The Chi Square Test A statistical method used to determine goodness of fit Goodness of fit refers to how close the observed data are to those predicted.

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The Chi Square Test A statistical method used to determine goodness of fit Goodness of fit refers to how close the observed data are to those predicted.
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Presentation transcript:

The Chi Square Test A statistical method used to determine goodness of fit Goodness of fit refers to how close the observed data are to those predicted from a hypothesis Note: The chi square test does not prove that a hypothesis is correct It evaluates to what extent the data and the hypothesis have a good fit

The Chi Square Test (we will cover this in lab; the following slides will be useful to review after that lab) The general formula is (O – E)2 c2 = S E where O = observed data in each category E = observed data in each category based on the experimenter’s hypothesis S = Sum of the calculations for each category

Consider the following example in Drosophila melanogaster Gene affecting wing shape c+ = Normal wing c = Curved wing Gene affecting body color e+ = Normal (gray) e = ebony Note: The wild-type allele is designated with a + sign Recessive mutant alleles are designated with lowercase letters The Cross: A cross is made between two true-breeding flies (c+c+e+e+ and ccee). The flies of the F1 generation are then allowed to mate with each other to produce an F2 generation.

Applying the chi square test The outcome F1 generation All offspring have straight wings and gray bodies F2 generation 193 straight wings, gray bodies 69 straight wings, ebony bodies 64 curved wings, gray bodies 26 curved wings, ebony bodies 352 total flies Applying the chi square test Step 1: Propose a null hypothesis (Ho) that allows us to calculate the expected values based on Mendel’s laws The two traits are independently assorting

Step 2: Calculate the expected values of the four phenotypes, based on the hypothesis According to our hypothesis, there should be a 9:3:3:1 ratio on the F2 generation Phenotype Expected probability Expected number Observed number straight wings, gray bodies 9/16 9/16 X 352 = 198 193 straight wings, ebony bodies 3/16 3/16 X 352 = 66 64 curved wings, gray bodies 62 curved wings, ebony bodies 1/16 1/16 X 352 = 22 24

Step 3: Apply the chi square formula (O1 – E1)2 E1 (O2 – E2)2 E2 (O3 – E3)2 E3 (O4 – E4)2 E4 c2 = + + + (193 – 198)2 198 (69 – 66)2 66 (64 – 66)2 66 (26 – 22)2 22 c2 = + + + c2 = 0.13 + 0.14 + 0.06 + 0.73 Expected number Observed number 198 193 66 64 62 22 24 c2 = 1.06

Step 4: Interpret the chi square value The calculated chi square value can be used to obtain probabilities, or P values, from a chi square table These probabilities allow us to determine the likelihood that the observed deviations are due to random chance alone Low chi square values indicate a high probability that the observed deviations could be due to random chance alone High chi square values indicate a low probability that the observed deviations are due to random chance alone If the chi square value results in a probability that is less than 0.05 (ie: less than 5%) it is considered statistically significant The hypothesis is rejected

Step 4: Interpret the chi square value Before we can use the chi square table, we have to determine the degrees of freedom (df) The df is a measure of the number of categories that are independent of each other If you know the 3 of the 4 categories you can deduce the 4th (total number of progeny – categories 1-3) df = n – 1 where n = total number of categories In our experiment, there are four phenotypes/categories Therefore, df = 4 – 1 = 3 Refer to Table 2.1

1.06

Step 4: Interpret the chi square value With df = 3, the chi square value of 1.06 is slightly greater than 1.005 (which corresponds to P-value = 0.80) P-value = 0.80 means that Chi-square values equal to or greater than 1.005 are expected to occur 80% of the time due to random chance alone; that is, when the null hypothesis is true. Therefore, it is quite probable that the deviations between the observed and expected values in this experiment can be explained by random sampling error and the null hypothesis is not rejected. What was the null hypothesis?