it adapts all the configurations of your systems and project information. Modelling and labelling of data and text most uniquely and innovatively.
VS
Venkatramanan S.
04/13/2023
Validated Reviewer
Verified Current User
Review source: G2 invite
Incentivized Review

Highly Useful Forecasting Tool

The forecasting will help to identify the tickets upfront and act on them pro-actively
RS
Rishab S.
03/12/2023
Validated Reviewer
Review source: G2 invite
Incentivized Review

The best deep learning text classification tool!!

As a data scientist, I have to deal with a lot of data. With this tool, i was able to classify required data and target particulars in a more efficient way. This tool is very useful to use, and no prerequisites are required.

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HQ Location:
Reston, VA

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@Stelligent

What is Mphasis?

Mphasis Stelligent, with its website located at https://stelligent.com/, specializes in providing DevOps automation and continuous delivery solutions on the Amazon Web Services (AWS) cloud platform. As part of Mphasis, a larger IT services company, Stelligent focuses on helping clients automate and accelerate the development, testing, and deployment of applications within AWS environments. Their suite of services includes consulting, engineering, and automation expertise to implement secure and scalable CI/CD pipelines, facilitating a faster go-to-market strategy for enterprises across various sectors. Stelligent's approach integrates tightly with AWS technologies, offering tools and practices that enhance the cloud capabilities of their customers, ensuring efficient and innovative cloud-based solutions.

Details

Year Founded
2007
Website
stelligent.com