β¨π Did you know that you can connect to GoogleColab using a local runtime, or a virtual machine running in the cloud (AWSCloud, GoogleCloud, Azure, etc.)? π Check out our guide + blogpost for how to set up your environment: https://research.google.com/colaboratory/local-runtimes.html β¦ https://blog.kovalevskyi.com/gce-deeplearning-images-as-a-backend-for-google-colaboratory-bc4903d24947
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Stanford Tracking Artificial Intelligence Research To See Future - Palo Alto, CA Patch
Read more here: https://ift.tt/2PCc1JY
#ArtificialIntelligence #AI #DataScience #MachineLearning #BigData #DeepLearning #NLP #Robots #IoT
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Read more here: https://ift.tt/2PCc1JY
#ArtificialIntelligence #AI #DataScience #MachineLearning #BigData #DeepLearning #NLP #Robots #IoT
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What's the hardest part of ML? The most expensive? The most time-consuming? Choosing from:
- data collection & labelling
- data cleaning
- modelling / science
- implementation
- infrastructure / cloud SysOps
- deployment
- maintenance
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- data collection & labelling
- data cleaning
- modelling / science
- implementation
- infrastructure / cloud SysOps
- deployment
- maintenance
βοΈ @AI_Python
π£ @AI_Python_Arxiv
β΄οΈ @AI_Python_EN
Attention Networks with Keras The "Attention Network" is one of the most interesting advancements in natural language processing. So, what makes an attention network tick & why it's special?
https://buff.ly/2LNaK0K
#NLP #NeuralNetworks #AI
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https://buff.ly/2LNaK0K
#NLP #NeuralNetworks #AI
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AI, Python, Cognitive Neuroscience
What's the hardest part of ML? The most expensive? The most time-consuming? Choosing from: - data collection & labelling - data cleaning - modelling / science - implementation - infrastructure / cloud SysOps - deployment - maintenance βοΈ @AI_Pythonβ¦
hardest: features and parameters of the model, most expensive: data collection, cleaning and labeling, most time consuming: multiple iterations in order to converge to the optimal parameters, testing & evaluation.
Dr FranΓ§ois Chollet
This is a great answer and I agree -- modelling/science is the hardest (if you want to do it right), and also the most time-consuming due to lengthy iterations. Meanwhile data collection and labelling is the most expensive, and often the most important to the success of a project.
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Dr FranΓ§ois Chollet
This is a great answer and I agree -- modelling/science is the hardest (if you want to do it right), and also the most time-consuming due to lengthy iterations. Meanwhile data collection and labelling is the most expensive, and often the most important to the success of a project.
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"A Brief Introduction to Machine Learning for Engineers"
By Osvaldo Simeone: https://lnkd.in/eT9FVYd
#ArtificialIntelligence #MachineLearning #NeuralNetworks
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By Osvaldo Simeone: https://lnkd.in/eT9FVYd
#ArtificialIntelligence #MachineLearning #NeuralNetworks
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A Full Hardware Guide to Deep Learning
By Tim Dettmers: https://lnkd.in/emiGW6p
#ai #deeplearning #gpu #gpus #hardware
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By Tim Dettmers: https://lnkd.in/emiGW6p
#ai #deeplearning #gpu #gpus #hardware
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Playing first-person shooter games with webcam and #DeepLearning (Tensorflow #ObjectDetection)
Find out how you can use an object detection model to control and play any first-person shooter game with your computer's webcam. Links to the code below.
Full Video: https://lnkd.in/eBq7z4r
Blog: https://lnkd.in/eekrqWk
Code: https://lnkd.in/ekhwwiJ
Subscribe: youtube.com/c/DeepGamingAI
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Find out how you can use an object detection model to control and play any first-person shooter game with your computer's webcam. Links to the code below.
Full Video: https://lnkd.in/eBq7z4r
Blog: https://lnkd.in/eekrqWk
Code: https://lnkd.in/ekhwwiJ
Subscribe: youtube.com/c/DeepGamingAI
@AI_Python
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Want to learn ML through code examples?
Check out these 5 scikit-learn tutorials to get started:
1. Randomized search vs grid search - https://lnkd.in/gjHpjJK
2. Using regularization to improve your GBM models - https://lnkd.in/gYNCNGD
3. Selecting the correct number of estimators for GBM models - https://lnkd.in/gW5AQTk
4. Selecting the correct number of estimators for random forest models - https://lnkd.in/ge66wUH
5. Decision boundary comparison for popular classifier models (check out this viz!) - https://lnkd.in/gHVg9nm
There are a ton more that you can go through on the sk-learn tutorial page as well.
π Check them out here - https://lnkd.in/gAv3hq7
π If you need more help learning machine learning or getting a job as a data scientist, then hop on my email list and I'd be happy to help - https://lnkd.in/g7AYg72
#datascience #machinelearning
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βοΈ @AI_Python
π£ @AI_Python_Arxiv
Check out these 5 scikit-learn tutorials to get started:
1. Randomized search vs grid search - https://lnkd.in/gjHpjJK
2. Using regularization to improve your GBM models - https://lnkd.in/gYNCNGD
3. Selecting the correct number of estimators for GBM models - https://lnkd.in/gW5AQTk
4. Selecting the correct number of estimators for random forest models - https://lnkd.in/ge66wUH
5. Decision boundary comparison for popular classifier models (check out this viz!) - https://lnkd.in/gHVg9nm
There are a ton more that you can go through on the sk-learn tutorial page as well.
π Check them out here - https://lnkd.in/gAv3hq7
π If you need more help learning machine learning or getting a job as a data scientist, then hop on my email list and I'd be happy to help - https://lnkd.in/g7AYg72
#datascience #machinelearning
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A simple notebook to remove the background of objects using Mask R-CNN
By Zaid Alyafeai: https://lnkd.in/exr7yWi
#artificialinteligence #deeplearning #machinelearning #tensorflow
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By Zaid Alyafeai: https://lnkd.in/exr7yWi
#artificialinteligence #deeplearning #machinelearning #tensorflow
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Ten Simple Rules for Reproducible Research in Jupyter Notebooks
Rule et al.: https://lnkd.in/efWmkyi
#BigData #ComputerScience #DataScience #MachineLearning
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Rule et al.: https://lnkd.in/efWmkyi
#BigData #ComputerScience #DataScience #MachineLearning
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Tuning Machine Learning Hyperparameters
https://heartbeat.fritz.ai/tuning-machine-learning-hyperparameters-40265a35c9b8
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https://heartbeat.fritz.ai/tuning-machine-learning-hyperparameters-40265a35c9b8
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AI, Python, Cognitive Neuroscience
hardest: features and parameters of the model, most expensive: data collection, cleaning and labeling, most time consuming: multiple iterations in order to converge to the optimal parameters, testing & evaluation. Dr FranΓ§ois Chollet This is a great answerβ¦
if you're going to start a #ML services startup, make it about data collection and labelling. This is main pain point, and where the most value can be unlocked.
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A Concise Handbook of TensorFlow (https://tf.wiki ) Online book for those who already knows #ML / #DL theories and want to focus on learning #TensorFlow itself
https://tf.wiki/en/preface.html
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https://tf.wiki/en/preface.html
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The International Conference on #Probabilistic Programming Talks from the #PROBPROG 2018 #Conference, held at the MIT Media Lab in Cambridge
https://www.youtube.com/playlist?list=PL_PW0E_Tf2qvXBEpl10Y39RULTN-ExzZQ
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https://www.youtube.com/playlist?list=PL_PW0E_Tf2qvXBEpl10Y39RULTN-ExzZQ
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rlkit β Reinforcement learning framework and algorithms implemented in #PyTorch
https://github.com/vitchyr/rlkit
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https://github.com/vitchyr/rlkit
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videos of #NeurIPS2018 invited talks: https://videos.videoken.com/index.php/videoscategory/neurips-2018/ β¦ videos of more sessions here: https://www.facebook.com/pg/nipsfoundation/videos
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How to Clone a Partition or Hard drive in #Linux https://www.tecmint.com/clone-linux-partitions/
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Interested in research on the interface of #evolution, systems and molecular #biology, #mathematics, and #statistics? Apply now to join the Evolutionary Dynamics lab IGCiencia as a postdoc, programmer, or PhD student! https://evoldynamics.org/positions Please spread the word!
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