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文檔簡(jiǎn)介
第一章Numpy前導(dǎo)介紹,,,,,
"2'41""
1.1、Anconda安裝","2'41""",,"""",√,
"17'47""
1.2、JupyterNoteBook","17'47""",,"""",√,
"29'13""
1.3、Numpy介紹+ndarry","29'13""",,"""",√,
"7'1""
1.4、ndarry的shape屬性巧算","7'1""",,"""",√,
"31'46""
1.5、ndarray的常見創(chuàng)建方式","31'46""",,"""",√,
"24'18""
1.6、NumPy中的數(shù)據(jù)類型","24'18""",,"""",√,
"5'51""
1.7、NumPy數(shù)據(jù)類型2","5'51""",,"""",√,
"32'55""
1.8、Numpy基本操作","32'55""",,"""",√,
"21'30""
1.9、索引和切片","21'30""",,"""",√,
"17'22""
1.10、索引和切片(2)","17'22""",,"""",√,
"4'16""
1.11、數(shù)組轉(zhuǎn)制與軸兌換","4'16""",,"""",√,
"22'21""
1.12、通用函數(shù)","22'21""",,"""",√,
"15'27""
1.13、np.where函數(shù)","15'27""",,"""",√,
"5'42""
1.14、np.unique函數(shù)","5'42""",,"""",√,
"30'2""
1.15、數(shù)組數(shù)據(jù)文件讀取","30'2""",,"""",√,
第二章Pandas前導(dǎo)課程,,,,,
"11'22""
2.1、Pandas介紹","11'22""",,"""",√,
"34'56""
2.2、Series","34'56""",,"""",√,
"4'50""
2.3、索引對(duì)象","4'50""",,"""",√,
"17'36""
2.4、DataFrame","17'36""",,"""",√,
"33'49""
2.5、Pandas常用操作(1)","33'49""",,"""",√,
"27'13""
2.6、Pandas常用操作(2)","27'13""",,"""",√,
"27'4""
2.7、缺失值處理","27'4""",,"""",√,
"37'5""
2.8、pandas制圖","37'5""",,"""",√,
"28'14""
2.9、Matplotlib(1)","28'14""",,"""",√,
"35'12""
2.10、Matplotlib(2)","35'12""",,"""",√,
"19'27""
2.11、Matplotlib中文輸出解決","19'27""",,"""",√,
第三章機(jī)器學(xué)習(xí)(一),,,,,
"43'6""
3.1、01機(jī)器學(xué)習(xí)定義及理性認(rèn)識(shí)","43'6""",,"""",√,
"48'33""
3.2、02機(jī)器學(xué)習(xí)商業(yè)應(yīng)用場(chǎng)景、機(jī)器學(xué)習(xí)分類","48'33""",,"""",√,
"50'49""
3.3、03機(jī)器學(xué)習(xí)開發(fā)流程","50'49""",,"""",√,
"18'30""
3.4、04模型評(píng)估方法和部署","18'30""",,"""",√,
"24'32""
3.5、05線性回歸原理推倒過(guò)程","24'32""",,"""",√,
"14'42""
3.6、06線性回歸基礎(chǔ)認(rèn)識(shí)及原理講解","14'42""",,"""",√,
"33'52""
3.7、07線性回歸案例分析","33'52""",,"""",√,
第四章機(jī)器學(xué)習(xí)(二),,,,,
"88'2""
4.1、01_線性回歸案例1、正則項(xiàng)、梯度下降","88'2""",,"""",√,
"19'2""
4.2、02_梯度下降方法及回歸案例分析","19'2""",,"""",√,
"40'13""
4.3、03_線性回歸、lasso、ridge、ElasitcNet以及案例分析","40'13""",,"""",√,
"14'57""
4.4、04_邏輯回歸原理","14'57""",,"""",√,
"39'0""
4.5、05_邏輯回歸及案例分析","39'0""",,"""",√,
"12'28""
4.6、06_softmax回歸及案例分析","12'28""",,"""",√,
"20'58""
4.7、07_綜合案例分析","20'58""",,"""",√,
第五章機(jī)器學(xué)習(xí)三-決策樹,,,,,
"33'32""
5.1、01決策樹、屬性分割、信息增益","33'32""",,"""",√,
"28'10""
5.2、02信息增益的計(jì)算、模型評(píng)估、ID3、C4.5、CART_","28'10""",,"""",√,
"55'47""
5.3、03決策樹案例分析1","55'47""",,"""",√,
"20'58""
5.4、04決策樹案例分析二、過(guò)擬合、剪枝分析","20'58""",,"""",√,
"23'0""
5.5、05bagging、隨機(jī)森林、隨機(jī)森林案例分析","23'0""",,"""",√,
"28'34""
5.6、06GBDT、Adaboost原理講解","28'34""",,"""",√,
"15'49""
5.7、07Adaboost案例分析、綜合案例分析","15'49""",,"""",√,
第六章機(jī)器學(xué)習(xí)四-SVM支持向量機(jī),
,,,,
"44'12""
6.1、svm講解","44'12""",,"""",√,
"34'43""
6.2、核函數(shù)","34'43""",,"""",√,
"10'40""
6.3、代碼講解(一)","10'40""",,"""",√,
"41'5""
6.4、代碼講解(二","41'5""",,"""",√,
"46'34""
6.5、代碼講解(三)","46'34""",,"""",√,
"29'37""
6.6、代碼講解(四)","29'37""",,"""",√,
第七章機(jī)器學(xué)習(xí)五-聚類分析+貝葉斯,,,,,
"19'49""
7.1、01-聚類的相似性度量(距離公式)","19'49""",,"""",√,
"38'31""
7.2、02-聚類思想、kmeans聚類、kmeans聚類應(yīng)用案例","38'31""",,"""",√,
"32'0""
7.3、03-二分kmeans、kmeans++、kmeansII、canopy、mini-batchkm","32'0""",,"""",√,
"19'40""
7.4、04-聚類算法的衡量指標(biāo)及案例實(shí)現(xiàn)","19'40""",,"""",√,
"23'41""
7.5、05-層次聚類及實(shí)現(xiàn)案例","23'41""",,"""",√,
"25'54""
7.6、06-密度聚類","25'54""",,"""",√,
"35'0""
7.7、07-密度聚類案例實(shí)現(xiàn)、譜聚類、譜聚類案例實(shí)現(xiàn)","35'0""",,"""",√,
"34'7""
7.8、08-不同聚類效果對(duì)比實(shí)現(xiàn)、文本案例、圖片案例","34'7""",,"""",√,
"30'46""
7.9、09-樸素貝葉斯原理、案例1、案例2","30'46""",,"""",√,
"28'32""
7.10、10-貝葉斯網(wǎng)絡(luò)","28'32""",,"""",√,
"28'32""
7.11、11-貝葉斯網(wǎng)絡(luò)拓展","28'32""",,"""",√,
第八章機(jī)器學(xué)習(xí)六-EM-HMM-LDA-ML,,,,,
"39'47""
8.1、01.EM算法講解","39'47""",,"""",√,
"52'58""
8.2、02.HMM及中文分詞","52'58""",,"""",√,
"47'11""
8.3、03.主題模型","4
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