p and q represent the frequencies of two types of alleles.
A linear equation ?
The answer depends on the units of the variables and constants used in the equation.
Let's represent the unknown number as "x." The equation for "five less than a number is 15" can be written as x - 5 = 15. To solve for x, we add 5 to both sides of the equation, resulting in x = 20. Therefore, the number in question is 20.
i believe it is a number sentence but i am ot for sure(;
An equation for 15 and 10 could be written as: 15 = 10 + x, where x is the difference between 15 and 10. In this case, x would equal 5, as 15 is 5 more than 10. Another way to represent this equation is: 15 - 10 = x, which simplifies to 5 = x. Therefore, the equation for 15 and 10 is 15 = 10 + 5 or 15 - 10 = 5.
p represents the square root of the frequency of the homozygous genotype AA.
The frequency of the homozygous dominant genotype.
p represents the square root of the frequency of the homozygous genotype AA.
p is the value of an allele frequency.
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The p and q variables in the Hardy-Weinberg equation represent the frequencies of the two alleles in a population. The equation is often written as p^2 + 2pq + q^2 = 1, where p and q represent the frequencies of the dominant and recessive alleles, respectively.
As written this is not a graphable thing. I does not represent a graphable equation because there is no "=" sign. Whatever the equation might be, the x intercept is found by setting y=0, which leaves you with an equation for x, which is the intercept.
Let x represent the first integer. The second consecutive integer is then x + 1. The equation can be written as x + (x + 1) = 71.
By having the same numbers of atoms of each kind of element present in the equation in the written numbers (coefficient multiplied by subscript) of each kind of element on both sides of the equation.
It is an element, so you represent it with the letter F
M= slope (rise/run) B= Y-intercept (where the line intercepts the y-axis)
The enthalpy of formation equation for Ethanol (CH3CH2OH) can be written as: CH3CH2OH (l) -> C2H5OH (l) + 3/2 O2 (g) This equation represents the formation of 1 mol of Ethanol from its elements in their standard states at 25°C and 1 atm pressure.