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asisakov/README.md

Hi there 👋

My name is Aleksandr. I'm currently learning Computer Vision, especially GAN's.

Here is a few links you can take a look at:

Master's thesis project:

Peak load reduction using thermal energy storage in a HVAC system of a building

Free-time projects:

ProjectComment
Deep Convolutional Generative Adversarial NetworkCreated Generative Adversarial Network, which was trained at the MNIST-Fashion dataset. Generative NN training is shown in the GIF-fle with outputs after each epoch.
Neural Style Transfer using OpenCVAttempt to implement the artistic style of a painting on a video using the OpenCV library. Also applied a style transfer to streaming video from the camera.
Web-page with printed Neural Network layers outputsCreated flask server, where at each request, a random instance is selected from the MNIST dataset and passed through the neural network. Returns the output values of each layer. Web-interface to visualise layers outputs was created using streamlit package.
Building of Docker container for flask appCreated flask server with image, where regression was plotted in temperature data. Application was builded to container using Dockerfile.
Outlier detection in financial dataUsing of visualisation and clusterisation methods to find anomalies in unlabeled data. Tried Dash visualisation for .csv data-file. Packed in Docker.
McKinsey ProHack competitionPrediction of the development index of "galaxies" using regression, solving the problem of optimal resource allocation between them. Initial data distribution is asymptotic, also it has NaNs. I wrote the pipeline myself. Top-40% solution. Used one-hot encoding, tried classical regression in combination with one-layer NN (pytorch). Optimization problem solved by own algorithm, checked using CVXPY.

Coursework:

TitleAuthor
Introduction to Machine LearningHSE/YandexDataAnalysisSchool
Deep Learning Specialisationdeeplearning.ai
SQL for Data ScienceUniversity of California, Davis
Version Control with GitAtlassian

Popular repositories Loading

  1. CascadeClassifier-using-openCV CascadeClassifier-using-openCVPublic

    Training using Cascades in cv2

    Jupyter Notebook 1

  2. Computer_Vision_Projects Computer_Vision_ProjectsPublic

    Jupyter Notebook 1

  3. Skoltech-projects Skoltech-projectsPublic

    Here is my projects during 2018-2020 at Skoltech

    Jupyter Notebook

  4. SQLite_for_DS SQLite_for_DSPublic

    Course homeworks

  5. Thesis ThesisPublic

    Here collected Python and Julia code from my Thesis work

    Jupyter Notebook 1

  6. TensorFlow-Tutorials TensorFlow-TutorialsPublic

    Forked from Hvass-Labs/TensorFlow-Tutorials

    TensorFlow Tutorials with YouTube Videos

    Jupyter Notebook

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Add copy buttons to all
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}
} catch(__e) { console.warn('[Userscript:Add Copy Buttons to Code Blocks]', __e); }
})();
(function(){
try {
var __m = "github.com";
var __re = new RegExp('^' + "github\\.com" + '
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asisakov/README.md

Hi there 👋

My name is Aleksandr. I'm currently learning Computer Vision, especially GAN's.

Here is a few links you can take a look at:

Master's thesis project:

Peak load reduction using thermal energy storage in a HVAC system of a building

Free-time projects:

ProjectComment
Deep Convolutional Generative Adversarial NetworkCreated Generative Adversarial Network, which was trained at the MNIST-Fashion dataset. Generative NN training is shown in the GIF-fle with outputs after each epoch.
Neural Style Transfer using OpenCVAttempt to implement the artistic style of a painting on a video using the OpenCV library. Also applied a style transfer to streaming video from the camera.
Web-page with printed Neural Network layers outputsCreated flask server, where at each request, a random instance is selected from the MNIST dataset and passed through the neural network. Returns the output values of each layer. Web-interface to visualise layers outputs was created using streamlit package.
Building of Docker container for flask appCreated flask server with image, where regression was plotted in temperature data. Application was builded to container using Dockerfile.
Outlier detection in financial dataUsing of visualisation and clusterisation methods to find anomalies in unlabeled data. Tried Dash visualisation for .csv data-file. Packed in Docker.
McKinsey ProHack competitionPrediction of the development index of "galaxies" using regression, solving the problem of optimal resource allocation between them. Initial data distribution is asymptotic, also it has NaNs. I wrote the pipeline myself. Top-40% solution. Used one-hot encoding, tried classical regression in combination with one-layer NN (pytorch). Optimization problem solved by own algorithm, checked using CVXPY.

Coursework:

TitleAuthor
Introduction to Machine LearningHSE/YandexDataAnalysisSchool
Deep Learning Specialisationdeeplearning.ai
SQL for Data ScienceUniversity of California, Davis
Version Control with GitAtlassian

Popular repositories Loading

  1. CascadeClassifier-using-openCV CascadeClassifier-using-openCVPublic

    Training using Cascades in cv2

    Jupyter Notebook 1

  2. Computer_Vision_Projects Computer_Vision_ProjectsPublic

    Jupyter Notebook 1

  3. Skoltech-projects Skoltech-projectsPublic

    Here is my projects during 2018-2020 at Skoltech

    Jupyter Notebook

  4. SQLite_for_DS SQLite_for_DSPublic

    Course homeworks

  5. Thesis ThesisPublic

    Here collected Python and Julia code from my Thesis work

    Jupyter Notebook 1

  6. TensorFlow-Tutorials TensorFlow-TutorialsPublic

    Forked from Hvass-Labs/TensorFlow-Tutorials

    TensorFlow Tutorials with YouTube Videos

    Jupyter Notebook

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Force GitHub README to respect dark mode\n(function() {\n var style = document.createElement('style');\n style.textContent = '\n .markdown-body {\n color-scheme: dark light;\n }\n .markdown-body pre { background: #161b22 !important; }\n .markdown-body code { background: rgba(110, 118, 129, 0.4) !important; }\n .markdown-body table th, .markdown-body table td { border-color: #30363d !important; }\n .markdown-body img { background: #0d1117; }\n .markdown-body blockquote { border-left-color: #8b949e; }\n .markdown-body hr { border-color: #30363d; }\n ';\n document.head.appendChild(style);\n})();", "GitHub Dark Mode README Fix"); } } catch(__e) { console.warn('[Userscript:GitHub Dark Mode README Fix]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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asisakov/README.md

Hi there 👋

My name is Aleksandr. I'm currently learning Computer Vision, especially GAN's.

Here is a few links you can take a look at:

Master's thesis project:

Peak load reduction using thermal energy storage in a HVAC system of a building

Free-time projects:

ProjectComment
Deep Convolutional Generative Adversarial NetworkCreated Generative Adversarial Network, which was trained at the MNIST-Fashion dataset. Generative NN training is shown in the GIF-fle with outputs after each epoch.
Neural Style Transfer using OpenCVAttempt to implement the artistic style of a painting on a video using the OpenCV library. Also applied a style transfer to streaming video from the camera.
Web-page with printed Neural Network layers outputsCreated flask server, where at each request, a random instance is selected from the MNIST dataset and passed through the neural network. Returns the output values of each layer. Web-interface to visualise layers outputs was created using streamlit package.
Building of Docker container for flask appCreated flask server with image, where regression was plotted in temperature data. Application was builded to container using Dockerfile.
Outlier detection in financial dataUsing of visualisation and clusterisation methods to find anomalies in unlabeled data. Tried Dash visualisation for .csv data-file. Packed in Docker.
McKinsey ProHack competitionPrediction of the development index of "galaxies" using regression, solving the problem of optimal resource allocation between them. Initial data distribution is asymptotic, also it has NaNs. I wrote the pipeline myself. Top-40% solution. Used one-hot encoding, tried classical regression in combination with one-layer NN (pytorch). Optimization problem solved by own algorithm, checked using CVXPY.

Coursework:

TitleAuthor
Introduction to Machine LearningHSE/YandexDataAnalysisSchool
Deep Learning Specialisationdeeplearning.ai
SQL for Data ScienceUniversity of California, Davis
Version Control with GitAtlassian

Popular repositories Loading

  1. CascadeClassifier-using-openCV CascadeClassifier-using-openCVPublic

    Training using Cascades in cv2

    Jupyter Notebook 1

  2. Computer_Vision_Projects Computer_Vision_ProjectsPublic

    Jupyter Notebook 1

  3. Skoltech-projects Skoltech-projectsPublic

    Here is my projects during 2018-2020 at Skoltech

    Jupyter Notebook

  4. SQLite_for_DS SQLite_for_DSPublic

    Course homeworks

  5. Thesis ThesisPublic

    Here collected Python and Julia code from my Thesis work

    Jupyter Notebook 1

  6. TensorFlow-Tutorials TensorFlow-TutorialsPublic

    Forked from Hvass-Labs/TensorFlow-Tutorials

    TensorFlow Tutorials with YouTube Videos

    Jupyter Notebook

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Highlight search terms from Google/DuckDuckGo/Bing referrer\n(function() {\n var ref = document.referrer;\n var terms = [];\n \n if (ref.includes('google.com') || ref.includes('duckduckgo.com') || ref.includes('bing.com')) {\n var url = new URL(ref);\n var q = url.searchParams.get('q') || url.searchParams.get('p');\n if (q) {\n terms = q.split(/\\s+/).filter(function(t) { return t.length > 2; });\n }\n }\n \n if (terms.length === 0) return;\n \n var style = document.createElement('style');\n style.textContent = '.userscript-highlight { background: #fbbf24; color: #1a1a2e; padding: 1px 3px; border-radius: 2px; }';\n document.head.appendChild(style);\n \n function highlight(node) {\n if (node.nodeType === 3) { // text node\n var text = node.textContent;\n var found = false;\n terms.forEach(function(term) {\n var regex = new RegExp('(' + term.replace(/[.*+?^${}()|[\\]\\\\]/g, '\\\\') + ')', 'gi');\n if (regex.test(text)) {\n found = true;\n var frag = document.createDocumentFragment();\n var parts = text.split(regex);\n parts.forEach(function(part, i) {\n if (i % 2 === 0) {\n frag.appendChild(document.createTextNode(part));\n } else {\n var span = document.createElement('span');\n span.className = 'userscript-highlight';\n span.textContent = part;\n frag.appendChild(span);\n }\n });\n node.parentNode.replaceChild(frag, node);\n }\n });\n } else if (node.nodeType === 1 && node.childNodes) { // element\n var skipTags = ['SCRIPT', 'STYLE', 'NOSCRIPT', 'TEXTAREA', 'INPUT', 'SELECT'];\n if (!skipTags.includes(node.tagName)) {\n Array.from(node.childNodes).forEach(highlight);\n }\n }\n }\n \n highlight(document.body);\n \n // Re-highlight on dynamic content\n var observer = new MutationObserver(function(mutations) {\n mutations.forEach(function(m) {\n m.addedNodes.forEach(function(node) {\n if (node.nodeType === 1 || node.nodeType === 3) highlight(node);\n });\n });\n });\n observer.observe(document.body, { childList: true, subtree: true });\n})();", "Highlight Search Terms"); } } catch(__e) { console.warn('[Userscript:Highlight Search Terms]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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asisakov/README.md

Hi there 👋

My name is Aleksandr. I'm currently learning Computer Vision, especially GAN's.

Here is a few links you can take a look at:

Master's thesis project:

Peak load reduction using thermal energy storage in a HVAC system of a building

Free-time projects:

ProjectComment
Deep Convolutional Generative Adversarial NetworkCreated Generative Adversarial Network, which was trained at the MNIST-Fashion dataset. Generative NN training is shown in the GIF-fle with outputs after each epoch.
Neural Style Transfer using OpenCVAttempt to implement the artistic style of a painting on a video using the OpenCV library. Also applied a style transfer to streaming video from the camera.
Web-page with printed Neural Network layers outputsCreated flask server, where at each request, a random instance is selected from the MNIST dataset and passed through the neural network. Returns the output values of each layer. Web-interface to visualise layers outputs was created using streamlit package.
Building of Docker container for flask appCreated flask server with image, where regression was plotted in temperature data. Application was builded to container using Dockerfile.
Outlier detection in financial dataUsing of visualisation and clusterisation methods to find anomalies in unlabeled data. Tried Dash visualisation for .csv data-file. Packed in Docker.
McKinsey ProHack competitionPrediction of the development index of "galaxies" using regression, solving the problem of optimal resource allocation between them. Initial data distribution is asymptotic, also it has NaNs. I wrote the pipeline myself. Top-40% solution. Used one-hot encoding, tried classical regression in combination with one-layer NN (pytorch). Optimization problem solved by own algorithm, checked using CVXPY.

Coursework:

TitleAuthor
Introduction to Machine LearningHSE/YandexDataAnalysisSchool
Deep Learning Specialisationdeeplearning.ai
SQL for Data ScienceUniversity of California, Davis
Version Control with GitAtlassian

Popular repositories Loading

  1. CascadeClassifier-using-openCV CascadeClassifier-using-openCVPublic

    Training using Cascades in cv2

    Jupyter Notebook 1

  2. Computer_Vision_Projects Computer_Vision_ProjectsPublic

    Jupyter Notebook 1

  3. Skoltech-projects Skoltech-projectsPublic

    Here is my projects during 2018-2020 at Skoltech

    Jupyter Notebook

  4. SQLite_for_DS SQLite_for_DSPublic

    Course homeworks

  5. Thesis ThesisPublic

    Here collected Python and Julia code from my Thesis work

    Jupyter Notebook 1

  6. TensorFlow-Tutorials TensorFlow-TutorialsPublic

    Forked from Hvass-Labs/TensorFlow-Tutorials

    TensorFlow Tutorials with YouTube Videos

    Jupyter Notebook

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Strip utm_, fbclid, gclid, etc. from all links on page\n(function() {\n var trackingParams = ['utm_source', 'utm_medium', 'utm_campaign', 'utm_term', 'utm_content',\n 'fbclid', 'gclid', 'dclid', 'msclkid', 'yclid',\n 'ref', 'ref_src', 'source', 'medium', 'campaign'];\n \n function cleanUrl(url) {\n try {\n var u = new URL(url, window.location.origin);\n var changed = false;\n trackingParams.forEach(function(p) {\n if (u.searchParams.has(p)) {\n u.searchParams.delete(p);\n changed = true;\n }\n });\n return changed ? u.toString() : url;\n } catch (e) {\n return url;\n }\n }\n \n function cleanLinks() {\n document.querySelectorAll('a[href]').forEach(function(a) {\n var clean = cleanUrl(a.href);\n if (clean !== a.href) a.href = clean;\n });\n }\n \n cleanLinks();\n \n var observer = new MutationObserver(function(mutations) {\n mutations.forEach(function(m) {\n m.addedNodes.forEach(function(node) {\n if (node.nodeType === 1) {\n if (node.tagName === 'A') cleanLinks();\n node.querySelectorAll('a[href]').forEach(function(a) {\n var clean = cleanUrl(a.href);\n if (clean !== a.href) a.href = clean;\n });\n }\n });\n });\n });\n observer.observe(document.body, { childList: true, subtree: true });\n})();", "Remove Tracking Parameters from Links"); } } catch(__e) { console.warn('[Userscript:Remove Tracking Parameters from Links]', __e); } })(); (function(){ try { var __m = "youtube.com"; var __re = new RegExp('^' + "youtube\\.com" + '
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asisakov/README.md

Hi there 👋

My name is Aleksandr. I'm currently learning Computer Vision, especially GAN's.

Here is a few links you can take a look at:

Master's thesis project:

Peak load reduction using thermal energy storage in a HVAC system of a building

Free-time projects:

ProjectComment
Deep Convolutional Generative Adversarial NetworkCreated Generative Adversarial Network, which was trained at the MNIST-Fashion dataset. Generative NN training is shown in the GIF-fle with outputs after each epoch.
Neural Style Transfer using OpenCVAttempt to implement the artistic style of a painting on a video using the OpenCV library. Also applied a style transfer to streaming video from the camera.
Web-page with printed Neural Network layers outputsCreated flask server, where at each request, a random instance is selected from the MNIST dataset and passed through the neural network. Returns the output values of each layer. Web-interface to visualise layers outputs was created using streamlit package.
Building of Docker container for flask appCreated flask server with image, where regression was plotted in temperature data. Application was builded to container using Dockerfile.
Outlier detection in financial dataUsing of visualisation and clusterisation methods to find anomalies in unlabeled data. Tried Dash visualisation for .csv data-file. Packed in Docker.
McKinsey ProHack competitionPrediction of the development index of "galaxies" using regression, solving the problem of optimal resource allocation between them. Initial data distribution is asymptotic, also it has NaNs. I wrote the pipeline myself. Top-40% solution. Used one-hot encoding, tried classical regression in combination with one-layer NN (pytorch). Optimization problem solved by own algorithm, checked using CVXPY.

Coursework:

TitleAuthor
Introduction to Machine LearningHSE/YandexDataAnalysisSchool
Deep Learning Specialisationdeeplearning.ai
SQL for Data ScienceUniversity of California, Davis
Version Control with GitAtlassian

Popular repositories Loading

  1. CascadeClassifier-using-openCV CascadeClassifier-using-openCVPublic

    Training using Cascades in cv2

    Jupyter Notebook 1

  2. Computer_Vision_Projects Computer_Vision_ProjectsPublic

    Jupyter Notebook 1

  3. Skoltech-projects Skoltech-projectsPublic

    Here is my projects during 2018-2020 at Skoltech

    Jupyter Notebook

  4. SQLite_for_DS SQLite_for_DSPublic

    Course homeworks

  5. Thesis ThesisPublic

    Here collected Python and Julia code from my Thesis work

    Jupyter Notebook 1

  6. TensorFlow-Tutorials TensorFlow-TutorialsPublic

    Forked from Hvass-Labs/TensorFlow-Tutorials

    TensorFlow Tutorials with YouTube Videos

    Jupyter Notebook

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Auto-enable theater mode on YouTube\n(function() {\n function tryTheater() {\n var btn = document.querySelector('button[aria-label=\"Theater mode\"], ytd-player #player button[title=\"Theater mode\"]');\n if (btn && !btn.classList.contains('activated')) {\n btn.click();\n }\n }\n \n // Try immediately\n tryTheater();\n \n // Try after navigation (SPA)\n var lastUrl = location.href;\n setInterval(function() {\n if (location.href !== lastUrl) {\n lastUrl = location.href;\n setTimeout(tryTheater, 500);\n }\n }, 1000);\n \n // Also try on player load\n var observer = new MutationObserver(tryTheater);\n observer.observe(document.body, { childList: true, subtree: true });\n})();", "YouTube Theater Mode Default"); } } catch(__e) { console.warn('[Userscript:YouTube Theater Mode Default]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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asisakov/README.md

Hi there 👋

My name is Aleksandr. I'm currently learning Computer Vision, especially GAN's.

Here is a few links you can take a look at:

Master's thesis project:

Peak load reduction using thermal energy storage in a HVAC system of a building

Free-time projects:

ProjectComment
Deep Convolutional Generative Adversarial NetworkCreated Generative Adversarial Network, which was trained at the MNIST-Fashion dataset. Generative NN training is shown in the GIF-fle with outputs after each epoch.
Neural Style Transfer using OpenCVAttempt to implement the artistic style of a painting on a video using the OpenCV library. Also applied a style transfer to streaming video from the camera.
Web-page with printed Neural Network layers outputsCreated flask server, where at each request, a random instance is selected from the MNIST dataset and passed through the neural network. Returns the output values of each layer. Web-interface to visualise layers outputs was created using streamlit package.
Building of Docker container for flask appCreated flask server with image, where regression was plotted in temperature data. Application was builded to container using Dockerfile.
Outlier detection in financial dataUsing of visualisation and clusterisation methods to find anomalies in unlabeled data. Tried Dash visualisation for .csv data-file. Packed in Docker.
McKinsey ProHack competitionPrediction of the development index of "galaxies" using regression, solving the problem of optimal resource allocation between them. Initial data distribution is asymptotic, also it has NaNs. I wrote the pipeline myself. Top-40% solution. Used one-hot encoding, tried classical regression in combination with one-layer NN (pytorch). Optimization problem solved by own algorithm, checked using CVXPY.

Coursework:

TitleAuthor
Introduction to Machine LearningHSE/YandexDataAnalysisSchool
Deep Learning Specialisationdeeplearning.ai
SQL for Data ScienceUniversity of California, Davis
Version Control with GitAtlassian

Popular repositories Loading

  1. CascadeClassifier-using-openCV CascadeClassifier-using-openCVPublic

    Training using Cascades in cv2

    Jupyter Notebook 1

  2. Computer_Vision_Projects Computer_Vision_ProjectsPublic

    Jupyter Notebook 1

  3. Skoltech-projects Skoltech-projectsPublic

    Here is my projects during 2018-2020 at Skoltech

    Jupyter Notebook

  4. SQLite_for_DS SQLite_for_DSPublic

    Course homeworks

  5. Thesis ThesisPublic

    Here collected Python and Julia code from my Thesis work

    Jupyter Notebook 1

  6. TensorFlow-Tutorials TensorFlow-TutorialsPublic

    Forked from Hvass-Labs/TensorFlow-Tutorials

    TensorFlow Tutorials with YouTube Videos

    Jupyter Notebook

, 'i'); if (__m === '*' || __re.test(location.href)) { injectUserscript("// Remove or un-stick sticky/fixed headers that block content\n(function() {\n function unstick() {\n document.querySelectorAll('header, nav, [role=\"banner\"], .header, .navbar, .sticky, .fixed-top, [style*=\"position: fixed\"], [style*=\"position:sticky\"]').forEach(function(el) {\n if (el.style.position === 'fixed' || el.style.position === 'sticky' || \n getComputedStyle(el).position === 'fixed' || getComputedStyle(el).position === 'sticky') {\n el.style.position = 'static';\n el.style.top = 'auto';\n el.style.zIndex = 'auto';\n }\n });\n }\n \n unstick();\n \n var observer = new MutationObserver(unstick);\n observer.observe(document.body, { childList: true, subtree: true, attributes: true, attributeFilter: ['style', 'class'] });\n})();", "Kill Sticky Headers"); } } catch(__e) { console.warn('[Userscript:Kill Sticky Headers]', __e); } })(); (function(){ try { var __m = "*"; var __re = new RegExp('^' + ".*" + '
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asisakov/README.md

Hi there 👋

My name is Aleksandr. I'm currently learning Computer Vision, especially GAN's.

Here is a few links you can take a look at:

Master's thesis project:

Peak load reduction using thermal energy storage in a HVAC system of a building

Free-time projects:

ProjectComment
Deep Convolutional Generative Adversarial NetworkCreated Generative Adversarial Network, which was trained at the MNIST-Fashion dataset. Generative NN training is shown in the GIF-fle with outputs after each epoch.
Neural Style Transfer using OpenCVAttempt to implement the artistic style of a painting on a video using the OpenCV library. Also applied a style transfer to streaming video from the camera.
Web-page with printed Neural Network layers outputsCreated flask server, where at each request, a random instance is selected from the MNIST dataset and passed through the neural network. Returns the output values of each layer. Web-interface to visualise layers outputs was created using streamlit package.
Building of Docker container for flask appCreated flask server with image, where regression was plotted in temperature data. Application was builded to container using Dockerfile.
Outlier detection in financial dataUsing of visualisation and clusterisation methods to find anomalies in unlabeled data. Tried Dash visualisation for .csv data-file. Packed in Docker.
McKinsey ProHack competitionPrediction of the development index of "galaxies" using regression, solving the problem of optimal resource allocation between them. Initial data distribution is asymptotic, also it has NaNs. I wrote the pipeline myself. Top-40% solution. Used one-hot encoding, tried classical regression in combination with one-layer NN (pytorch). Optimization problem solved by own algorithm, checked using CVXPY.

Coursework:

TitleAuthor
Introduction to Machine LearningHSE/YandexDataAnalysisSchool
Deep Learning Specialisationdeeplearning.ai
SQL for Data ScienceUniversity of California, Davis
Version Control with GitAtlassian

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asisakov/README.md

Hi there 👋

My name is Aleksandr. I'm currently learning Computer Vision, especially GAN's.

Here is a few links you can take a look at:

Master's thesis project:

Peak load reduction using thermal energy storage in a HVAC system of a building

Free-time projects:

ProjectComment
Deep Convolutional Generative Adversarial NetworkCreated Generative Adversarial Network, which was trained at the MNIST-Fashion dataset. Generative NN training is shown in the GIF-fle with outputs after each epoch.
Neural Style Transfer using OpenCVAttempt to implement the artistic style of a painting on a video using the OpenCV library. Also applied a style transfer to streaming video from the camera.
Web-page with printed Neural Network layers outputsCreated flask server, where at each request, a random instance is selected from the MNIST dataset and passed through the neural network. Returns the output values of each layer. Web-interface to visualise layers outputs was created using streamlit package.
Building of Docker container for flask appCreated flask server with image, where regression was plotted in temperature data. Application was builded to container using Dockerfile.
Outlier detection in financial dataUsing of visualisation and clusterisation methods to find anomalies in unlabeled data. Tried Dash visualisation for .csv data-file. Packed in Docker.
McKinsey ProHack competitionPrediction of the development index of "galaxies" using regression, solving the problem of optimal resource allocation between them. Initial data distribution is asymptotic, also it has NaNs. I wrote the pipeline myself. Top-40% solution. Used one-hot encoding, tried classical regression in combination with one-layer NN (pytorch). Optimization problem solved by own algorithm, checked using CVXPY.

Coursework:

TitleAuthor
Introduction to Machine LearningHSE/YandexDataAnalysisSchool
Deep Learning Specialisationdeeplearning.ai
SQL for Data ScienceUniversity of California, Davis
Version Control with GitAtlassian

Popular repositories Loading

  1. CascadeClassifier-using-openCV CascadeClassifier-using-openCVPublic

    Training using Cascades in cv2

    Jupyter Notebook 1

  2. Computer_Vision_Projects Computer_Vision_ProjectsPublic

    Jupyter Notebook 1

  3. Skoltech-projects Skoltech-projectsPublic

    Here is my projects during 2018-2020 at Skoltech

    Jupyter Notebook

  4. SQLite_for_DS SQLite_for_DSPublic

    Course homeworks

  5. Thesis ThesisPublic

    Here collected Python and Julia code from my Thesis work

    Jupyter Notebook 1

  6. TensorFlow-Tutorials TensorFlow-TutorialsPublic

    Forked from Hvass-Labs/TensorFlow-Tutorials

    TensorFlow Tutorials with YouTube Videos

    Jupyter Notebook