UDEMY Machine Learning and Data Science A-Z Hands-on Python 2022 BOOKWARE-iLEARN | Apps-Tutorials | MP4 | 6.75 GiB
438 kb/s 1280×720 | AAC 128 kb/s 2 CH
iLEARN source: https://www.udemy.com/course/data-science-machine-learning-a-z-hands-on-python/ looking for locations in: 10 GBit .SE 10 GBit .NO and other european locations
18M 1. Course Content.mp4 57M 10. NumPy2.mp4 85M 11. NumPy3.mp4 57M 12. NumPy4.mp4 153M 13. NumPy5.mp4 135M 14. NumPy6.mp4 96M 15. Pandas1.mp4 117M 16. Pandas2.mp4 118M 17. Pandas3.mp4 204M 18. Pandas4.mp4 100M 19. Visualization with Matplotlib1.mp4 26M 2. What is Machine Learning Some Basic Terms.mp4 206M 20. Visualization with Matplotlib2.mp4 189M 21. Visualization with Matplotlib3.mp4 143M 22. Visualization with Matplotlib4.mp4 130M 23. Visualization with Matplotlib5.mp4 155M 24. Reading and Modifying a Dataset.mp4 35M 25. Statistics1.mp4 208M 26. Statistics2.mp4 108M 27. Statistics3 - Covariance.mp4 130M 28. Missing Values1.mp4 220M 29. Missing Values2.mp4 74M 30. Outlier Detection1.mp4 131M 31. Outlier Detection2.mp4 32M 32. Outlier Detection3.mp4 66M 33. Concatenation.mp4 58M 34. Dummy Variable.mp4 187M 35. Normalization.mp4 46M 36. Learning Types.mp4 234M 37. Supervised Learning Models - Introduction and Understanding the Data.mp4 49M 38. k-NN Concepts.mp4 141M 39. k-NN Model Development.mp4 7.6M 4. Python IDE.mp4 229M 40. k-NN Training-Set and Test-Set Creation.mp4 26M 41. Decision Tree Concepts.mp4 67M 42. Decision Tree Model Development.mp4 55M 43. Decision Tree - Cross Validation.mp4 60M 44. Naive Bayes Concepts.mp4 59M 45. Naive Bayes Model Development.mp4 11M 46. Logistic Regression Concepts.mp4 113M 47. Logistic Regression Model Development.mp4 84M 48. Model Evaluation Concepts.mp4 175M 49. Model Evaluation - Calculating with Python.mp4 23M 5. IDE Installation.mp4 213M 50. Simple and Multiple Linear Regression Concepts.mp4 76M 51. Multiple Linear Regression - Model Development.mp4 50M 52. Evaluation Metrics - Concepts.mp4 160M 53. Evaluation Metrics - Implementation.mp4 27M 54. Polynomial Linear Regression Concepts.mp4 220M 55. Polynomial Linear Regression Model Development.mp4 31M 56. Random Forest Concepts.mp4 247M 57. Random Forest Model Development.mp4 27M 58. Support Vector Regression Concepts.mp4 122M 59. Support Vector Regression Model Development.mp4 71M 6. Installation of Required Libraries.mp4 39M 60. Introduction.mp4 45M 61. K-means Concepts1.mp4 22M 62. K-means Concepts2.mp4 36M 63. K-means Model Development1.mp4 104M 64. K-means Model Development2.mp4 103M 65. K-means - Model Evaluation.mp4 27M 66. DBSCAN Concepts.mp4 87M 67. DBSCAN Model Development.mp4 25M 68. Hierarchical Clustering Concepts.mp4 146M 69. Hierarchical Clustering Model Development.mp4 47M 7. Spyder Interface.mp4 18M 70. Introduction.mp4 126M 71. Support Vector Regression - Model Tuning.mp4 16M 72. K-Means - Model Tuning.mp4 134M 73. k-NN - Model Tuning.mp4 73M 74. Overfitting and Underfitting.mp4 38M 9. NumPy1.mp4 6.8G total
File: 1. Course Content.mp4 Size: 17898902 bytes (17.07 MiB), duration: 00:05:27, avg.bitrate: 438 kb/s Audio: aac, 44100 Hz, stereo (und) Video: h264, yuv420p, 1280x720, 30.00 fps(r) => 1281x720 (und)
Keywords: UDEMY, Machine, Learning, and, Data, Science, Hands, Python, 2022, BOOKWARE, iLEARNDownload from Nitroflare
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