机器学习笔记第一天Machine Learning one da

作者: Adapa | 来源:发表于2017-10-26 21:00 被阅读30次

    What's the Machine learn?

    01.What's the learning?

    learning one learning two

    what's the kill?

    improve some performance measure
    提高一些绩效
    

    从Data出发,经过机器的学习,得到技能的加强


    Kill KILL=量化投资

    Why use machine learning?

    of example

    这张图里面是什么?


    这张图里面是什么?

    如何定义树?如何让程序识别树?

    你是这么认识树的?
    不是你父母告诉你特征而是你的观察
    而是你看来很多树(●'◡'●)
    你眼睛的观察
    

    1.exists some 'underlying pattern' to be learned
    --so 'performance measure' can be improved
    2.but no programmable(easy)definition
    --so 'ML' is needed
    3.somehow there is data about the pattern
    --so ML has some 'inputs' to learn from

    看看冰山一角ML的应用

    01.Food(Sadilek et al.2013)
    data:Twitter data(words+location)
    skill:tell food poisoning likeliness of restaurant properly
    2.Clothing(Abu-Mostafa,2012)
    data:sales figures + client surveys
    skill:give good fashion recommendations to clients
    3.Housing(Tsansa and Xifara,2012)
    data:characteristics of buildings and their energy load
    skill:predict energy load of other buildings clousely
    4.Transportation(Stallkamp et al,2012)
    data:some traffic sign images and meanings
    skill:recognize traffic signs accurately

    ML is everywhere!

    A Possible ML Solution

    answer correctly ≈ [recent strngth of student > difficulty of question]
    1.give ML 9 million records form 3000 students
    2. ML determines (reverse-engineers)strength and difficulty automatically
    

    电影推荐系统构想

    特征

    特征

    机器学习深入:

    example:
    用户信用评估&行用卡发行:
    data:


    data

    Basic Notations


    ML输入X
    ML输出Y
    目标函数F
    data

    Data <=> training examples: D={(x1,x1),(x2,y2).....(Xn,Yn)}
    (historical records in bank)


    hypothesis
    G:x->y
    ML ML NOTE ML ML

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