AP Hardy Weinberg

In Hardy-Weinberg equilibrium, the frequency of the homozygous recessive genotype $aa$ is given by $q^2$. Here, $q = 0.2$, so $q^2 = 0.2^2 = 0.04$. Thus, the expected frequency of genotype $aa$ is 0.04.

In Hardy-Weinberg equilibrium, the frequency of the homozygous dominant genotype (AA) is calculated as p^2. Here, p = 0.7, so p^2 = 0.7 * 0.7 = 0.49. Thus, the expected frequency of AA is 0.49.

In Hardy-Weinberg equilibrium, the frequency of heterozygous genotype $Aa$ is given by 2pq. Here, p (frequency of A) = 0.6 and q (frequency of a) = 0.4. Thus, 2pq = 2(0.6)(0.4) = 0.48, which is the correct answer.

In Hardy-Weinberg equilibrium, the frequency of genotype $aa$ is given by $q^2$. If the frequency of allele $A$ (p) is 0.8, then $q = 1 - p = 0.2$. Thus, $q^2 = (0.2)^2 = 0.04$. Therefore, the frequency of genotype $aa$ is 0.04.

In Hardy-Weinberg equilibrium, the frequency of the recessive phenotype (q^2) is 0.09. Thus, q = √0.09 = 0.3. The frequency of the dominant allele (p) is 1 - q = 1 - 0.3 = 0.7, which is the correct answer.

In Hardy-Weinberg equilibrium, the frequency of the heterozygous genotype Aa is given by 2pq. Here, p = 0.4 and q = 0.6, so 2pq = 2(0.4)(0.6) = 0.48. Thus, the expected frequency of genotype Aa is 0.48.

In Hardy-Weinberg equilibrium, the frequency of genotype $AA$ (p^2) is 0.36. Thus, p = sqrt(0.36) = 0.6. The frequency of allele A (p) is 0.6, and the frequency of allele a (q) is 1 - p = 0.4.

The frequency of the homozygous recessive genotype $aa$ is given by $q^2 = 0.16$. To find the frequency of the recessive allele $a$, take the square root: $q = \sqrt{0.16} = 0.4$. Thus, the frequency of allele $a$ is 0.4.