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[编程问题求助] ologit模型求助 [推广有奖]

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楼主
fwj469131 在职认证  发表于 2015-1-15 11:14:58 |AI写论文
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请教一个问题:ologit模型中怎么计算准确预测的比率,estat clas命令做不到啊,请问是什么命令呢?


关键词:ologit模型 logit模型 ologit logit Log 模型

沙发
ermutuxia 发表于 2015-1-16 13:18:52
Correctly classified  后面的数就是整体准确率

藤椅
ermutuxia 发表于 2015-1-16 13:19:11
Correctly classified  后面的数就是整体准确率

板凳
蓝色 发表于 2015-1-16 14:15:46 来自手机
如果没有现成命令,可以先求出预测概率,
然后根据预测概率划分,然后在计算准确比例

报纸
fwj469131 在职认证  发表于 2015-1-16 15:21:39
ermutuxia 发表于 2015-1-16 13:18
Correctly classified  后面的数就是整体准确率
可能你没看清楚我的问题,我的模型是有序Logit模型,所以estat clas的命令是没法计算出准确预测的比率的

地板
fwj469131 在职认证  发表于 2015-1-16 15:22:26
蓝色 发表于 2015-1-16 14:15
如果没有现成命令,可以先求出预测概率,
然后根据预测概率划分,然后在计算准确比例
弱弱的问一句,预测概率怎么求?

7
蓝色 发表于 2015-1-16 15:54:16
和这里的类似啊
https://bbs.pinggu.org/thread-3538105-1-1.html

看ologit的help或者manual
中的predict



Title

    [R] ologit postestimation -- Postestimation tools for ologit


Description

    The following postestimation commands are available after ologit:

    Command              Description
    -----------------------------------------------------------------------------------------------------------
        contrast         contrasts and ANOVA-style joint tests of estimates
        estat ic         Akaike's and Schwarz's Bayesian information criteria (AIC and BIC)
        estat summarize  summary statistics for the estimation sample
        estat vce        variance-covariance matrix of the estimators (VCE)
        estat (svy)      postestimation statistics for survey data
        estimates        cataloging estimation results
    (1) forecast         dynamic forecasts and simulations
        lincom           point estimates, standard errors, testing, and inference for linear combinations of
                           coefficients
        linktest         link test for model specification
    (2) lrtest           likelihood-ratio test
        margins          marginal means, predictive margins, marginal effects, and average marginal effects
        marginsplot      graph the results from margins (profile plots, interaction plots, etc.)
        nlcom            point estimates, standard errors, testing, and inference for nonlinear combinations of
                           coefficients
        predict          predictions, residuals, influence statistics, and other diagnostic measures
        predictnl        point estimates, standard errors, testing, and inference for generalized predictions
        pwcompare        pairwise comparisons of estimates
        suest            seemingly unrelated estimation
        test             Wald tests of simple and composite linear hypotheses
        testnl           Wald tests of nonlinear hypotheses
    -----------------------------------------------------------------------------------------------------------
    (1) forecast is not appropriate with mi or svy estimation results.
    (2) lrtest is not appropriate with svy estimation results.


Syntax for predict

        predict [type] {stub* | newvar | newvarlist} [if] [in] [, statistic outcome(outcome) nooffset]

        predict [type] {stub* | newvarlist} [if] [in] , scores

    statistic          Description
    -----------------------------------------------------------------------------------------------------------
    Main
     pr               predicted probabilities; the default
      xb               linear prediction
      stdp             standard error of the linear prediction
    -----------------------------------------------------------------------------------------------------------
    If you do not specify outcome(), pr (with one new variable specified) assumes outcome(#1).
    You specify one or k new variables with pr, where k is the number of outcomes.
    You specify one new variable with xb and stdp.
    These statistics are available both in and out of sample; type predict ... if e(sample) ... if wanted only
      for the estimation sample.


Menu for predict

    Statistics > Postestimation > Predictions, residuals, etc.


Options for predict

        +------+
    ----+ Main +-----------------------------------------------------------------------------------------------

    pr, the default, calculates the predicted probabilities.  If you do not also specify the outcome() option,
        you specify k new variables, where k is the number of categories of the dependent variable.  Say that
        you fit a model by typing ologit result x1 x2, and result takes on three values.  Then you could type
        predict p1 p2 p3 to obtain all three predicted probabilities.  If you specify the outcome() option, you
        must specify one new variable.  Say that result takes on the values 1, 2, and 3.  Typing predict p1,
        outcome(1) would produce the same p1.


    xb calculates the linear prediction.  You specify one new variable, for example, predict linear, xb.  The
        linear prediction is defined, ignoring the contribution of the estimated cutpoints.

    stdp calculates the standard error of the linear prediction.  You specify one new variable, for example,
        predict se, stdp.

    outcome(outcome) specifies for which outcome the predicted probabilities are to be calculated.  outcome()
        should contain either one value of the dependent variable or one of #1, #2, ..., with #1 meaning the
        first category of the dependent variable, #2 meaning the second category, etc.

    nooffset is relevant only if you specified offset(varname) for ologit.  It modifies the calculations made
        by predict so that they ignore the offset variable; the linear prediction is treated as xb rather than
        as xb + offset.

    scores calculates equation-level score variables.  The number of score variables created will equal the
        number of outcomes in the model.  If the number of outcomes in the model was k, then

        The first new variable will contain the derivative of the log likelihood with respect to the regression
        equation.

        The other new variables will contain the derivative of the log likelihood with respect to the
        cutpoints.


Examples

    Setup
        . webuse fullauto
        . ologit rep77 i.foreign length mpg

    Predicted probabilities for each of the five outcomes
        . predict poor fair avg good exc

    Average marginal effects on the probability of an excellent repair record
        . margins, dydx(*) predict(outcome(5))

    Report information criteria
        . estat ic

8
fwj469131 在职认证  发表于 2015-1-16 15:58:58
蓝色 发表于 2015-1-16 15:54
和这里的类似啊
https://bbs.pinggu.org/thread-3538105-1-1.html
好的,感谢!我先研究一番

9
1254109522 发表于 2016-3-26 21:02:45
请问,这个问题解决了吗?如果解决了,能告诉我一下ologit预测的命令语句吗?

10
Duringry 发表于 2019-1-7 17:40:04
楼主最后知道怎么弄了吗

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