Minitab软件操作方法(英文版).pptx
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1、INTRODUCTION TO MINITAB VERSION 131Worksheet Conventions and Menu StructuresMinitab InteroperabilityGraphic CapabilitiesParetoHistogramBox PlotScatter PlotStatistical CapabilitiesCapability AnalysisHypothesis TestContingency TablesANOVADesign of Experiments (DOE) Minitab Training Agenda Worksheet Fo
2、rmat and StructureSession WindowWorksheet Data WindowMenu BarTool BarText Column C1-T(Designated by -T)Numeric Column C3(No Additional Designation) Data Window Column ConventionsDate Column C2-D(Designated by -D)Column Names(Type, Date, Count & AmountEntered Data for Data Rows 1 through 4Data Entry
3、ArrowData Rows Other Data Window Conventions Menu Bar - Menu ConventionsHot Key Available (Ctrl-S)Submenu Available ( at the end of selection) Menu Bar - File MenuKey FunctionsWorksheet File ManagementSavePrintData Import Menu Bar - Edit MenuKey FunctionsWorksheet File EditsSelectDeleteCopyPasteDyna
4、mic Links Menu Bar - Manip MenuKey FunctionsData ManipulationSubset/SplitSortRankRow Data ManipulationColumn Data Manipulation Menu Bar - Calc MenuKey FunctionsCalculation CapabilitiesColumn CalculationsColumn/Row StatisticsData StandardizationData ExtractionData Generation Menu Bar - Stat MenuKey F
5、unctionsAdvanced Statistical Tools and GraphsHypothesis TestsRegressionDesign of ExperimentsControl ChartsReliability Testing Menu Bar - Graph MenuKey FunctionsData Plotting CapabilitiesScatter PlotTrend PlotBox PlotContour/3 D plottingDot PlotsProbability PlotsStem & Leaf Plots Menu Bar - Data Wind
6、ow Editor MenuKey FunctionsAdvanced Edit and Display OptionsData BrushingColumn SettingsColumn Insertion/MovesCell InsertionWorksheet SettingsNote: The Editor Selection is Context Sensitive. Menu selections will vary for:Data WindowGraphSession WindowDepending on which is selected. Menu Bar - Sessio
7、n Window Editor MenuKey FunctionsAdvanced Edit and Display OptionsFont Connectivity Settings Menu Bar - Graph Window Editor MenuKey FunctionsAdvanced Edit and Display OptionsBrushing Graph ManipulationColorsOrientationFont Menu Bar - Window MenuKey FunctionsAdvanced Window Display OptionsWindow Mana
8、gement/Display Toolbar Manipulation/Display Menu Bar - Help MenuKey FunctionsHelp and TutorialsSubject SearchesStatguide Multiple TutorialsMinitab on the WebMINITAB INTEROPERABILITY18 Minitab InteroperabilityExcelMinitabPowerPoint Starting with Excel.Load file “Sample 1” in Excel. Starting with Exce
9、l.The data is now loaded into Excel. Starting with Excel.Highlight and Copy the Data. Move to Minitab.Open Minitab and select the column you want to paste the data into. Move to Minitab.Select Paste from the menu and the data will be inserted into the Minitab Worksheet. Use Minitab to do the Analysi
10、s.Lets say that we would like to test correlation between the Predicted Workload and the actual workload.Select Stat Regression. Fitted Line Plot. Use Minitab to do the Analysis.Minitab is now asking for us to identify the columns with the appropriate date.Click in the box for “Response (Y): Note th
11、at our options now appear in this box.Select “Actual Workload” and hit the select button.This will enter the “Actual Workload” data in the Response (Y) data field. Use Minitab to do the Analysis.Now click in the Predictor (X): box. Then click on “Predicted Workload” and hit the select button This wi
12、ll fill in the “Predictor (X):” data field.Both data fields should now be filled.Select OK. Use Minitab to do the Analysis.Minitab now does the analysis and presents the results.Note that in this case there is a graph and an analysis summary in the Session WindowLets say we want to use both in our P
13、owerPoint presentation. Transferring the Analysis.Lets take care of the graph first.Go to Edit. Copy Graph. Transferring the Analysis.Open PowerPoint and select a blank slide.Go to Edit. Paste Special. Transferring the Analysis.Select “Picture (Enhanced Metafile) This will give you the best graphics
14、 with the least amount of trouble. Transferring the Analysis.Our Minitab graph is now pasted into the powerpoint presentation. We can now size and position it accordingly. Transferring the Analysis.Now we can copy the analysis from the Session window.Highlight the text you want to copy.Select Edit.
15、Copy. Transferring the Analysis.Now go back to your powerpoint presentation.Select Edit. Paste. Transferring the Analysis.Well we got our data, but it is a bit large.Reduce the font to 12 and we should be ok. Presenting the results.Now all we need to do is tune the presentation.Here we position the
16、graph and summary and put in the appropriate takeaway. Then we are ready to present.Graphic Capabilities37 Pareto Chart.Lets generate a Pareto Chart from a set of data.Go to File Open Project. Load the file Pareto.mpj.Now lets generate the Pareto Chart. Pareto Chart.Go to:Stat Quality ToolsPareto Ch
17、art. Pareto Chart.Fill out the screen as follows:Our data is already summarized so we will use the Chart Defects table. Labels in “Category”Frequencies in “Quantity”.Add title and hit OK. Pareto Chart.Minitab now completes our pareto for us ready to be copied and pasted into your PowerPoint presenta
18、tion. Histogram.Lets generate a Histogram from a set of data.Go to File Open Project. Load the file 2_Correlation.mpj.Now lets generate the Histogram of the GPA results. Histogram.Go to:Graph Histogram Histogram.Fill out the screen as follows:Select GPA for our X value Graph VariableHit OK. Histogra
19、m.Minitab now completes our histogram for us ready to be copied and pasted into your PowerPoint presentation.This data does not look like it is very normal.Lets use Minitab to test this distribution for normality. Histogram.Go to:Stat Basic StatisticsDisplay Descriptive Statistics. Histogram.Fill ou
20、t the screen as follows:Select GPA for our Variable.Select Graphs. Histogram.Select Graphical Summary.Select OK.Select OK again on the next screen. Histogram.Note that now we not only have our Histogram but a number of other descriptive statistics as well.This is a great summary slide.As for the nor
21、mality question, note that our P value of .038 rejects the null hypothesis (P.05). So, we conclude with 95% confidence that the data is not normal. Histogram.Lets look at another “Histogram” tool we can use to evaluate and present data.Go to File Open Project. Load the file overfill.mpj. Histogram.G
22、o to:Graph Marginal Plot Histogram.Fill out the screen as follows:Select filler 1 for the Y Variable.Select head for the X VariableSelect OK. Histogram.Note that now we not only have our Histogram but a dot plot of each head data as well.Note that head number 6 seems to be the source of the high rea
23、dings.This type of Histogram is called a “Marginal Plot”. Boxplot.Lets look at the same data using a Boxplot. Boxplot.Go to:Stat Basic StatisticsDisplay Descriptive Statistics. Boxplot.Fill out the screen as follows:Select “filler 1” for our Variable.Select Graphs. Boxplot.Select Boxplot of data.Sel
24、ect OK.Select OK again on the next screen. Boxplot.We now have our Boxplot of the data. Boxplot.There is another way we can use Boxplots to view the data.Go to:Graph Boxplot. Boxplot.Fill out the screen as follows:Select “filler 1” for our Y Variable.Select “head” for our X Variable.Select OK. Boxpl
25、ot.Note that now we now have a box plot broken out by each of the various heads.Note that head number 6 again seems to be the source of the high readings. Scatter plot.Lets look at data using a Scatterplot.Go to File Open Project. Load the file 2_Correlation.mpj.Now lets generate the Scatterplot of
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