| 1. Title: Iris Plants Database |
| Updated Sept 21 by C.Blake - Added discrepency information |
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| 2. Sources: |
| (a) Creator: R.A. Fisher |
| (b) Donor: Michael Marshall (MARSHALL%PLU@io.arc.nasa.gov) |
| (c) Date: July, 1988 |
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| 3. Past Usage: |
| - Publications: too many to mention!!! Here are a few. |
| 1. Fisher,R.A. "The use of multiple measurements in taxonomic problems" |
| Annual Eugenics, 7, Part II, 179-188 (1936); also in "Contributions |
| to Mathematical Statistics" (John Wiley, NY, 1950). |
| 2. Duda,R.O., & Hart,P.E. (1973) Pattern Classification and Scene Analysis. |
| (Q327.D83) John Wiley & Sons. ISBN 0-471-22361-1. See page 218. |
| 3. Dasarathy, B.V. (1980) "Nosing Around the Neighborhood: A New System |
| Structure and Classification Rule for Recognition in Partially Exposed |
| Environments". IEEE Transactions on Pattern Analysis and Machine |
| Intelligence, Vol. PAMI-2, No. 1, 67-71. |
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| 4. Gates, G.W. (1972) "The Reduced Nearest Neighbor Rule". IEEE |
| Transactions on Information Theory, May 1972, 431-433. |
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| 5. See also: 1988 MLC Proceedings, 54-64. Cheeseman et al's AUTOCLASS II |
| conceptual clustering system finds 3 classes in the data. |
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| 4. Relevant Information: |
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| recognition literature. Fisher's paper is a classic in the field |
| and is referenced frequently to this day. (See Duda & Hart, for |
| example.) The data set contains 3 classes of 50 instances each, |
| where each class refers to a type of iris plant. One class is |
| linearly separable from the other 2; the latter are NOT linearly |
| separable from each other. |
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| (identified by Steve Chadwick, spchadwick@espeedaz.net ) |
| The 35th sample should be: 4.9,3.1,1.5,0.2,"Iris-setosa" |
| where the error is in the fourth feature. |
| The 38th sample: 4.9,3.6,1.4,0.1,"Iris-setosa" |
| where the errors are in the second and third features. |
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| 5. Number of Instances: 150 (50 in each of three classes) |
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| 6. Number of Attributes: 4 numeric, predictive attributes and the class |
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| 7. Attribute Information: |
| 1. sepal length in cm |
| 2. sepal width in cm |
| 3. petal length in cm |
| 4. petal width in cm |
| 5. class: |
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| 8. Missing Attribute Values: None |
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| Summary Statistics: |
| Min Max Mean SD Class Correlation |
| sepal length: 4.3 7.9 5.84 0.83 0.7826 |
| sepal width: 2.0 4.4 3.05 0.43 -0.4194 |
| petal length: 1.0 6.9 3.76 1.76 0.9490 (high!) |
| petal width: 0.1 2.5 1.20 0.76 0.9565 (high!) |
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| 9. Class Distribution: 33.3% for each of 3 classes. |
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