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    https://sophisticatedspectra.com/article/drosia-serenity-a-modern-oasis-in-the-heart-of-larnaca.2521391.html

    DROSIA SERENITY
    A Premium Residential Project in the Heart of Drosia, Larnaca

    ONLY TWO FLATS REMAIN!

    Modern and impressive architectural design with high-quality finishes Spacious 2-bedroom apartments with two verandas and smart layouts Penthouse units with private rooftop gardens of up to 63 m² Private covered parking for each apartment Exceptionally quiet location just 5–8 minutes from the marina, Finikoudes Beach, Metropolis Mall, and city center Quick access to all major routes and the highway Boutique-style building with only 8 apartments High-spec technical features including A/C provisions, solar water heater, and photovoltaic system setup.
    Drosia Serenity is not only an architectural gem but also a highly attractive investment opportunity. Located in the desirable residential area of Drosia, Larnaca, this modern development offers 5–7% annual rental yield, making it an ideal choice for investors seeking stable and lucrative returns in Cyprus' dynamic real estate market. Feel free to check the location on Google Maps.
    Whether for living or investment, this is a rare opportunity in a strategic and desirable location.

    Predicting Diabetes on Diagnostic using Machine Learning

    Posted By: ELK1nG
    Predicting Diabetes on Diagnostic using Machine Learning

    Predicting Diabetes on Diagnostic using Machine Learning
    MP4 | Video: h264, 1280x720 | Audio: AAC, 44100 Hz
    Language: English | Size: 440 MB | Duration: 1h 4m

    This course helps you to derive meaning out of huge data with help of ML and Python

    What you'll learn
    In this course on ML, we will be learning introduction to Pima Indians Diabetes Using Machine Learning, Installation of Anaconda, Installation of Libraries
    Learn steps in Machine Learning, Dataset and Logistic Regression
    Learn Pima Classification, exclude the Header, Conversion of String into Number, Split the Dataset and Check the ROC.

    Requirements
    Basic knowledge of statistics and mathematics is an added advantage to take up this Machine learning course
    No prior knowledge of machine learning required
    Description
    Machine learning is a subfield of computer science where machines are trained to make decisions with the help of data provided without any human interference. For example, if we could teach a computer to tell if a person is lying about something, then the computer might be using machine learning as software. There are huge applications of machine learning such as Face recognition, image classification, stock market prediction, Emotion detection, self-driving cars, etc. More details about all these are covered in the training course videos. Machine learning uses knowledge from mathematics, statistics, computer science, and programming to build and deploy algorithms that can do one of those tasks mentioned above.

    In this course on ML, we will be learning an introduction to Pima Indians Diabetes Using Machine Learning, Installation of Anaconda, Installation of Libraries, steps in Machine Learning, Dataset and Logistic Regression, Pima Classification, exclude the Header, Conversion of String into Number, Split the Dataset and Check the ROC.

    Machine learning is a scientific discipline that explores the construction and study of algorithms that can learn from data. Such algorithms operate by building a model from example inputs and using that to make predictions or decisions, rather than following strictly static program instructions. Machine learning is closely related to and often overlaps with computational statistics; a discipline that also specializes in prediction-making. This training is an introduction to the concept of machine learning and its application using Python.

    Who this course is for:
    The target audience for this course includes students and professionals who are interested in ML
    This Machine learning training is also meant for people who are very keen on learning Regression and Predictive modeling
    Anyone who wants to learn about data and analytics, Data Engineers, Analysts, Architects, Software Engineers, IT operations, Technical managers