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1. The data are generated from an initial parental cross. One parent displays the disease phenotype and one displays the wild-type (WT) phenotype. The WT parent always has a homozygous genotype. Your task is to perform a chi-square goodness of fit test on each of two F2 data sets, and make a decision, based on your statistical analyses as to which F2 data set provides greater evidence for indicating the correct mode of inheritance. In this problem, the true mode of inheritance is autosomal dominant, homozygous lethal. Evidence is measured in the following ways: the p-value is greater than 0.05, so we do not reject the null hypothesis, and the p-value is closer to 1. A few things of which to be mindful. 1. In the parental generation, the WT parent always has a homozygous genotype. 2. For the autosomal dominant mode of inheritance, the disease gene always homozygous for the disease allele in the parental generation. 3. For the autosomal dominant, homozygous lethal any person with the disease phenotype is heterozygous for their genotype. 4. The mode of inheritance is the same for both data sets, and so is the parental cross. DATA SET 01 Parental cross: Mother with disease phenotype, Father with wild-type phenotype. F1 COUNTS FOR DATA SET 01 Gender Phenotype Disease Wild-type Male 115 123 Female 131 128 F2 COUNTS FOR DATA SET 01 Gender Phenotype Disease Wild-type Male 112 128 Female 126 131   DATA SET 02 F1 COUNTS FOR DATA SET 02 Gender Phenotype Disease Wild-type Male 297 291 Female 294 298   F2 COUNTS FOR DATA SET 02 Gender Phenotype Disease Wild-type Male 276 311 Female 286 307   A. We reject Data Set 02's null hypothesis, since the chi-square goodness of fit test p-value is less than 0.05 for that test. We do not reject Data Set 01's null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for that test. We conclude that Data Set 01 provides more evidence for the mode of inheritance being that stated in the question.   B. We reject Data Set 01's null hypothesis, since the chi-square goodness of fit test p-value is less than 0.05 for that test.  We do not reject Data Set 02's null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for that test.  We conclude that Data Set 01 provides more evidence for the mode of inheritance being that stated in the question.   C. We reject Data Set 01's null hypothesis, since the chi-square goodness of fit test p-value is less than 0.05 for that test. We do not reject Data Set 02's null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for that test. We conclude that Data Set 02 provides more evidence for the mode of inheritance being that stated in the question.   D. We do not reject either null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for each test.  However, Data Set 02's p-value is closer to 1.0, so we conclude that Data Set 02 provides more evidence for the mode of inheritance being that stated in the question.   E. We do not reject either null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for each test. However, Data Set 01's p-value is closer to 1.0, so we conclude that it provides more evidence for the mode of inheritance being that stated in the question

1. The data are generated from an initial parental cross. One parent displays the disease phenotype and one displays the wild-type (WT) phenotype. The WT parent always has a homozygous genotype. Your task is to perform a chi-square goodness of fit test on each of two F2 data sets, and make a decision, based on your statistical analyses as to which F2 data set provides greater evidence for indicating the correct mode of inheritance. In this problem, the true mode of inheritance is autosomal dominant, homozygous lethal. Evidence is measured in the following ways: the p-value is greater than 0.05, so we do not reject the null hypothesis, and the p-value is closer to 1. A few things of which to be mindful. 1. In the parental generation, the WT parent always has a homozygous genotype. 2. For the autosomal dominant mode of inheritance, the disease gene always homozygous for the disease allele in the parental generation. 3. For the autosomal dominant, homozygous lethal any person with the disease phenotype is heterozygous for their genotype. 4. The mode of inheritance is the same for both data sets, and so is the parental cross. DATA SET 01 Parental cross: Mother with disease phenotype, Father with wild-type phenotype. F1 COUNTS FOR DATA SET 01 Gender Phenotype Disease Wild-type Male 115 123 Female 131 128 F2 COUNTS FOR DATA SET 01 Gender Phenotype Disease Wild-type Male 112 128 Female 126 131   DATA SET 02 F1 COUNTS FOR DATA SET 02 Gender Phenotype Disease Wild-type Male 297 291 Female 294 298   F2 COUNTS FOR DATA SET 02 Gender Phenotype Disease Wild-type Male 276 311 Female 286 307   A. We reject Data Set 02's null hypothesis, since the chi-square goodness of fit test p-value is less than 0.05 for that test. We do not reject Data Set 01's null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for that test. We conclude that Data Set 01 provides more evidence for the mode of inheritance being that stated in the question.   B. We reject Data Set 01's null hypothesis, since the chi-square goodness of fit test p-value is less than 0.05 for that test.  We do not reject Data Set 02's null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for that test.  We conclude that Data Set 01 provides more evidence for the mode of inheritance being that stated in the question.   C. We reject Data Set 01's null hypothesis, since the chi-square goodness of fit test p-value is less than 0.05 for that test. We do not reject Data Set 02's null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for that test. We conclude that Data Set 02 provides more evidence for the mode of inheritance being that stated in the question.   D. We do not reject either null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for each test.  However, Data Set 02's p-value is closer to 1.0, so we conclude that Data Set 02 provides more evidence for the mode of inheritance being that stated in the question.   E. We do not reject either null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for each test. However, Data Set 01's p-value is closer to 1.0, so we conclude that it provides more evidence for the mode of inheritance being that stated in the question

MATLAB: An Introduction with Applications
MATLAB: An Introduction with Applications
6th Edition
ISBN:9781119256830
Author:Amos Gilat
Publisher:Amos Gilat
Chapter1: Starting With Matlab
Section: Chapter Questions
Problem 1P
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1. The data are generated from an initial parental cross. One parent displays the disease phenotype and one displays the wild-type (WT) phenotype. The WT parent always has a homozygous genotype.

Your task is to perform a chi-square goodness of fit test on each of two F2 data sets, and make a decision, based on your statistical analyses as to which F2 data set provides greater evidence for indicating the correct mode of inheritance. In this problem, the true mode of inheritance is autosomal dominant, homozygous lethal. Evidence is measured in the following ways: the p-value is greater than 0.05, so we do not reject the null hypothesis, and the p-value is closer to 1. A few things of which to be mindful.

1. In the parental generation, the WT parent always has a homozygous genotype.

2. For the autosomal dominant mode of inheritance, the disease gene always homozygous for the disease allele in the parental generation.

3. For the autosomal dominant, homozygous lethal any person with the disease phenotype is heterozygous for their genotype.

4. The mode of inheritance is the same for both data sets, and so is the parental cross.

DATA SET 01

Parental cross: Mother with disease phenotype, Father with wild-type phenotype.

F1 COUNTS FOR DATA SET 01

Gender Phenotype
Disease Wild-type
Male 115 123
Female 131 128

F2 COUNTS FOR DATA SET 01

Gender Phenotype
Disease Wild-type
Male 112 128
Female 126 131

 

DATA SET 02

F1 COUNTS FOR DATA SET 02

Gender Phenotype
Disease Wild-type
Male 297 291
Female 294 298

 

F2 COUNTS FOR DATA SET 02

Gender Phenotype
Disease Wild-type
Male 276 311
Female 286 307

 

A. We reject Data Set 02's null hypothesis, since the chi-square goodness of fit test p-value is less than 0.05 for that test.

We do not reject Data Set 01's null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for that test.

We conclude that Data Set 01 provides more evidence for the mode of inheritance being that stated in the question.

 

B. We reject Data Set 01's null hypothesis, since the chi-square goodness of fit test p-value is less than 0.05 for that test.

 We do not reject Data Set 02's null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for that test.

 We conclude that Data Set 01 provides more evidence for the mode of inheritance being that stated in the question.

 

C. We reject Data Set 01's null hypothesis, since the chi-square goodness of fit test p-value is less than 0.05 for that test.

We do not reject Data Set 02's null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for that test.

We conclude that Data Set 02 provides more evidence for the mode of inheritance being that stated in the question.

 

D. We do not reject either null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for each test.

 However, Data Set 02's p-value is closer to 1.0, so we conclude that Data Set 02 provides more evidence for the mode of inheritance being that stated in the question.

 

E. We do not reject either null hypothesis, since the chi-square goodness of fit test p-value is greater than 0.05 for each test.

However, Data Set 01's p-value is closer to 1.0, so we conclude that it provides more evidence for the mode of inheritance being that stated in the question.

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